Showing posts with label Architecture Essays. Show all posts
Showing posts with label Architecture Essays. Show all posts

Why I Like Architecture

My future as an architect. That is now my goal that I hope to reach hopefully very soon, at first I hadn’t considered architecture has a career. When I started high school I was really thinking about becoming a chef because I like to make my own creation in food but then I changed my mind when I explored drafting now I can still design or create but only now in house which is more interesting. I choose drafting because it was a shop that I like and I was good at. From my 4 years of drafting I have acquired basic skill in drafting. I have work on freehanded sketching, actual working on the board I have use the basic tools like compass, protractor, ruler measuring and many other things. Then I moved a step up on to the computer where I spent three of my years there. I learn the CAD system and how it works once learning the system I could do the basic learning about mechanical drafting then I went on to architectual drafting which was the most interesting. In architectural drafting I learn the basic on a whole set of house plans and then I drew them up on AutoCAD on the computer. I really decided to be an architect for a living after my junior year in high school. I hope to have my own business and be very successful if life that is my goal that I must reach. I have been in a state competition for architectural drafting call VICA competing against the best in the state I also like to do many things like exercise by playing basketball, which is my favorite also, playing baseball and football any thing to keep me in shape, so that must mean I not lazy. To follow my goal I hope to go to collage for architecture for six years and get my bachelors then work for a couple of years and then hopefully open my own business and come to reach my goal from the beginning. I think that is a successful life to be in. BibliographyIt talks about why its is a goog field to go in


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Truss

The definition of a truss is any of various structural frames based on the geometric rigidity of the triangle and composed of straight members subject only to longitudinal compression, tension, or both: functions as a beam or cantilever to support bridges, roofs, etc. Trusses are the most commonly used structural device used in architecture today. Trusses are used in almost every thing they are in your attic, barns, buildings, and bridges. A truss is used in architecture and engineering, it is a supporting structure made of beams, girders, or rods usually made of steel or wood. A truss usually takes the form of a triangle or combination of triangles, this design is capable of carrying large amounts of weight. Trusses are used for large spans and heavy loads, especially in bridges and roofs. Their open construction is lighter than a beam structured platform but is just as strong. The parts of a truss are the tie-beams, posts, rafters, and struts; the distance over which the truss extends is called the span. A truss is formed by connecting the ends of straight pieces of metal or wood to form a series of triangles lying in a single plane. A truss is based on the fact that a triangle is a configuration that cannot collapse or change its shape unless the length of one of the sides is changed. The two most commonly used truss designs are the Howe and Warren trusses. In 1806 the first patented bridge system, the Burr arch truss was used in the US. The Town truss was invented in 1820, in 1840 the Howe truss was invented, and in 1841 the bowstring was invented it was a breakthrough in engineering design. The Pratt and Warren trusses were invented between 1838 and 1844. The first trusses were made of wood and used for building homes and roofs. During the 18th and early 19th centuries cast and wrought iron were used, mostly in the construction of railroad bridges. Later in the 19th century steel became the most used truss material. Trusses are used also for the construction of iron-frame industrial buildings and in roof and floor systems. They are also used in the construction of certain industrial machines, such as cranes, lifts, and in the design of aircraft and automobile frames. Two types of trusses are the Howe and Warren trusses, Warren trusses are more efficient than Howe trusses in carrying a load considering the weight of material used in the construction of the truss. The optimum ratio of height to span length is anywhere between 0.23 and 0.41 for Howe trusses, and 0.16 and 0.39 for Warren trusses. The Pratt and the Warren were simple skeletal forms that adapted well to iron and eventually to steel that is why they are two of the most popular trusses used today. Trusses are very important in today's world they help us cross huge bodies of water, they hold the roof up over our heads, and they allow cranes to be able to support huge amounts of weight when building giant skyscrapers. The fact is the invention of the truss is just as important as the invention of the wheel. Life would be very difficult without trusses.

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The Duomo Of Florence

In the Florence Cathedral, Florence, Italy, there is a cathedral church whose octagonal dome, built without the aid of scaffolding, was considered the greatest engineering feat of the early Renaissance. Dedicated to Santa Maria del Fiore, Our Lady of the Flower, it is also known as the Duomo, after the Italian word for cathedral. Created by many great Early Modern artists, this piece of architecture is a perfect example the Renaissance style. We can come to a better understanding of why this is so by exploring what the characteristics of the Renaissance “style”. To understand the properties of the Florence Cathedral that fit the Early Modern style, I will begin with a description and its history. The cathedral's architectural style, although greatly influenced by French Gothic elements remained distinctively Florentine, especially the geometric patterns of red, green, and white marble on the building's exterior. Construction of the cathedral began in 1294 on the site of a Christian church founded in the 6th or 7th century and continued until 1436. Several celebrated Italian architects were involved in the project, including Giotto, Arnolfo di Cambio, Andrea Orcagna, and, most notably, Filippo Brunelleschi, who was responsible for designing and building the dome. The cathedral's exterior is ornamented with sculpture and mosaics by Italian artists Donatello, Nanni di Banco, and Domenico Ghirlandaio, among others. The building's stained-glass windows are the work of the Italian architect and artist Lorenzo Ghiberti, and the interior is decorated with sculpture and fresco paintings by several Renaissance masters. Construction of the campanile (bell tower), situated to the right of the entrance to the Duomo, was begun by Giotto and completed according to his plans in 1359, after his death. Nearly 278 ft high, the campanile is embellished with red, green, and white marble panels of relief sculpture by Italian artists Andrea Pisano and Luca della Robbia, and niches with sculpted figures by Donatello and other masters. Facing the cathedral and campanile is a smaller, octagonal structure, the Baptistery of San Giovanni, noted for its gilt-bronze doors, elaborately worked in high relief by Andrea Pisano and Lorenzo Ghiberti. With that background information about the cathedral, one question comes to mind: what is it that makes the Renaissance style distinct? Renaissance Art is painting, sculpture, and architecture produced in Europe in the historical period that has been called the Early Modern period. Though the piece I selected is a piece of architecture it has all the aforementioned forms of art, and the elements of the Renaissance style encompasses all these forms. The three main components of Renaissance style are the following: a revival of the classical style originally developed by the ancient Greeks and Romans, an intensified concern with non-religious life, and an interest in humanism and emphasis on the importance of the individual. The Renaissance period in art history corresponds to the beginning of the great Western age of discovery and exploration, when a general desire developed to examine all aspects of nature and the world. This greatly influenced the art that was produced during this period. During the Renaissance, artists were no longer regarded as mere artisans, as they had been in the medieval past, but for the first time emerged as independent personalities, comparable to poets and writers. When he was discussing architecture in his book Lives of the Artists, Giorgio Vasari writes, “…some idea of form and some approximation of the good ancient rules were rediscovered by the better architects, who have left examples of their style throughout Italy in the oldest as distinct from the antique churches” (Vasari, 39). They sought new solutions to formal and visual problems, and many of them were also devoted to scientific experimentation. In this context, mathematical or linear perspective was developed, a system in which all objects in a painting or in low-relief sculpture are related both proportionally and rationally. As a result, the painted surface was regarded as a window on the natural world, and it became the task of painters to portray this world in their art. Consequently, painters began to devote themselves more rigorously to the rendition of landscape—the careful depiction of trees, flowers, plants, distant mountains, and cloud-filled skies. Artists studied the effect of light out-of-doors and how the eye perceives all the diverse elements in nature. They developed aerial perspective, in which objects become increasingly less distinct and less sharply colored as they recede from the eye of the viewer. Although the portrait also developed as a specific genre in the mid-15th century Renaissance painters achieved the greatest notoriety with the history, or narrative, picture, in which figures located within a landscape or an architectural environment act out a specific story, taken either from classical mythology or Judeo-Christian tradition. Within such a context, the painter was able to show men, women, and children in a full range of postures and poses, as well as the subjects' diverse emotional reactions and states. The Renaissance of the arts coincided with the development of humanism, in which scholars studied and translated philosophical texts. The use of classical Latin was revived and often favored at this time. The Renaissance was also a period of avid exploration; sea captains began to be more daring in seeking new routes to Asia, which resulted in the discovery and eventual colonization of North and South America. Painters, sculptors, and architects exhibited a similar sense of adventure and the desire for greater knowledge and new solutions; Leonardo da Vinci, like Christopher Columbus, discovered whole new worlds. With a new emphasis on the science, people like Philippo Brunelleschi were accomplishing great feats of artistic and architectural design. The new Renaissance “style” that emerged during this period called upon the classical roots of ancient Greece and Rome but new scientific understanding and a stronger emphasis on the individual also influenced the works created during this period. BibliographyRice Jr., Eugene F.; Anthony Grafton. The Foundations of Early Modern Europe, 1460-1559. W. W. Norton & Company. New York, NY, 1993. Helton, Tinsley. World Book Encyclopedia, v16. “Renaissance”, pp. 222-224. World Book–Childcraft International Inc. Chicago, IL, 1979. Vasari, Gorgio. Lives of the Artists. Penguin Books Ltd. London, England, 1987.


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The Acropolis

Elmer Boyce Architecture 110 Professor Boestler 02 November 2000 The Athenian Acropolis The Acropolis of Athens has stood as a monument of triumph to the people of Athens for centuries past. The temples within its walls were used to worship Greek gods like Athena and Poseidon. Rising over three hundred feet above the city of Athens, it can clearly be seen why it is called the Acropolis, which loosely translated means top of city. It isn't the only acropolis in Greece, but it is revered more than the others because of its almost flawless planning in where each building is placed. It took two hundred years of experimenting to get it right. Each building is placed specifically to be pleasing to the viewer's eye. From the viewer's point of view every building is seen in perspective, and at no point from the entrance is one building seen from only one facade. This is what made the Acropolis at Athens so amazing. What makes the Acropolis even more amazing is the buildings within its walls. There is the Parthenon, the Propylaia, the Erechtheion, the temple of Athena Nike, and more. After ascending nearly three hundred feet up the hill you come to what is called the Propylaia. The Propylaia is the entrance to the Acropolis and was used to prepare worshipers before entering the gates to the temples within. Construction began on the Propylaia in 437 B.C. and was completed in 432 B.C. The architect of the Propylaia was Mnesikles, and the project was anything but easy with the narrowness of space and the irregular terrain. Despite these obstacles he was successful in creating a harmonious entrance. Asymmetrically arranged buildings created the propylaia. The most important of these buildings was the Pinakotheke on the north side with contained the art gallery. The Propylaia has an outer and inner facade, both supported by six Doric columns with five doors between them, the largest door was located in the middle. Further within the Propylaia, there are Ionic columns, which helped support the roof. These columns were used rather than the Doric columns similar to the outer columns because of space restraints. Also constructed of load bearing walls the Propylaia was entirely constructed out of white marble. These load-bearing walls were the walls of the Pinakotheke and were covered with painted panels or wall paintings. This propylaia wasn't the first on that site. The original entrance gate was smaller and was destroyed in the Persian fire in 480 B.C. After being prepared in the propylaia, you would enter a central courtyard overlooking the immense bronze statue of,the Champion, Athena Promachos. This statue was so large that the sun could be seen glimmering off the tip of its spear from out at sea. To the left you would see the Erechtheion in its white marble glory, whose site lay north of the Parthenon. This building too, like the Propylaia dealt with irregular terrain, but took it in a different perspective. Instead of leveling the land, which was too sacred to touch, they built the Erechtheion in levels to accommodate the steep change in elevation. Built sometime between 421 B.C. and 405 B.C., the Erechtheion housed shrines to several gods, local deities, and heroes. It was also the site of several sacred spots, including the mark of Poseidon's trident spear, the graves of the legendary Erechtheus and Kekrops, but most importantly it housed the temple of Athena Polias, protectress of the city and goddess of the hearth. Each level of the Erechtheion had a specific purpose. To the east, from higher terrain is a six-column Ionic porch that housed the ancient wooden image of Athena. At the north is another Ionic porch that leads to the chamber of Erechtheus. The sacred olive tree of Athena is located in an open courtyard in the west of the Erechtheion. And finally to the south is the resting place of the legendary King Kekrops. The Porch of the Caryatids covers this gravesite. This porch is what makes the building stand out other than its unusual land layout. The porch is supported by six maiden figures used as columns with the crowns on their heads being the capitals. Also within the frieze of the Erechtheion is to be believed a relief carving of the birth of Erechtheus. The Erechtheion is most definitely not the largest building in the Acropolis, but for what it lacks in size it gains in well thought out planning and decoration. The temple Athena Nike was created by the architect Kallikrates. This temple built in Ionic order is the smallest of all the temple buildings within the walls of the Acropolis. Made of once again, white marble it sits on an ancient bastion, and was rebuilt once in 435 B.C. to 420 B.C. to its present day form. It details four ionic columns on each end and the rest is load-bearing walls. On the east end, the relief frieze depicts the conference of the gods, while the other sides show scenes from battles. The temple was built to commemorate the victory over the Persians. The temple's placement is to represent the guarding of the entrance of the Acropolis, or the Propylaia. Even though nearly fifteen hundred years have passed since it construction, the temple of Athena Nike still stands intact, other than having no roof structure, like the other temples. This is because all the temples' roofs were made of wood, and of course over the years have now deteriorated. Nonetheless, the temple, Athena Nike will stand to let viewers appreciate the tireless work of the Greek architects for years to come. The final, and most majestic temple of the acropolis is the Parthenon. It is the most important and characteristic monument of the ancient Greek civilization and still remains its international symbol. It was dedicated to Athena Parthenos, the patron goddess of Athens. It was built between 447 and 438 B.C. and its sculptural decoration was completed in 432 B.C. The construction of the monument was initiated by Perikles; the supervisor of the whole work was Pheidias, the famous Athenian sculptor, while Iktinos and Kallikrates were the architects of the building. The temple is built in the Doric order and almost exclusively of Pentelic marble. It is peripteral, with eight columns on each of the narrow sides and seventeen columns on each of the long ones. The central part of the temple, called the cella, sheltered the famous chryselephantine cult statue of Athena, made by Pheidias. The sculptural decoration of the Parthenon is a unique combination of the Doric metopes and triglyphs on the entablature, and the Ionic frieze on the walls of the cella. The metopes depict the Gigantomachy on the east side, the Amazonomachy on the west, the Centauromachy on the south, and scenes from the Trojan War on the north. The relief frieze depicts the Procession of the Panathenaea, the most formal religious festival of ancient Athens. The scene runs along all the four sides of the building and includes the figures of gods, beasts and of some 360 humans. The two pediments of the temple are decorated with mythological scenes: the east, above the building's main entrance, shows the birth of Athena, and the west, the fight between Athena and Poseidon for the name of the city of Athens. The Parthenon retained its religious character in the following centuries and was converted into a Byzantine church, a Latin church and a Muslim mosque. The Turks used the Parthenon as a powder magazine when the Venetians, under Admiral Morosini, sieged the Acropolis in 1687. One of the Venetian bombs fell on the Parthenon and caused a tremendous explosion that destroyed a great part of the monument, which had been preserved in a good condition until then. The disaster was completed in the beginning of the 19th century, when the British ambassador in Constantinople, Lord Elgin, stole the greatest part of the sculptural decoration of the monument (frieze, metopes, pediments), transferred them to England and sold them to the British Museum, where they are still exhibited, being one of the most significant collections of the museum. Throughout the years the Acropolis has been viewed as a masterpiece of Greek architecture. Even though the Acropolis is not in its pristine condition, it still is bueatiful in its white marble glory, raising three hundred feet above the city of Athens. The Acropolis' glory is all due to the impeccable designing created by the greek architrects of that time. They planned the Acropolis out with great detail, portaited in the artwork. It was successful. They were able to create the wonder of the Greek world, the Athenian Acropolis. Their timeless effort is appreciated by architects and enthuasists throughtout the world. Even today, architects use the basic elements of the Acropolis to complete their own works. Whether they use the ionic style columns or the carved friezes, they tie their building to the basic construction of the greek Atheian Acropolis. BibliographyAcropolis, http://kids.infoplease.lycos.com/ce6/history/A0802368.html The Propylaia, http://www.divnet.org/propylaia.html Acropolis, Microsoft® Encarta® Online Encyclopedia 2000, http://encarta.msn.com © 1997-2000 Microsoft Corporation. All rights reserved. Understanding Architecture, Leland M. Roth, Westview Press, Boulder, Colorado, © 1993.

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Skyscrapers

skyscraper architecture http://www.coshe.com/search/ The architectural design of the 20th century skyscrapers has been redefined due to the advancement of our modern technology. Benny Louie Humanity 450 Dr. Maureen Schmid 17 May 1999 The architectural design of the 20th century skyscrapers has been redefined due to the advancement of our modern technology. In our modern society, the architectural design of skyscrapers is changing the downtown landscape of metropolitan areas. Due to the change of technologies, it has changed the architectural design of skyscraper dramatically in terms of the its function, design structures, heating and cooling systems and it social status in society. The basic function of the architecture is to provide a roof over peoples’ head. The main purpose of architecture is to act as a shelter for people to protect themselves against Mother Nature. As civilization development advances, we increased our knowledge and became more creative. People start to design buildings for means of displaying wealth and social status. The skyscraper fits the criteria to show the social status of such building with great height and elegance to the society. According to O’Gorman, “architecture is a form language, of communication.” (P.89) This communication is represented in the forms of texture, shape and style that reflects certain period of time. In the early period, architectures were associated with style and culture. “The Greeks built marble temples with Doric, Ionic or Corinthian columns. Egyptian architecture used heavy lotus columns, massive battered walls and pyramidal forms. The Gothic style used point arch, vast areas of stained glasses, pointed rib-vault construction.” (P. 92) Each had its unique characteristic feature to express its message. In the 20th century architectural design, architecture is no longer viewed as simple shelter to provide a roof over peoples’ head. Architectures are designed with a more environmental conscious issue like cost, energy conservation and practicality of the structure. The interior environment is designed according to the space function of the structures. For example, “a dance hall, needs a large open-space with sufficient room for the band and a bar and maybe for tables and chairs around the edge so that people can sit and chat.” (Conway & Rowan) This concept always applies to real life situations. People don’t rent more space than what they needed for. For example, a three person family will not rent a 3 bedroom apartment, unless they are financially well off. In a Victorian house, there are different corridors for different users. The servants don’t use the same passage as the owners’ family. (Conway & Rowan, P.4) This is similar to large hotels, employees have to use the employees entrance to access the building. These passages are not well maintained as the front of the house. “The interior environment should be safe for working, living or housing objects.” (Conway & Rowan, P.17) This means that building should be at a comfortable temperature, with sufficient lighting, ability to control the transmission of noise, provide enough space for pipes, wires and ventilation ducts. Overall the architects has to take in consideration of the climates differences and regional variations of the building in designing a suitable interior environment for today’s standard. The skyscraper is defined as a “building with exceptional height completely support by a frame-work, as of girders, from which the walls are suspended, as opposed to a building supported by load-bearing walls.” (www.infoplease.com) The function of the skyscraper is serve as a commercial purpose. The Sears Tower is fine example of it, not only the being headquarter for Sears and Roebuck company but it also has an observation deck for the public. The skyscraper has always associated with wealth and power. To the general public, big is good; in terms of building, the taller the better. People had been fascinated with skyscraper ever since the birth of the first skyscraper in 1895. It was a 10-stories high steel frame structure designed by William Le Baron Jenney in 1885, named “Home Insurance Building.” (Bennett, P.40) Over the year as steel and concrete production technologies reach a higher level, architects use these new materials to reach greater height in the design of skyscrapers. The improvement of the skyscraper structures starts from 10 floor stories to high as 150 floor stories high. The Reliance Building Chicago, USA, in 1895, 15 stories high used the semi-rigid steel frame. The semi-rigid steel frame was held together with steel beams and connected by rivets. (Bennett, P.42) The 60 stories high First Wisconsin Center, Milwaukee, USA in 1974 employed the steel belt truss with framed shear truss. This structure used the horizontal trusses at the upper and lower stories to enhance the framed shear truss. (Bennett, P.44) The Sears Tower, Chicago, USA, in 1974, 110 stories high used the Bundled tube. The bundled tubes were made up of a cluster of connected frame tubes, reinforced by steel beams at each story to increase the strength of the structure. Various tubes terminated at different level to further strengthen the bundled tubes at the center. (Bennett, P.44) The future structure was the Superframe, which can reaches at least 150 stories high. It used the concept of the Eiffel Tower with framed tubes connected by horizontal trusses. (Bennett, P.45) It was the innovation of the structural design that enables skyscrapers to reach new height. These methods include the use of steel belted truss, cross members to reinforce the structure. Heating and air conditioning played an important role in the structure of skyscrapers. They are the key units that control the inside atmosphere of all skyscrapers. In the early days, the heat sources in the building came from fireplaces and stoves. Later on heat in the building supplied by the hot water boiler. The boiler heats up the water and sends it out to the radiators through a system of pipes. This was later replaced by central heating furnace with ventilation ducts that channel heat to various areas of the building. Air conditioning is defined as a mechanical process for controlling humidity, and temperature of air in room. (www.infoplease.com) Air condition is originated from refrigeration. The process of refrigeration is to draw heat away from substances to lower their temperature. In the operation of an air conditioning unit, air is blow across a cooling pipe and the waste heat is carried away by the flow of cold water in the pipes. The cooled air is carried out through the ventilation ducts to various parts of the building. Today, the skyscrapers use the central heating system with ventilation ducts that can be shared with the heating and air conditioning system. Engineers are working on new ways to make heating and air conditioning more efficient and environmental friendly. This would reduce the cost of energy bill on these skyscrapers. The cost of building a skyscraper is in hundred million dollars in the current market. The skyscraper is well known for its great height and the social status comes with it. In general, large company or firm would host its head office in these skyscrapers. For example Chrysler had its head office in the Chrysler Building, owned by Chrysler which is one of the big three auto makers. (Bennett, P.71) The Sears Tower, the head office for Sears and owned by Sears. It was known for being the worlds’ tallest skyscraper in Chicago. (Bennett, P.24) Tenants expect clients to know where they are located when they tell them the Sears Tower as their location. These skyscrapers are own by the wealthy individuals whom are in the upper level of financial social status. There is a sense of prestige for having offices or shops in these skyscrapers. Modern skyscrapers are being redefined by the use of advance technologies. Due to the advancement in technology, skyscrapers are able to reach new height easily. It changes the way architects design the structure of these buildings. The new function of the skyscraper is to provide great views, house antennas for communications, telebroadcasting and for entertainment purpose. The use of computer climate control system made the building a more comfortable environment for everyone. The great height of the skyscraper like the Sears Tower, it associates itself with the prestige of being the tallest of all. With the rapid advancement of technology and the influence of fame and wealth, sky is limit for the next generation of skyscrapers. Work cited Bennett, David. Skyscrapers Form & Function New York 1995 Conway, Hazel and Rowan, Roenisch. Understanding Architecture: An introduction to Architecture and architectural History. London and New York: Routledge 1994. O’Gorman, James. ABC of Architecture Philadelphia: University of Pennsylvania Press, 1998 Online www.infoplease.com May 15, 1999

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Romanesque Architecture

THE BASILICA AND BASILICAN CHURCHES A great deal of conjecture has been expended on the question as to the genesis of the Roman basilica. For present purposes it may be sufficient to observe that the addition of aisles to the nave was so manifest a convenience that it might not improbably have been thought of, even had models not been at hand in the civic buildings of the Empire. The most suitable example that can be chosen as typical of the Roman basilica of the age of Constantine is the church of S. Maria Maggiore. And this, not merely because, in spite of certain modern alterations, it has kept in the main its original features, but also because it departs, to a lesser extent than any other extant example, from the classical ideal. The lateral colonnade is immediately surmounted by a horizontal entablature, with architrave, frieze, and cornice all complete. The monolithic columns, with their capitals, are, moreover, homogenous, and have been cut for their position, instead of being like those of so many early Christian churches, the more or less incongruous and heterogeneous spoils of older and non-Christian edifices. Of this church, in its original form, no one however decidedly his tastes may incline to some more highly developed system or style of architecture will call in question the stately and majestic beauty. The general effect is that of a vast perspective of lines of noble columns, carrying the eye forward to the altar, which, with its civory or canopy, forms so conspicuous an object, standing, framed, as it mere, within the arch of the terminal apse, which forms its immediate and appropriate background. S. Maria Maggiore is considerably smaller than were any of the other three chief basilicas of Rome (St Peter's, St. Paul's, and the Lateran). Each of these, in addition to a nave of greater length and breadth, was furnished (as may still be seen in the restored St Paul's) with a double aisle. This, however, was an advantage which was not unattended with a serious drawback from a purely esthetic point of view. For a great space of blank wall intervening between the top of the lateral colonnade and the clerestory windows was of necessity required in order to give support to the penthouse roof of the double aisle. And it is curious, to say the least, that it should not have occurred to the builders of those three basilicas to utilize a portion of the space thus enclosed, and at the same time to lighten the burden of the wall above the colonnade, by constructing a gallery above the inner aisle. It is true, of course, that such a gallery is found in the church of S. Agnese, where the low-level of the floor relatively to the surface of the ground outside may have suggested this method of construction; but whereas, in the East, the provision of a gallery (used as a gynaeceum) was usual from very early times, it never became otherwise than exceptional in the West. Taking East and West together, we find among early and medieval basilican churches examples of all the combinations that are possible in the arrangement of aisles and galleries. They are the single aisle without gallery, which is, of course, the commonest type of all; the double aisle without gallery, as in the three great Roman basilicas; the single aisle with gallery, as in S. Agnese; the double aisle with single gallery, as in St. Demetrius at Thessalonica; and finally, as a crowning example, though of a later period, the double aisle surmounted by a double gallery, as in the Duomo at Pisa. These, however, are modifications in the general design of the building. Others, not less important, though they are less obviously striking, concern the details of the construction. Of these the first was the substitution of the arch for the horizontal entablature, and the second that of the pillar of masonry for the monolithic column. The former change, which had already come into operation in the first basilica of St. Paul without the Walls, was so obviously in the nature of an improvement in point of stability that it is no matter for surprise that it should have been almost. universally adopted. Colonnaded and arcaded basilicas, as we may call them, for the most part older than the eleventh century, are to be found in the most widely distant regions, from Syria to Spain, and from Sicily to Saxony; and the lack of examples in Southern France is probably due to the destructive invasion of the Saracens and Northmen and to the building of new churches of a different type, in the eleventh and succeeding centuries, on the ruins of the old. The change from column to pillar, though in many cases it was no doubt necessitated by lack of suitable materials -- for the supply of ready-made monoliths from pagan buildings was not inexhaustible -- proved, in fact, the germ of future development; for from the plain square support to the recessed pillar, and from this again to the grouped shafts of the Gothic cathedrals of later times, the progress can be quite plainly traced. Mention should here be made of a class of basilican churches, in which as in S. Miniato, outside Florence, and in S. Zenone, Verona, pillars or grouped shafts alternate, at fixed intervals, with simple columns, and serve the purpose of affording support to transverse arches spanning the whole width of the nave; a first step, it may be observed, to continuous vaulting. ROMANESQUE TYPES Something must now be said of the very important alterations which the eastern end of the basilican church underwent in the process of development from the Roman to what may conveniently be grouped together under the designation of Romanesque types. When, in studying the ground-plan of a Roman basilica, we pass from the nave and aisles to what lies beyond them, only two forms of design present themselves. In the great majority of instances the terminal apse opens immediately on the nave, with the necessary result, so far as internal arrangements are concerned, that the choir, as we should call it, was an enclosure, quite unconnected with the architecture of the building, protruding forwards into the body of the church, as may still be seen in the church of S. Clemente in Rome. In the four greater basilicas, however, as well as in a few other instances, a transept was interposed between the nave and the apse, affording adequate space for the choir in its central portion, while its arms (which did not project beyond the aisles) served the purpose implied in the terms senatorium and matroneum. Now it is noteworthy that the transept of a Roman basilica is, architecturally speaking, simply an oblong hall, crossing the nave at its upper extremity, and forming with it a T-shaped cross, or crux immissa, but having no organic structural relation with it. But it was only necessary to equalize the breadth of transept and nave, so that their crossing became a perfect square, in order to give to this crossing a definite structural character, by strengthening the pieces at the four angles of the crossing, and making them the basis of a more or less conspicuous tower. And this was one of the most characteristic innovation or improvements introduced by the Romanesque builders of Northern Europe. In fact, however, before this stage of development was reached, the older basilican design had undergone another modification. For the simple apse, opening immediately to the transept, church builders of all parts of Europe had already in the eighth century substituted a projecting chancel, forming a fourth limb of the cross, which now definitively assumed the form of the crux commissa, by contrast with the crux immissa of the Roman basilica. The earliest example of a perfectly quadrate crossing, with a somewhat rudimentary tower, appears to have been the minster of Fulda, built about A. D. 800. It was quickly followed by St. Gall (830), Hersfeld (831), and Werden (875); but nearly two centuries were to elapse before the cruciform arrangement, even in the case of more important churches, can be said to have gained general acceptance (Dehio and v. Bezold, Die kirchliche Baukunst des Abendlandes, I, 161). The differences which have already been mentioned were, however, by no means the only ones which distinguished the Romanesque from the Roman transept. The transept of a Romanesque church, especially of those which were attached to monasteries, was usually provided with one or more apses, projecting from the east side of its northern and southern arms; and from this it appears, plainly enough, that the purpose, or at least a principal purpose, of the medieval transept, was to make provision for subsidiary altars and chapels. A pair of transept apses, projecting eastwards, already makes its appearance at Hersfeld and Werden. At Bernay, Boscherville (St- Georges), and Cerisy-la-Forêt (St-Vigor), each arm of the transept has two eastern apses, corresponding respectively to the aisle and to the projecting arm. The same arrangement is found also at Tarragona. At La Charité, a priory dependent on Cluny, each arm had three apses, so that there were seven in all, immediately contiguous to one another, and varying in depth from the central to the northern and southern members of the system. The plan of Cluny itself was that of a cross with two transverse beams. Of the western transept each arm had two apses; of the eastern each had three, two projecting eastwards and one terminal. Saint-Benoît-sur-Loire had likewise a double transept, furnished on the same principle with six subsidiary apses. Among English cathedrals -- it may here be mentioned -- both Canterbury and Norwich have a single chapel projecting from each arm of their respective transepts; and at E1y the Galilee porch, which has the form of a western transept, opens eastwards into two apsidal chapels, contiguous on either side to the main walls of the cathedral. Far more important in their bearing on the later history of architecture than these developments of the transept were certain changes which gradually took place in connection with the chancel. It is not unusual in Romanesque churches, to find the chancel flanked, like the nave, with aisles, terminating in apsidal or square-ended chapels. But in more considerable edifices especially in France, the aisle is often carried round as an ambulatory behind the chancel apse; and when this is the case, the ambulatory most commonly opens into a series of radiating chapels. These are, in the earliest examples, entirely separate from one another, being sometimes two or four, but more usually three or five, in number. In later examples the number of chapels increases to seven or even nine; and they are then contiguous, forming a complete corona or chevet. The first beginnings of this system go back to so early a date as the fifth century. De Rossi has argued, apparently on good grounds, that some early Roman, Italian, and African basilicas were furnished with an ambulatory round the apse. This form of design, however, was soon abandoned in Italy, and in the Romanesque pre-Gothic period it cannot be said to have been usual anywhere except in France, where it proved a seed rich with the promise of future developments. The earliest instance of its adoption there was almost certainly the ancient church of St-Martin of Tours, as rebuilt by Bishop Perpetuus in A. D. 470. This edifice, as Quicherat has shown, had a semicircular ambulatory at the back of the altar, in which, a few years later, was placed the tomb of Perpetuus himself. From Tours the type seems to have passed to Clermont-Ferrand (Sts. Vitalis and Agricola), and thence, many centuries later, to Orléans (St-Aignan, 1029). Meanwhile, in 997, the church of St. Martin had been rebuilt, and in the foundations of this edifice, which can still be traced, we find what is probably the earliest example of a chevet or corona of radiating chapels. It served, in its turn, in the course of the following century, as the model, in this respect, of Notre-Dame de la Couture at Le Mans (c. 1000), St-Remi at Reims (c. 1010), St-Savin at Saint Savin (1020-30), the cathedral at Vannes (c. 1030), St-Hilaire at Poitiers (1049), and the abbey church at Cluny, as rebuilt in 1089. Shortly before 1100 the church of St. Martin was once more rebuilt, on a scale of greater splendour; and once more the new building became the model for other churches, chief among which were those of St-Sernin at Toulouse (1096), of Santiago at Compostela (c. 1105), and of the cathedral at Chartres (1112). ROMANESQUE VAULTING The history of ecclesiastical architecture in Western Europe during the relatively short period which alone deserves to be regarded as one of more or less continuous and steady advance, and which extends, roughly speaking, from 1000 to 1300, may be described as the history of successive and progressive attempts to solve the problem, how best to cover with stone vaulting a basilican or quasi-basilican church, that is to say, a building of which the leading feature is a nave flanked with aisles and lighted with clerestory windows (Dehio and v. Bezold, op. cit. I, 296; Bond, op. cit., 6). It was the conditions of this problem, and the failure, more or less complete, of all previous attempts to solve it satisfactorily, and by no means a mere aesthetic striving after beauty of architectural form, which led step by step to the development of the Gothic architecture of the thirteenth century in its unsurpassed and unsurpassable perfection. The advantages of a vaulted, as compared with a timber, roof are so obvious that we are not surprised to find, dating from the tenth century or at latest from the beginning of the eleventh, examples of basilican churches with vaulted aisles. Indeed these first attempts at continuous vaulting would probably have been made much earlier, but for the invasions of Saracens and Northmen, which delayed till that period the first beginnings of a steady development in ecclesiastical architecture, but which by their wholesale destruction of pre-existing buildings may be said to have prepared the way for that same development. The vaulting of the nave, however, in the case of any church of considerable size, was a very different matter; and it was not until the eleventh century was well advanced that the problem was seriously faced. And when at last it was definitely taken in hand, this was done under pressure of dire necessity. Everyone who is at all conversant with medieval chronicles, or with the history of the cathedrals of Western Europe, must be aware how extremely frequent were the disasters caused by conflagrations, and it was natural enough that the church-builders of the later Middle Ages should aim at making their buildings, at least relatively, fire-proof. The simplest form which the vaulting of a rectangular chamber can take is, of course, the cylindrical barrel-vault; and this is, in fact, the form which was adopted in many of the earliest examples of vaulted roofs, especially in the south of France; a form, too, which was extensively used in Italy during the age of the Renaissance. But, though simplest alike in conception and in construction, the cylindrical barrel-vault is in fact the least satisfactory that could be devised for its purpose; and the objections which militate against its employment are equally valid against that of the barrel-vault whose cross section forms a pointed arch. Of these objections the chief is that the horizontal thrust of a barrel-vault is evenly distributed throughout its entire length. Theoretically, then, this thrust requires to be met, not by a series of buttresses, but by a continuous wall of sufficient thickness to resist the outward pressure at any and every point along the line. Moreover, the higher the wall, the greater is the thickness needed, assuming of course that the wall stands free, like the clerestory wall of an aisled church. Much, too, will depend on the cohesiveness of the vaulting itself; and as the Romanesque church-builders were either unacquainted with, or unable to use, the methods by which the Romans and the Byzantines respectively contrived to give an almost rigid solidity to their masonry, it is no matter for surprise that in two large classes of instances they should have been content to sacrifice either the clerestory or the aisles to the advantages of a vaulted roof and to the exigencies of stability. Of aisleless churches indeed, we must forbear here to speak. But of an important group of buildings which German writers have designated Hallenkirchen (hall- churches) a word must be said, as they unquestionably played a part in preparing the way for the final solution of the problem of vaulting. The most rudimentary form of hall-church is that in which the nave and aisles are roofed with three parallel barrel-vaults, those of the aisles springing from the same level as those of the nave. Examples are found at Lyons (St-Martin d'Ainay), at Lesterps, at Civray, and Carcassonne (St- Nazaire). An improvement on this design, in view of the illumination of the nave, consists in giving to the vaulting of the aisles the form of a rampant arch, as at Silvacanne, and from this it was but a step to the arrangement by which the section took the form of a simple quadrant as at Parthenay-le-Vieux, Preuilly, and Fontfroide. This method of quadrant vaulting, as Viollet-le-Duc and others have observed, provides a kind of continuous internal flying buttress, though it is by no means certain that the idea of the flying buttress in the Gothic architecture of Northern France was actually suggested by these Southern buildings. In point of stability. the hall-churches of the eleventh century leave nothing to be desired. Their great defect is want of light. And this defect almost equally affects a class of buildings which may be described as two-storied hall-churches, and which are found principally, if not exclusively, in Auvergne and its neighbourhood. These are furnished, like a few of the Roman basilicas and certain Byzantine churches, with a gallery, which is not a mere triforium contrived in the thickness of the walls, but a chamber of equal dimension with the aisle. This arrangement not only affords additional spaces but also, by reason of the greater height of the edifice, might seem to facilitate the provision of a more liberal supply of light, unimpeded by neighbouring buildings. This last mentioned advantage is, however, almost entirely negatived by the circumstance that, in this class of buildings, each bay of the gallery is subdivided by means of coupled or grouped arches, so that the additional obstruction offered to the passage of the light almost entirely counterbalance the possible gain through additional fenestration. We say the possible gain because, in fact, the galleries of these churches are but sparingly provided with windows. In these churches (which to the English reader should be of special interest by reason of their affinity in point of construction to the Westminster cathedral) the aisle is usually cross-vaulted, while the gallery has a quadrant vault abutting in the wall of the nave just below the springing of the transverse arches. The most noteworthy examples are found at Clermont-Ferrand (Notre Dame du Port), Issoire (St-Paul), and Conques. To the same family belongs moreover, the great church of St-Sernin at Toulouse already mentioned, which is distinguished from those previously named by having a double aisle. At Nevers the church of St-Etienne resembles those at Clermont, Issoire, and Conques, except that it is provided with a range of upper windows which break through the barrel-vaulting, somewhat after the fashion which afterwards became so common in Italy in churches of the Renaissance period. The inherent shortcomings of the barrel-vault, especially when used as a roof for the nave of an aisled church, have been sufficiently illustrated. These disadvantages, so far as structural stability and fenestration are concerned, might indeed be overcome by adopting the system of a succession of transverse barrel-vaults, such as are seen in the unique instance of the church of St-Philibert at Tournus. Such a construction is, however, ponderous and inelegant, and never came into general use (Moore, Gothic Architecture, 42). The system of cross-vaulting, which has now to be considered, may be regarded as a combination of longitudinal with transverse barrel-vaulting, inasmuch as it may be described as consisting of a central barrel which is penetrated or intersected by a series of transverse vaults, corresponding of course to the successive bays or compartments of the nave. The advantages of cross-vaulting are threefold. In the first place the total amount of the outward lateral thrust is very greatly diminished, since one half of it is now replaced by longitudinal thrusts, which, being opposed in pairs, neutralize one another. Secondly, all that is left of the lateral thrust, as well as the longitudinal thrusts, and the whole of the vertical pressure instead of being distributed throughout the whole length of the building, is now collected and delivered at definite points, namely the summits of the columns or pillars. Thirdly and lastly, a perfectly developed system of cross-vaulting makes it possible so to heighten the clerestory windows that their archivolts shall reach the utmost interior height of the building, and so to broaden them that their width between reveals may approximate very closely to the interval between column and column below. By these improvements (as ultimately realized in the perfected Gothic of the thirteenth century) the somewhat rudimentary design of the ancient Roman basilica may be said to have reached the highest development of which it is capable. The gradual development of cross-vaulting it is to be observed, did not take place in those districts of Southern and Central France which had already become the home of the barrel-vault and to a less degree of the cupola, but first in Lombardy then in Germany, and finally in Northern France and in England. In these countries the evolution of the Romanesque timber-roofed basilican church had -- with local variations of course -- reached a far more advanced stage than was ever attained in these regions in which the adoption of barrel-vaulting at a relatively early date had in a manner put a check on architectural progress. And it is noteworthy that in Lombardy and Germany, when cross-vaulting was first adopted, its development was far less complete than in Northern France, and that in like manner the advance towards perfection was both less rapid and less complete in Normandy than in Picardy and the Ile-de-France. These two districts were the last to adopt the system, but it was here that it was within the brief space of less than fifty years (1170-1220), brought to its final perfection. The reason may probably have been, as Dehio and von Bezold suggest, that the architects of the Ile- de-France, in the days of Philip Augustus and St. Louis, were less trammelled than those of Normandy by the traditions of a school. The comparative lack of important architectural monuments of an earlier date left them, say these writers, a more open field for their inventive enterprise (op. cit. I, 418). The simplest form of cross-vaulting is of course that which is formed by the intersection of two cylindrical barrel-vaults of equal span. And this, without the use of ribbed groining, was the method mostly adopted by the Roman builders in their civic edifices. In the case of a pillared or columned church, however, this method had its disadvantages. In particular, having regard to the dimensions of the aisle and its vaulting, the builders of Northern Europe had all but universally adopted the plan of so spacing the columns and pillars which flank the nave that the intervals between them should be one-half the width of the church. Now the only means by which an equal height could be given to vaults of unequal span was the use of the pointed arch; and so it came about that the pointed arch was adopted, not primarily for aesthetic reasons, but rather for constructive purposes. And the same is to be said of the use of ribbed groining. The medieval builders, who, as has been said above, possessed neither a tenacious mortar nor the command of an abundant supply of rough labour, and who therefore could not -- even had they wished it -- have adopted the massive concrete masonry of the Romans, were driven by the very necessities of the case to aim at the same time to depend for stability not on the cohesion of the materials, but on the reduction of thrusts to a minimum, and on their skilful transmission to points where they could be effectively resisted. It was, then, plainly desirable to substitute for a vaulting of uniform thickness a framework of ribs on which a comparatively thin layer of stones (cut to the requisite curvature) could be laid, and as far as possible to lighten the whole construction by moulding the ribs and likewise the columns which supported the vaulting. The same principle of aiming at lightness of construction led to the elimination, as far as possible, of arches of the nave. This was done by the enlargement of the windows and the development of the triforium, till the entire building, with the exception of the buttresses, and of the spandrels below the triforium, became a graceful framework of grouped shafts and interlacing ribs (Moore, op. cit., 17). The final stage in the evolution of architecture of the pointed arch was not, however, reached, until, for the solid Romanesque buttresses, which rested on the vaulting of the aisles, and which were not only clumsy but often proved inadequate for their purpose, the genius of the Gothic builders hit upon the epoch-making device of the flying buttress. By means of this device the thrust of the main vaulting was not, indeed, as has been too often said, met by a counter-thrust, but was transmitted to the solid buttresses, mostly weighted with pinnacles, which were now built outwards to a great distance from the aisles, and the spaces between which were sometimes utilized, and might with advantage have been more often utilized, for a range of lateral chapels. The subject of Gothic architecture in its details is, however, one that needs separate treatment, and for present purposes this very inadequate indication of some of the general principles involved in its development must suffice. THE CIRCULAR CHURCH AND ITS DERIVATIVES It was stated at the outset of the article that all ecclesiastical architecture may be said to have been devel- oped from two primitive germs, the oblong and the circular chamber. Of those very numerous churches, principally, but by no means exclusively, Eastern or Italian, which may be regarded as the products of the second line of development, we shall speak very briefly. That a circular chamber without any kind of annex was unsuitable for the ordinary purposes of public worship is plain enough. And the most obvious modification of this rudimentary form was to throw out a projecting sanctuary on one side of the building, as in St. George's, Thessalonica, or in the little church of S. Tommaso in Limine, near Bergamo. It was hardly less obviously convenient to build a projecting porch or narthex on the opposite side, as in St. Elias's, also at Thessalonica, and to complete the cross by means of lateral projection, as in the sepulchral chapel of Galla Placidia at Ravenna. Thus it was that churches having the form of a Greek cross, as well as other varieties of what German authors call the Centralbau, may be said to owe their origin to a very simple process of evolution from the circular domed building. Among the almost endless varieties on the main theme may be here enumerated: buildings in which a circular, or polygonal, or quadrilateral aisle, whether in one or more stories, surrounds the central space, buildings in which, though the principal open space is cruciform, and the whole is dominated by a central cupola, the ground- plan shows a rectangular outline, the cross being, as it were, boxed within a square; and buildings in which one of the arms of the cross is considerably elongated, as in the Duomo at Florence, St. Peter's in Rome, and St. Paul's in London. The last-named modification, it is to be observed, has the effect of assimilating the ground-plan of those great churches, and of many lesser examples of the same character, to that of the Romanesque and Gothic cruciform buildings whose genealogical descent from the columned rectangular basilica is contestable. Among ecclesiastical edifices of historical importance or interest which are either circular or polygonal, or in which the circular or polygonal centre predominates over subsidiary parts of the structure, may be mentioned the Pantheon in Rome, St. Sergius at Constantinople, S. Vitale at Ravenna, S. Lorenzo at Milan, the great baptisteries of Florence, Siena, and Pisa, and the churches of the Knights Templars in various parts of Europe. St. Luke at Stiris in Phocis, besides being an excellent typical instance of true Byzantine architecture, affords a good example of the boxing of a cruciform building of the Greek type, by enclosing within the walls the square space between the adjacent limbs of the cross. Practically, however, the full development of cruciform from circular buildings became possible only when the problem had been solved of roofing a square chamber with a circular dome. This has in some cases been done by first reducing the square to an octagon, by means of squinches or trompettes, and then raising the dome on the octagon, by filling in the obtuse angles of the figure with rudimentary pendentives or faced corbelling. But already in the sixth century the architect and builder of Santa Sophia had showed for all time that it was possible by means of true pendentives, to support a dome, even of immense size, on four arches (with their piers) forming a square. The use of pendentives being once understood, it became possible, not only to combine the advantages of a great central dome with those of a cruciform church, but also to substitute domical for barrel- vaulting over the limbs of the cross, as at S. Marco, Venice, St-Front, Périgueux, and S. Antonio, Padua, or even to employ domical vaulting for a nave divided into square bays, as in the cathedral at Angouleme and other eleventh century churches in Perigord, in S. Salvatore at Venice, in the London Oratory, and (with the difference that saucer domes are here employed) in the Westminster Cathedral. Nor should it be forgotten that in the nave of St. Paul's, London, the architect had shown that domical vaulting is possible even when the bays of nave or aisles are not square, but pronouncedly oblong. Indeed, if account be taken of the manifold disadvantages of barrel-vaulting as a means of roofing the nave of a large church, it may safely be said that the employment of some form of the dome or cupola is as necessary to the logical and structural perfection of the architecture of the round arch as ribbed groining and the use of flying buttresses are necessary to the logical and structural perfection of the architecture of the pointed arch. SYSTEMS AND STYLES OF ARCHITECTURE IN RELIGION TO MODERN NEEDS A word must now be said, in conclusion, as to the merits of the several systems and styles of architecture, more especially in relation to the needs of our own day. Of systems, indeed, there are in truth only three, the trabeate or that of which the horizontal lintel may be regarded as the generating element, and which of necessity postulates a timber roof; that of the round arch, which by virtue of the law of economy postulates, as has been said, the use of domical rather than barrel-vaulting and that of the pointed arch, which, if carried to perfection postulates ribbed groining and the use of the flying buttress. The second system, however, admits of two methods of treatment which are sufficiently distinctive to be classed as two styles, viz. the neoclassical, or Renaissance, and the Byzantine, and which shall be particularized presently. Now the trabeate system, or that of the timber roof, may be very briefly dismissed. In the great majority of cases we must, indeed, of necessity be content with such a covering, for our churches; but no one would choose a wooden roof who could afford a vaulted building. Again, the various types of Romanesque architecture, with their imperfect and tentative methods of vaulting, though historically of great interest, should be regarded as finally out of court. On the other hands of the Gothic architecture of the thirteenth century as exemplified in the great cathedrals of Northern France and of Cologne, it mas be quite fearlessly asserted: that every single principle of construction employed therein was the outcome of centuries of practical experience, in the form of successive and progressive attempts to solve the problems of church vaulting; that the great loftiness of these buildings was not primarily due (as has been sometimes suggested) to any mere Emporstreben, or upward-soaring propensity, but was simply the aggregate result of giving to the windows of the aisles and of the clerestory a height in suitable proportion to their width, and to the triforium a height sufficient to allow of the abutment of the aisle roof; and that every subsequent attempt to modify in any substantial particular, this perfected Gothic style, was of its nature retrogressive and decadent, as may be illustrated from the English perpendicular and the Italian and Spanish varieties of Gothic architecture. Nevertheless it must be admitted that thirteenth-century Gothic, though perfect of its kind, has its limitations, the most serious of which -- in relation to modern needs -- is the necessarily restricted width of the nave. When the architect of the Milan cathedral attempted to improve on his French predecessors by exceeding their maximum width of fifty feet, and to construct a Gothic building with a nave measuring sixty feet across it was found impossible, as the building proceeded, to carry out the original design without incurring the almost certain risk of a collapse, and hence it was necessary to depress the clerestory to its present stunted proportions. Now under modern conditions of life, especially in the case of a cathedral of first-class importance, a nave of far greater width is by all means desirable; and in order to secure this greater width it is necessary either to fall back on the unsatisfactory compromise of Italian or Spanish Gothic, as illustrated in the cathedrals of Milan, Florence, or Gerona, or else to adopt the principle of the round arch, combined, by preference, with domical vaulting. This, as everyone knows, is what Mr. Bentley has done, with altogether conspicuous success, in the case of the Westminster Cathedral. Of the design of this noble edifice it is impossible to speak here. But it may be worth while to indicate one main reason for the choice of the Byzantine rather than the neoclassic or Renaissance treatment of the round-arch system. The principal difference between the two is this: that, whereas the neoclassical style, by its use of pilasters, treats every pier as though it were a cluster of huge, flat-faced columns; the Byzantine boldly distinguishes between piers and columns, and employs the latter exclusively for the purposes which monolithic shafts are suited to fulfil, for instance the support of a gallery while the piers in a Byzantine building make no pretence of being other than what they are, viz., the main supports of the vaulting. The Byzantine method of construction was employed at Westminster has the further advantage that it brings within the building the whole of the spaces between the buttresses thereby at the same time increasing the interior dimensions and avoiding the awkward appearance of ponderous external supports. Nor is the Byzantine style of architecture suitable for a great cathedral alone; and one may venture to hope that the great experiment which has been tried at Westminster will be fruitful of results in the future development of ecclesiastical architecture.

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Roman Influence On Architecture

Roman Influence on Architecture The world of architecture has been greatly influenced and affected by Roman architectural design and development. Their innovative designs and influential developments developed centuries ago have provided a basis for architectural masterpieces found across the planet and, what's more, have remained relevant into the 21st Century. While the Romans borrowed many architectural designs from the Greeks and Etruscans, the additions that they did make to the world of architecture changed that world forever. Their invention of cement, their new use of arches and vaults, the development in aqueducts, and the development of road systems brought about change that affected not only the Roman Empire but also the many peoples that that great culture touched in its many travels and conquests. “With the Roman invention of concrete in the first century BC and their growing understanding of the architectural principles of stress and counter-stress, Roman architects were able to experiment with new and elaborate forms of building, many of which were to pass in to the western architectural tradition. (Cunningham and Reich 156).” Until this innovative development, architectural progress had been severely limited and restricted. Building designs, using traditional Grecian models within the post and lintel system, had allowed for limited change. With the development of concrete and the increased understanding of its uses and applications, Romans were able to erect structures that would have previously been impossible using the Grecian post and lintel system. It was also the Roman use of concrete that led the way to many other Roman innovations in architecture, most especially the use of arches and vaults. Prior to the use of arches, Greek and republican Roman temples had been relatively small, partly because of the difficulties involved in putting a roof on a large space, without the use of supports. The Romans found and developed a way to use internal arches (“a curved structure that forms the upper edge of an open space, or the space between a bridge's supports” (Arch)) and vaults (“an arch-shaped structure, usually of masonry, used as the ceiling of a room or other enclosed space, as the roof of a building, or as the support for a ceiling or roof” (Arch and Vault)) to provide roofs for structures of increasing size and complexity. This new innovative style was adopted by the Romans from the Etruscans, as early as the fifth century BC (Cunningham and Reich 156). “Vaults used by the Romans were simple geometric forms: the barrel vault(semicircular in shape), the intersecting (groined) barrel vault, and the segmental vault. By the 1st century BC, extensive systems of vaulting were employed. A particularly fine example of Roman vaulting is the Basilica of Maxentius in Rome” (Roman Architecture), and their influence on architectural styles in using the arch can be seen in modern day Washington Square in New York and the Champs Elysees in Paris (Cunningham and Reich 155). Building upon this development, after the second century, stone arches were commonly seen in bridges and aqueducts, there by giving birth to more major innovation. Because Rome covered such a large area and housed a massive population, it required a constant supply of water. The Romans were able to tackle this problem by creating a network of pipes that carried water from the surrounding hills, into the city of Rome. Ancient Rome was supplied by more than ten aqueducts, providing the city with some 38 million gallons of water each day” (Tillery). This innovation led the way to future waterlines and sewer systems in the many places that Rome was to leave its influence, including Great Britain and France, many of which can still be seen today. Roman influence is also seen in Europe when looking at their modern day road systems. The Romans were the first civilization to make well-designed roads. This greatly increased the ability to expand because of the way roads were laid out. The major roads were constructed to keep the incredibly large empire linked so it would not fall. The Romans enhanced the roads by adding a number of things to the basic idea of roads, such as archways, city streets, and arch bridges (Road). It is easy to see, even in 21st Century contemporary life, the immense influence the Romans had on the development of architecture around the world. Whether driving through the south of Italy, walking the halls of the great gothic churches of France, or driving past the farm fields of Mexico, their mark can be seen and appreciated. There ability to understand both the science and the physics that was and still is required to build strong and reliable structures and to apply this knowledge to the development of their craft remains a statement of their innovation, genius and long-lasting effect on all of person kind. Bibliography“Arch- Encarta Word English Dictionary”. Retrieved October 20, 2000 from the World Wide Web: http://dictionary.msn.com/find/entry.asp?search=arches “Arch and Vault”. Retrieved October 20, 2000 from the World Wide Web: http://encarta.msn.com/find/Concise.asp?z=1&pg=2&ti=76 1579231&cid=6#p6 Cunningham, Lawrence S. and John J. Reich, ed. Cultures and Values :A Survey of the Western Humanities. 4th ed. Vol. 2. Fort Worth: Harcourt Brace, 1998. “Road”. Retrieved October 28, 2000 from the World Wide Web: http://www.encarta.msn.com/find/Concise.asp?z=1&pg=2&ti=761552383&cid=5 1#p51 “Roman Architecture”. Retrieved October 20, 2000 From the World Wide Web:http://lilt.ilstu.edu/bekurtz/roman_architecture.htm Tillery, Kristopher A. “ Ancient Rome Online… A Complete Source” Retrieved October 20, 2000 from the World Wide Web: .


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Roman Colusseum

Architecture of the ancient Roman Empire is considered one of the most impressive of all time. The city of Rome once was home to more than one million residents in the early centuries AD1. The Romans had a fine selection of building monuments in the city of Rome including the forums for civic services, temples of worship, and amphitheaters for recreation and play. The Romans made great use and pioneered great architecture mechanisms including arches, columns, and even mechanical elements in pulleys and early elevators. However, when one tends to think of great buildings, one building stands out in Rome. This building is the Flavian Amphitheatre, or better known as the Colosseum. When discussing such a great monument such as the Colosseum, it is very important to realize the time, place, and culture in wish it stood to fully understand both its form and function. In the beginnings, Rome was both influenced by the Etruscans of the North and Greeks of Italy and South but had its basic roots from a long time of Samnite domination2. The Etruscans were that of an interesting type as described by Peter Quennell: The Etruscans...combined a passionate devotion to the ordinary pleasures of life with a haunting fear of death. They were cruel, too, and deeply superstitious...their victims were ordered to fight among themselves until the last had fallen. The Etruscans would have a strong impression in Roman lifestyles and philosophies. For example, the purple robe worn by leaders would be later adopted by the Romans. They also were the influence which brought gladiatorial battles of sacrifice into the Roman culture. This was a time of blood thirsty humans who loved the site of battle. Even an early christian named Alypius proclaimed that he took away with him a mad passion which prodded him not only to return (to gladatior events) with those by whom he had first been forced in, but even ahead of them and dragging in others.3 This was a time of paganism, which meant sacrifice and death. Early christians were persecuted for their beliefs in the first few centuries. Clearly in Rome, the focus was not only on religion or the emporer, but we have a focus on leisure and activities. It is said that of a three-hundred and sixty-five day year that one-hundred and fifty days were celebrated as regular holidays, with over ninety days given up to games4. This type of lifestyle would dominate the cities and architecture of the Romans for some time to come. The people of Rome enjoyed theatres, battles, races, baths, comical events, and of course the game of death. There were many forums, temples, and many amphitheaters in the history of Rome, however only a few stand out even today. The Colosseum is the greatest standing building of Rome, and one of the most recognized worldwide architectural achievements to this day. The amphitheater is a type of architecture that was without Greek precedents. This makes sense since its primary purpose was to hold gladitiator fights and brutal shows which were banned in Athens at the time. Such events held in Roman amphitheaters were horseracing, gymnastics, mock cavalry battles, footraces, prizefighting, wrestling, fights between animals, between men, animals and men, and even naumachiae, or mock sea battles5. One of the first amphitheaters was the Pompeian amphitheater of Pompeii of 30 BC. Like the Colosseum, it was oval in plan. It was supported on great masses of solid earth pierced by a broad corridor at each end. Stone seats were added at one time but most spectators sat on the earth or wooden chairs. Although this amphitheater was a great innovation, it would be eclipsed by the Flavian Amphitheater, better known as the Colosseum. The great building although fitting and plain in design to its surroundings of Rome still stood out due to its sheer monstrosity and oval shape. Although the site viewed today is still a marvel, back in the days of its prime it was a spectacular site that would be difficult to apprehend with only words[TVK1]. [TVK2] The city which held the great structure was full of great examples of the use of arches, columns from every order, and of course sheer size. When traveling the city to the Colosseum the whole area had been paved and railed off. The approach was taken by cobbled slabs of lava, and then one entered an area paved with travertine more than five thousand feet wide and surrounded by huge boundary stones6. To a spectator at the time the Colosseum from the outside is described by the romantic poet Johann Wolggang von Goethe: When one looks at it all else seems little; the edifice is so vast, that one cannot hold the image of it in one's soul- in memory we think it smaller, and then return to it again to find it every time greater than before. As one looked at it from the city, there were many sights to behold, but the Colosseum stood out 19 centuries ago, and still does to this date. At the end of the Emperor Nero and the triumph of the Flavians every effort was made to forget the times of the Julio-Claudians (of which Julius Caesar's family) and move to newer times. The focus of arhictecture and buildings shifted from the emperor's creations to the public's buildings. The next prominent emperor was Vespasian. His first contribution to the public was an enormous forum with a temple of Peace in it.7 His greatest feat was the beginning of the construction of the Colosseum for games purposes around 72 AD. Titus succeeded the ever-joking Vespasian and completed his fathers dream around 79-80 AD. The dedication of the Colesseum was a lavish gladiator show that lasted for exactly one-hundred days in which over nine thousand animals were killed.8 A typical day at the Colesseum show usually started with a bloodless comic relief battle, often times with dwarfs, women, or cripples battling with wooden objects. A tuba would sound and the main events would begin. The gladiator fights were the most popular and prominent fights. These featured two highly trained men battling for courage, strength, and dignity. They would often rather take a blow and stand strong than wimper and run in defense. The people were in love with gladiators much like today's sport heroes. It is written that famous women would even leave their husbands for famous gladiators which were known to be very scarred and ugly by Roman standards.9 The gladiator fight was a ruthless blood-ridden spectacle which usually ended in death by the loser who begged for mercy and was chosen to die by the present emperor or crowd cheers of 45,000 hysterical fans. Even more appalling than the gladiator fights may have been the famous wild beast hunts. Some beast slayers fought lions, tigers, bears, and bulls which brought many animals to near extinction in the surrounding areas. However, even worse than the wild beast hunts was the killings of rather harmless animals such as ostriches, giraffes, deer, elephants, and even hippopotami all for the delight of the crowd. The Colosseum utilized machinery to even raise animals to the battle floor from beneath where the catacombs and passages lay. The Colosseum would be decorated with trees, hillocks, and other elements to simulate natural surroundings.10 One such fighter was the deranged emperor Commodus who had such a passion for unequal combat he visited the Colesseum more than a thousand times slaughtering at one time one hundred bears, killed ostriches, and even innocent fans if they laughed. It was clear to many that he was insane, and he was assinated by a famous athlete. Perhaps the most interesting of all events held was the mock sea battles. The Romans were famous for running water in their architecture, and this allowed them to flood the battle field and hold mock sea battles. Of course with all of this bloodshed, it was very controversal starting in the third to fourth centuries. The paganism of Rome had rooted from the Etruscans and was evident at the Colosseum. Christianity was also spreading around, but most Roman emperors would not accept Christians. As Peter Quennell puts it in his writings: The Christians, like the Jews with whom they were sometimes confused, were reported to worship an ass-headed god and were also said to practice incest, cannabalism, and other equally atrocious crimes. The Christians were inflamed, said their pagan adversaries, by an odium generis humani, a downright loathing of the human race, and as public enemies they at once received the blame for any calamity that might befall the empire. As one can tell from the above descriptions, many Christians were persecuted by the Roman emperors. If one did not choose to pledge their loyalty to the emperor by a sacrificial ceremony and to deny their own religion, they were executed. Some executions were in the Colosseum where the Christians were defenseless and killed by wild lions. Others were burned alive at the stake, shot with arrows, or stoned. The major changes of attitude towards Christians came with the Constantine the Great. He last exchanged the purple pagan robes for the white robes of Christian faith. However paganism continued until 392, when Theodosius I and Valentinian II prohibited any form of pagan sacrifice. However it was Honorius who abolished the games of the Colosseum, but criminals were still persecuted there for more than one-hundred years. 11 After that it was generally used up until the end of the sixth century for concerts, sermons, and bullfights. The structure itself of the Colloseum can be summarized as the symbol of Rome and it's respect across the world: mammouth. The overall plan is a huge elliptical structure measuring about 617 by 512 feet: the measure of the actual arena are 280 by 180.12 Estimates of capacity range from 45,000 to 50,000 spectators. It is believed to be made of two half circles in order for the accoustics to be amplified. The building incorporates many Roman influences with some Greek past, and some of its own technologies that are some of the most wonderous creations of man. The most important of aspects of this monument are in its arches, columns, vaulting, technological advances, and in its mere magnitude. The arches and barrel-vaulting are typical of Roman buildings and architecture, but should be given more thought. The Colosseum is built as four stories which was unprecedented in its day. The arch was a great Roman architecture innovation which allowed for great amounts of weight to be carried over long spans. The arches allowed for the great load bearing required to support a monument such as the Colosseum. Arches are built by a series of stones or bricks placed side by side in such a manner that they can support one another and weight while bridging a wide space. A barrel-vault is a half cylinder created from the continuation of the arches. The outermost walls of the structure sat on eighty piers connected by stone barrel-vaults. The four stories symbolized the basic Roman orders: Tuscan (variation of Doric), Ionic, Corinthian, and tall Corinthian pilasters on the fourth story. The outer walls on the bottom were faced in Doric columns faced with travertine with an Ionic entablature which ran all around the building. Inside the building the columns on the bottom were Doric and contained two parallel corridors barrel-vaulted in concrete which surrounded the building. The second level and third level were similar to the first, except the outer walls were separated by lined up columns of the Ionic order, and the third level outer wall was Corinthian. The fourth level is different than the first three and this had much to do with the covering of the Colosseum which will be discussed later. It consisted of a flatter surface with Corinthian pilistars and in alternating sections contained windows. The roof of the upper corridor seems to have formed a flat wooden platform below the top of the outer wall. The sailors who operated the roof used this platform. The seating was sat at a 37 degree angle13, and had a stairway system to enter the three levels as shown by the cutouts of the four levels below. The building was not made all of travistine, but was made of lighter and porous pumice stone and also of brick and concrete. The seating on the bottom was covered in marble and brass, and higher levels were made of wood. Some of the technology employed at the time of this building is very similar to today's buildings of similar uses for games. For instance there were 76 entrance gates of the 80 piers. The latter four were used for emperors and gladiators (one of which was used to drag the bodies to an unmarked grave). The entrance gates were numbered and corresponded to numbers stamped on the fan's tickets much like todays sporting events. With 80 gates one could easily maneuver to their correct gate. In the ground floor contained an intricate labyrinth of cells which housed the gladiators, animals, and workers. There were splendid uses of machinery in which to lift the gladiator or animal to the surface of the battle arena. But the most amazing construction at the Colosseum had nothing to do with the show. It was designed purely for the benefit of the audience, to keep them calm and content as the violent spectacle unfolded below. It was a roof. The roof of the Colleseum was one that was retractable and much like a sailor. So much in fact, sailors who lived in a nearby town managed the velarium, or colored awning. This was a remarkable feat considering that most stadiums now days are still not fully enclosed (such as the Cowboy's stadium). The use of the corbels on the uppermost deck and the use of a pulley system brought about this feat of ingenious. Some archeologists thought that the roof was non-existent or was a web of ropes, but it is now believed to be made from masts and pulleys. The masts would hold horizontal masts on which to pull the awning over. It is believed that it did not cover the whole structure, but at least the most important seatings of the emperor for the whole day.14 Hebrew prisoners and slaves of the time employed the building of the Colesseum. All the details of the actual construction are unknown, but it is based upon a barrel-vaulted scheme that circles around. The builders used tavertine blocks to construct a framework of piers, arches, and linked walls and vaults. The cement posts go deep into the ground to support the great weight. The lower level vaults were constructed of tufa or pumice. On the upper floors the walls were built with brick and concrete (utilizing volcanic sand to dry). Travertine was used to surround the outside and was held in place by iron clamps. 15 The experience of being outside the Colosseum was plain except for the added statues. The outside of the building was paved with boundaries and roads. One could make out the hundreds of semicircles and arches. The arches increased upwards from Truscan, Doric, and Corinthian columns to the Corinthian Pillars and wall of the fourth deck. The outside was a brilliant travertine that must have been a spectacular sight. Next to the building one would feel he is nothing but a little gnat compared to the great building. To get inside one must enter their gate, and proceed up the stairway to the designated level much like a modern stadium. Since there were 80 entrances, many people could occupy the great Amphitheater. Inside the Coloseum the arena floor was wooden and covered with sand to soak the blood. There was a great podium made of marble on the sidelines housed the dignitaries. Above that were marble seats for distinguished private citizens. The second held the middle class, the third held slaves and foreigners, and the fourth levels were for women and the poor who sat on wooden seats.16 The great velarium was multicolored and must have been a specticle on the inside of the Colosseum when raised. This would also shadow and protect the fans from nature. The arches allowed for great ventilation, stability, and passageways to keep the crowd comfortable all day. On a whole the Colosseum is symbolized by its size which represents the greatness of Rome. The name may be attributed to its size, or some believe to the colossal statue of Nero nicknamed the crowned colossus that was nearby. With all of the circular motifs used by the arches, and of the building itself, some believe it symbolizes the sun. This also makes sense considering part of the Colosseum was built from the Golden House of Nero, also known as the solar statue, or sun statue. Many symbols used in the Colosseum were of Pagan descendent. This included the sacrifices, purple robes, battle-axes, and hammers of the Etruscan Pagans. The cross was erected to commemorate the early Christians who are believed to have died here (although there is no evidence to support this belief). The great arch beside the Coliseum was erected in the third century in honor of Constantine, although much of its decoration was pilfered from monuments to other emperors. Since one of the symbols was of the sun, the arches created natural and splendid light and shadows as shown in the picture. Much poetry has been written of the light, shadows, and even smoke from the arches of the Colosseum. When it was not noon the light would create long shadows and yet have bright instances which accentuate the arches and columns in the bright light. It shows an alternating natural pattern of shadows. One of the first natural changes of the Colosseum came in 320 when lightning struck and damaged the building. In 422 it was damaged by an earthquake. However Theodosius II and Valentitian III repaired it only to be again damaged by an earthquake in 508. After the sixth century the city of Rome and the Coleseum went downhill because of some devastating disasters. Towards the end of the sixth century grass was starting to grow rampant at the Colosseum, . 1 The colleseum, pg 52 2 history arch p 191 3 the colle p 60 4 the colleseum pf 52 5 history theatre p 61 6 colo pg 41 7 rome p 64 8 history theatre p61 9000! 9 P 48, colesseum 10 drama 11 cole p72 12 arc rom greece 13 hist arch p 208 14 nova 15 the colop 40 16 col the, p 39 [TVK1] [TVK2]PICTURE!!!

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Roman Architecture

The architectural style of Rome was firmly rooted in the Hellenistic traditions. However, Roman architecture is probably more accurately reflected in the development of new engineering skills and secular monuments than the ideas of gods and perfection that birthed the Greek architecture. They introduced not only new ways to construct a more efficient building but also a entirely different purpose for the building to be built. While still holding the beauty that was so masterfully achieved by the Greek culture and adding their own practically and ingenuity, the Romans developed an architectural style that remains to this day. The Greeks people had a very good reason, in their minds, to build a beautiful piece of architecture; the worship of gods. Most all of the examples of Greek architecture that we know of today were temples. The gods were the driving force behind any major architecture of the Hellenistic period. This is not true of the Roman culture. Though the Romans did build temples to their gods, the Roman style was more predominantly seen in public dwellings and social gathering areas, such as basilicas and forums, than in their temples. In fact, a majority of the temples that the Romans built were nothing more than copies of Greek temples, with the exception of the domed Pantheon that will be discussed later. Also, the Romans included their emperors in the temples along with the gods and sometimes the temple was just for the emperor himself. Another major difference between Greek and Roman architecture was the purpose behind the building. Greek architecture was meant to be viewed as a piece of art work that was dedicated to the gods. This is easy to see from the ornateness of the outside of the building with the pediments and metopes and the rather drabness of the inside with the exception of the friezes. The Greek designed it as a sculpture in a sense, with all of the beauty to be viewed from the outside. This way of thinking is turned completely around in the Roman architectural style. Although the Roman building are beautiful on the outside, the true art lies on the inside with the many-colored walls and paintings that gave a sense of depth to the room. Also, the Roman architect was concerned with the lighting of the room so that the interior decorations could be seen clearly. These things were important to the Romans because their buildings were meant to be gathering places for the public. The basilica was one such of these types of buildings that was intended to be a gathering place for Romans citizens to hold meeting and perhaps even courts. Bathhouses and market places know as forums are yet other examples of the types of building that the Romans focused on making pleasing to the eye on the inside rather than the outside. Not only did the Romans differ on why to build a building but they also made drastic differences on how to build it. The Greeks used what is know as a “post and lintel” system of designing a building. This is basically the idea of standing to columns up and placing a beam across them. A very simple and easy construction but on the other hand not a very strong one. As the Roman civilization grew larger and larger the buildings they used for meetings and markets of course had to grow too. This presented a problem with the use of columns, because the big the building, the more columns needed to hold it up. Thus the Romans turned to engineering for the solution and the arch was born. By using arches instead of columns and beams, the weight of the structure was spread evenly out and toward the ground rather than directly down on the beam. This increased the amount of weight that could be supported in a single area and thus giving more room on the inside by taking away previously necessary columns, though they did keep some around for decoration. This invention of course changed the mindset on the construction of regular building that would have relied of columns, but it also was a stepping stone to another invention. The dome is nothing more than a network of arches that form an enclosed building. This is the theory that created the Pantheon, a circular dome that was the temple to the gods. It is one of the first of its kind and has stood for thousands of years while other building designed strictly with columns have turn into nothing more than ruins. The superior engineering skills of the Romans truly played a major role in their architecture and set it apart from their Greek counterparts. Though the origin of their ideas came from the Greek architecture, the Romans were brilliant in the ways in which they organized and improved those ideas. They pioneered innovations in architecture, produced ground-breaking designs, and altered the very way we view buildings. They have left an everlasting impact on architecture by combining their way of life in the architecture that begin long before them.

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Pantheon

Introduction I chose to report on the pantheon because I’ve seen pictures and I am also very fascinated by all the Roman monuments. I looked all around the internet and libraries. The Pantheon was very hard to find information about. It was very challenging but I found enough information to complete this report. This famous building stands in the business district of Romemuch as it was built some 18 centuries ago. Amazingly, it has withstood the ravages of both the elements and war permitting a firsthand view of a unique product constructed by Roman hands. Now, it is exposed to acid rain and fumes from passing automobiles and overshadowed by buildings of inferior taste; but, with trust in the future, the Pantheon will survive. Unrecognized, the design of this ancient concrete building reveals unparalleled features not encountered in modern design standards. Recent studies reveal several major cracks in the dome, but it still functions unimpaired. This condition will surely excite the curiosity of our structural engineers. The building was built entirely without steel reinforcing rods to resist tensile cracking, so necessary in concrete members, and for this concrete dome with a long span to last centuries is incredible. Today, no engineer would dare build this structure without steel rods! Modern codes of engineering practice would not permit such mischief. No investor with knowledge of concrete design would provide the funding. Additional constraints when attempting to build a structure as large as the Pantheon will be discussed later, but briefly they include the use of inadequate hand tools and unsafe lifting devices. I believe we can learn from this activity. Workers can build from a plan and can successfully use their proven practices only if construction quality controls are maintained. History tells us that the Pantheon is a Greek word meaning to honor all Gods (particularly the Olympian divinities). It is ironic that our building has existed throughout many wars while being dedicated to all Gods; one can readily perceive this to be a temple for our one God. And, the Church has claimed this holy structure as a resting place for its most famous Popes, so we continue to honor its magnificent divinity. The first incarnation of this ancient temple was built by Agrippa, the son-in-law of the Roman Emperor Augustus, about 27 B.C. Today, above the entrance carved in stone are the words M. AGRIPPA L. F. COS. TERTIUM FECIT which is translated, Marcus Agrippa, son of Lucius, in his third consulate, made it. Indeed, it is worth mentioning that Agrippa's engineering talents were used in building the famous Pont de Gard aqueduct in France. As with many cities, tragedy in the form of large fires such as those of 60, 64, 79, 100 and 110 A.D. seemed to strike Rome. Originally, many Roman buildings contained travertine (limestone rock) which easily cracked in fires. The first Pantheon was severely damaged and required replacement except for some parts of the lower porch section and foundation. The Pantheon was rebuilt by the Emperor Hadrian during the period 118 to 128 A.D. (a time given by Ward-Perkins).2 But the Ward-Perkins's period is disputed by, Lugli who said the building was started sometime after 123 A.D. and was finished by Emperor Pius about 140 A.D.3 However, most of the bricks were made and placed in the Pantheon in 123 A.D., a date that the maker stamped on his bricks. This was discovered in 1892 by the French archaeologist, George Chedanne. It appears the construction of the rotunda walls took a period of 4 to 5 years, and the dome required a like period because of its height and the meager tools the Romans used. This long construction period was fortunate as it gave this pozzolan concrete ample time to cure and gain strength. Was the second temple like the first? Yes, the fundamental principle of the old Roman religion required that the temples be rebuilt without changes in original form. Tradition required that the main entrance face north, and thus the whole building was oriented on the north-south axis of the building. A description of its structural features is separated into the configuration, foundation ring, circular walls, and dome to more clearly define various components. How these pieces are unique in view of today's design requirements will be discussed shortly. Body The Pantheon is one of the great spiritual buildings of the world. It was built as a Roman temple and later consecrated as a Catholic Church. Its monumental porch originally faced a rectangular colonnaded temple courtyard and now enfronts the smaller Piazza della Rotonda. Through great bronze doors, one enters one great circular room. The interior volume is a cylinder above which rises the hemispherical dome. Opposite the door is a recessed semicircular apse, and on each side re three additional recesses, alternately rectangular and semicircular, separated from the space under the dome by paired monolithic columns. The only natural light enters through an unglazed oculus at the center of the dome and through the bronze doors to the portico. As the sun moves, striking patterns of light illuminate the walls and floors of porphyry, granite and yellow marbles. Inside the Pantheon The building design is one of a large round shape very much like a large barrel with a dome covering the top. There is a light-well in the center of the dome. Layers of beautiful thin brickwork cover the outside, round walls. Small access holes appear occasionally in the wall which were used during construction to frame interior voids. The main entrance is thoroughly impressive: double bronze doors 21 feet high (6.4 meters), a lasting and fitting contribution from their metal smiths. These doors are protected by a high, broad porch, made with 16 well arranged granite columns supporting a gable styled roof. The beams in the roof structure of the porch are wooden. They were substituted for bronze members stripped-out by those in later years needing metal for their canons. Professional Roman surveyors located the inlaid marble floor to conform with a convex contour which drained away the rain from the oculus for these hundreds of years. In the following descriptions, some general dimensions are given to indicate the magnitude of this undertaking by the Romans. The rotunda has a rather awesome inner diameter of 142.4 feet (43.4 m), made mostly of concrete. Comparatively speaking, this distance represents about one half the length of our football field. And from the floor to the top of the opening in the dome is the same distance. As a matter of fact, we could think of the design of this building as one that could contain a theoretical ball some 143 feet in diameter. The design is not entirely unusual because there are other Roman buildings which have a similar configuration, but the size is unusual. Other buildings such as the Temple of Mercury (71 feet/21.5 m diameter) at Baiae and Domitian Nympheaum at Albano (51 feet/15.6 m diameter) have domes of this type. The Pantheon still has the longest span constructed before the 19th Century. To provide details on this complex configuration, the following figures show the building with its two-ring foundation, voids in the walls, and the step-ring and coffer arrangement in the dome. Foundation The Pantheon was built on marshy, unstable earth which gave a serious supporting problem to its builders. The Jutland Archaeological Society described in detail various aspects of the ring foundation; they found it rested on a bed of bluish colored river clay.8 This condition invited disaster, and in the final construction phase, the foundation cracked at the two ends of the North-South axis. If one section of a building settles slightly faster and lower than an adjacent section, very large bending stresses are initiated at a point between these two sections which can crack the concrete. And uneven settling was the problem given to the builders. The present-day engineering solution to this type of foundation problem is to drive piles through the clay to bedrock so the building will be firmly supported all the way around. The Roman builders chose a different approach. They built a second ring to hold the first ring from cracking further and to give the clay more area to support the structure. It worked because the building has lasted over 1800 years. In addition to keeping the crack from extending, the builders placed buttress walls on the south side opposite the massive porch. This acted as a clampng device; and although the structural projection appears to be an additional room, it only serves the purpose of being part of the clamp. These rings are made of pozzolan concrete consisting of travertine pieces in layers held together by a mortar of lime and pozzolan. This will be discussed later in this work. Interestingly enough, the Jutland Society's investigation showed the foundation material had become rock hard,11 a case we might expect when we study the chemistry of pozzolanic reaction under these conditions. How It Stands up The challenge of determining stresses within various sections of the Pantheon has always excited both architects and engineers who are interested in the building. Technical design people recognized that the long 143 foot span of the ancient dome could have critical stress concentrations leading to a catastrophic failure of the structure, but this has not happened. Nothing in life seems perfect, and this is the case with the Pantheon. The dome and walls have cracked. Concrete cracks under excessive tensile stress as viewed in a hoop condition. A. Terenzio, an Italian superintendent of monuments, documented cracking in the walls and dome duringhis inspection of the Pantheon in 1930. Terenzio identifies fractures `reaching from the base of the rotunda to the summit of the dome' that he thought were brought about by differential settlement from uneven loading of the wall, particularly near the entrance of the rotunda in the principal niche. Rather than finding vertical differential settlement, we have observed only traces of lateral opening across the cracks corresponding to the effect of hoop tension. Terenzio believed cracking occurred shortly after construction because of dated brick repairs. The Mark and Hutchinson study showed that meridional cracking in the dome was in the lower half extending up to about 57 degrees from the horizontal on the spring line. An earlier stress analysis of this dome by Cowan theoretically placed this point at 37 degrees 36'. This is the point where hoop stresses in the dome change from tension to compression presenting a point of weakness within the unreinforced concrete dome. This theoretical point is in reasonable agreement with the actual end of meridional cracking. The Mark and Hutchinson study located the cracks as occurring generally at the openings within the upper cylindrical wall which increased local tensile hoop stresses. In addition to dome, Terenzio mentioned that cracks in the walls extended upward from 24.6 feet (7.5 m) above the floor. The cracking pattern of the concrete in the Pantheon provides an unique stress configuration acting in the dome and walls. Mark and Hutchinson describe this picture as one in which the major internal forces in the cracked dome are only in the meridional direction, and this region serves as a series of arches which bears a common compression keystone in the form of the uncracked upper dome. The cracked walls serve as a series of independent piers to support these arches. Perhaps as insurance against som future dislocation, should we add a steel band around a step-ring? Although the building has survived centuries, this valuable, cracked landmark of Roman history should be protected against future earthquakes at a small cost. Conclusion As you can tell the Pantheon was a great structure created by the Romans. I believe it has played a great role in Greek history. Even though this building is unpopular to many people, but this report proves that it is one of the greatest and most historical man made creation. BibliographyEncarta 95 Encyclopedia H. W. Cowan, The Master Builders. John Wiley and Son, New York, 1977 Http://www.broyan/sor/index.pa-pr/Pantheon.html- Programmer: Jack M. Loudel BibliographyIntroduction I chose to report on the pantheon because I’ve seen pictures and I am also very fascinated by all the Roman monuments. I looked all around the internet and libraries. The Pantheon was very hard to find information about. It was very challenging but I found enough information to complete this report. This famous building stands in the business district of Romemuch as it was built some 18 centuries ago. Amazingly, it has withstood the ravages of both the elements and war permitting a firsthand view of a unique product constructed by Roman hands. Now, it is exposed to acid rain and fumes from passing automobiles and overshadowed by buildings of inferior taste; but, with trust in the future, the Pantheon will survive. Unrecognized, the design of this ancient concrete building reveals unparalleled features not encountered in modern design standards. Recent studies reveal several major cracks in the dome, but it still functions unimpaired. This condition will surely excite the curiosity of our structural engineers. The building was built entirely without steel reinforcing rods to resist tensile cracking, so necessary in concrete members, and for this concrete dome with a long span to last centuries is incredible. Today, no engineer would dare build this structure without steel rods! Modern codes of engineering practice would not permit such mischief. No investor with knowledge of concrete design would provide the funding. Additional constraints when attempting to build a structure as large as the Pantheon will be discussed later, but briefly they include the use of inadequate hand tools and unsafe lifting devices. I believe we can learn from this activity. Workers can build from a plan and can successfully use their proven practices only if construction quality controls are maintained. History tells us that the Pantheon is a Greek word meaning to honor all Gods (particularly the Olympian divinities). It is ironic that our building has existed throughout many wars while being dedicated to all Gods; one can readily perceive this to be a temple for our one God. And, the Church has claimed this holy structure as a resting place for its most famous Popes, so we continue to honor its magnificent divinity. The first incarnation of this ancient temple was built by Agrippa, the son-in-law of the Roman Emperor Augustus, about 27 B.C. Today, above the entrance carved in stone are the words M. AGRIPPA L. F. COS. TERTIUM FECIT which is translated, Marcus Agrippa, son of Lucius, in his third consulate, made it. Indeed, it is worth mentioning that Agrippa's engineering talents were used in building the famous Pont de Gard aqueduct in France. As with many cities, tragedy in the form of large fires such as those of 60, 64, 79, 100 and 110 A.D. seemed to strike Rome. Originally, many Roman buildings contained travertine (limestone rock) which easily cracked in fires. The first Pantheon was severely damaged and required replacement except for some parts of the lower porch section and foundation. The Pantheon was rebuilt by the Emperor Hadrian during the period 118 to 128 A.D. (a time given by Ward-Perkins).2 But the Ward-Perkins's period is disputed by, Lugli who said the building was started sometime after 123 A.D. and was finished by Emperor Pius about 140 A.D.3 However, most of the bricks were made and placed in the Pantheon in 123 A.D., a date that the maker stamped on his bricks. This was discovered in 1892 by the French archaeologist, George Chedanne. It appears the construction of the rotunda walls took a period of 4 to 5 years, and the dome required a like period because of its height and the meager tools the Romans used. This long construction period was fortunate as it gave this pozzolan concrete ample time to cure and gain strength. Was the second temple like the first? Yes, the fundamental principle of the old Roman religion required that the temples be rebuilt without changes in original form. Tradition required that the main entrance face north, and thus the whole building was oriented on the north-south axis of the building. A description of its structural features is separated into the configuration, foundation ring, circular walls, and dome to more clearly define various components. How these pieces are unique in view of today's design requirements will be discussed shortly. Body The Pantheon is one of the great spiritual buildings of the world. It was built as a Roman temple and later consecrated as a Catholic Church. Its monumental porch originally faced a rectangular colonnaded temple courtyard and now enfronts the smaller Piazza della Rotonda. Through great bronze doors, one enters one great circular room. The interior volume is a cylinder above which rises the hemispherical dome. Opposite the door is a recessed semicircular apse, and on each side re three additional recesses, alternately rectangular and semicircular, separated from the space under the dome by paired monolithic columns. The only natural light enters through an unglazed oculus at the center of the dome and through the bronze doors to the portico. As the sun moves, striking patterns of light illuminate the walls and floors of porphyry, granite and yellow marbles. Inside the Pantheon The building design is one of a large round shape very much like a large barrel with a dome covering the top. There is a light-well in the center of the dome. Layers of beautiful thin brickwork cover the outside, round walls. Small access holes appear occasionally in the wall which were used during construction to frame interior voids. The main entrance is thoroughly impressive: double bronze doors 21 feet high (6.4 meters), a lasting and fitting contribution from their metal smiths. These doors are protected by a high, broad porch, made with 16 well arranged granite columns supporting a gable styled roof. The beams in the roof structure of the porch are wooden. They were substituted for bronze members stripped-out by those in later years needing metal for their canons. Professional Roman surveyors located the inlaid marble floor to conform with a convex contour which drained away the rain from the oculus for these hundreds of years. In the following descriptions, some general dimensions are given to indicate the magnitude of this undertaking by the Romans. The rotunda has a rather awesome inner diameter of 142.4 feet (43.4 m), made mostly of concrete. Comparatively speaking, this distance represents about one half the length of our football field. And from the floor to the top of the opening in the dome is the same distance. As a matter of fact, we could think of the design of this building as one that could contain a theoretical ball some 143 feet in diameter. The design is not entirely unusual because there are other Roman buildings which have a similar configuration, but the size is unusual. Other buildings such as the Temple of Mercury (71 feet/21.5 m diameter) at Baiae and Domitian Nympheaum at Albano (51 feet/15.6 m diameter) have domes of this type. The Pantheon still has the longest span constructed before the 19th Century. To provide details on this complex configuration, the following figures show the building with its two-ring foundation, voids in the walls, and the step-ring and coffer arrangement in the dome. Foundation The Pantheon was built on marshy, unstable earth which gave a serious supporting problem to its builders. The Jutland Archaeological Society described in detail various aspects of the ring foundation; they found it rested on a bed of bluish colored river clay.8 This condition invited disaster, and in the final construction phase, the foundation cracked at the two ends of the North-South axis. If one section of a building settles slightly faster and lower than an adjacent section, very large bending stresses are initiated at a point between these two sections which can crack the concrete. And uneven settling was the problem given to the builders. The present-day engineering solution to this type of foundation problem is to drive piles through the clay to bedrock so the building will be firmly supported all the way around. The Roman builders chose a different approach. They built a second ring to hold the first ring from cracking further and to give the clay more area to support the structure. It worked because the building has lasted over 1800 years. In addition to keeping the crack from extending, the builders placed buttress walls on the south side opposite the massive porch. This acted as a clampng device; and although the structural projection appears to be an additional room, it only serves the purpose of being part of the clamp. These rings are made of pozzolan concrete consisting of travertine pieces in layers held together by a mortar of lime and pozzolan. This will be discussed later in this work. Interestingly enough, the Jutland Society's investigation showed the foundation material had become rock hard,11 a case we might expect when we study the chemistry of pozzolanic reaction under these conditions. How It Stands up The challenge of determining stresses within various sections of the Pantheon has always excited both architects and engineers who are interested in the building. Technical design people recognized that the long 143 foot span of the ancient dome could have critical stress concentrations leading to a catastrophic failure of the structure, but this has not happened. Nothing in life seems perfect, and this is the case with the Pantheon. The dome and walls have cracked. Concrete cracks under excessive tensile stress as viewed in a hoop condition. A. Terenzio, an Italian superintendent of monuments, documented cracking in the walls and dome duringhis inspection of the Pantheon in 1930. Terenzio identifies fractures `reaching from the base of the rotunda to the summit of the dome' that he thought were brought about by differential settlement from uneven loading of the wall, particularly near the entrance of the rotunda in the principal niche. Rather than finding vertical differential settlement, we have observed only traces of lateral opening across the cracks corresponding to the effect of hoop tension. Terenzio believed cracking occurred shortly after construction because of dated brick repairs. The Mark and Hutchinson study showed that meridional cracking in the dome was in the lower half extending up to about 57 degrees from the horizontal on the spring line. An earlier stress analysis of this dome by Cowan theoretically placed this point at 37 degrees 36'. This is the point where hoop stresses in the dome change from tension to compression presenting a point of weakness within the unreinforced concrete dome. This theoretical point is in reasonable agreement with the actual end of meridional cracking. The Mark and Hutchinson study located the cracks as occurring generally at the openings within the upper cylindrical wall which increased local tensile hoop stresses. In addition to dome, Terenzio mentioned that cracks in the walls extended upward from 24.6 feet (7.5 m) above the floor. The cracking pattern of the concrete in the Pantheon provides an unique stress configuration acting in the dome and walls. Mark and Hutchinson describe this picture as one in which the major internal forces in the cracked dome are only in the meridional direction, and this region serves as a series of arches which bears a common compression keystone in the form of the uncracked upper dome. The cracked walls serve as a series of independent piers to support these arches. Perhaps as insurance against som future dislocation, should we add a steel band around a step-ring? Although the building has survived centuries, this valuable, cracked landmark of Roman history should be protected against future earthquakes at a small cost. Conclusion As you can tell the Pantheon was a great structure created by the Romans. I believe it has played a great role in Greek history. Even though this building is unpopular to many people, but this report proves that it is one of the greatest and most historical man made creation. BibliographyEncarta 95 Encyclopedia H. W. Cowan, The Master Builders. John Wiley and Son, New York, 1977 Http://www.broyan/sor/index.pa-pr/Pantheon.html- Programmer: Jack M. Loudel

Words: 2007