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Ancient Roman technology

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Pont du Gard (1st century AD), over the Gardon in southern France, is one of the masterpieces of Roman technology
Pont du Gard (1st century AD), over the Gardon in southern France, is one of the masterpieces of Roman technology

Roman technology is the collection of antiques, skills, methods, processes, and engineering practices which supported Roman civilization and made possible the expansion of the economy and military of ancient Rome (753 BC – 476 AD).

The Roman Empire was one of the most technologically advanced civilizations of antiquity, with some of the more advanced concepts and inventions forgotten during the turbulent eras of Late Antiquity and the early Middle Ages. Gradually, some of the technological feats of the Romans were rediscovered and/or improved upon during the Middle Ages and the beginning of the Modern Era; with some in areas such as civil engineering, construction materials, transport technology, and certain inventions such as the mechanical reaper, not improved upon until the 19th century. The Romans achieved high levels of technology in large part because they borrowed technologies from the Greeks, Etruscans, Celts, and others.

With limited sources of power, the Romans managed to build impressive structures, some of which survive to this day. The durability of Roman structures, such as roads, dams, and buildings, is accounted for the building techniques and practices they utilized in their construction projects. Rome and its surrounding area contained various types of volcanic materials, which Romans experimented with the creation of building materials, particularly cements and mortars.[1] Along with concrete, the Romans used stone, wood, and marble as building materials. They used these materials to construct civil engineering projects for their cities and transportation devices for land and sea travel.

The Romans also contributed to the development of technologies of the battlefield. Warfare was an essential aspect of Roman society and culture. The military was not only used for territorial acquisition and defense, but also as a tool for civilian administrators to use to help staff provincial governments and assist in construction projects.[2] The Romans adopted, improved, and developed military technologies for foot soldiers, cavalry, and siege weapons for land and sea environments.

In addition to military engineering, the Romans also made significant contributions to medicine medical technologies, particularly in surgery.

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Roman economy

Roman economy

The study of the Roman economy, which is, the economies of the ancient city-state of Rome and its empire during the Republican and Imperial periods remains highly speculative. There are no surviving records of business and government accounts, such as detailed reports of tax revenues, and few literary sources regarding economic activity. Instead, the study of this ancient economy is today mainly based on the surviving archeological and literary evidence that allow researchers to form conjectures based on comparisons with other more recent pre-industrial economies.

Military of ancient Rome

Military of ancient Rome

The military of ancient Rome, according to Titus Livius, one of the more illustrious historians of Rome over the centuries, was a key element in the rise of Rome over "above seven hundred years" from a small settlement in Latium to the capital of an empire governing a wide region around the shores of the Mediterranean, or, as the Romans themselves said, mare nostrum, "our sea". Livy asserts:... if any people ought to be allowed to consecrate their origins and refer them to a divine source, so great is the military glory of the Roman People that when they profess that their Father and the Father of their Founder was none other than Mars, the nations of the earth may well submit to this also with as good a grace as they submit to Rome's dominion.

Ancient Rome

Ancient Rome

In modern historiography, Ancient Rome refers to Roman civilisation from the founding of the Italian city of Rome in the 8th century BC to the collapse of the Western Roman Empire in the 5th century AD. It encompasses the Roman Kingdom, Roman Republic and Roman Empire until the fall of the western empire.

Roman Empire

Roman Empire

The Roman Empire was the post-Republican period of ancient Rome. As a polity, it included large territorial holdings around the Mediterranean Sea in Europe, North Africa, and Western Asia, and was ruled by emperors. From the accession of Caesar Augustus as the first Roman emperor to the military anarchy of the 3rd century, it was a Principate with Italia as the metropole of its provinces and the city of Rome as its sole capital. The Empire was later ruled by multiple emperors who shared control over the Western Roman Empire and the Eastern Roman Empire. The city of Rome remained the nominal capital of both parts until AD 476 when the imperial insignia were sent to Constantinople following the capture of the Western capital of Ravenna by the Germanic barbarians. The adoption of Christianity as the state church of the Roman Empire in AD 380 and the fall of the Western Roman Empire to Germanic kings conventionally marks the end of classical antiquity and the beginning of the Middle Ages. Because of these events, along with the gradual Hellenization of the Eastern Roman Empire, historians distinguish the medieval Roman Empire that remained in the Eastern provinces as the Byzantine Empire.

Early Middle Ages

Early Middle Ages

The Early Middle Ages, sometimes controversially referred to as the Dark Ages, is typically regarded by historians as lasting from the late 5th or early 6th century through the 10th century. They marked the start of the Middle Ages of European history, following the decline of the Western Roman Empire, and preceding the High Middle Ages. The alternative term late antiquity, for the early part of the period, emphasizes elements of continuity with the Roman Empire, while Early Middle Ages is used to emphasize developments characteristic of the earlier medieval period.

Middle Ages

Middle Ages

In the history of Europe, the Middle Ages or medieval period lasted approximately from the late 5th to the late 15th centuries, similar to the post-classical period of global history. It began with the fall of the Western Roman Empire and transitioned into the Renaissance and the Age of Discovery. The Middle Ages is the middle period of the three traditional divisions of Western history: classical antiquity, the medieval period, and the modern period. The medieval period is itself subdivided into the Early, High, and Late Middle Ages.

Ancient Greece

Ancient Greece

Ancient Greece was a northeastern Mediterranean civilization, existing from the Greek Dark Ages of the 12th–9th centuries BC to the end of classical antiquity, that comprised a loose collection of culturally and linguistically related city-states and other territories. Most of these regions were officially unified only once, for 13 years, under Alexander the Great's empire from 336 to 323 BC. In Western history, the era of classical antiquity was immediately followed by the Early Middle Ages and the Byzantine period.

Celts

Celts

The Celts or Celtic peoples are a collection of Indo-European peoples in Europe and Anatolia, identified by their use of Celtic languages and other cultural similarities. Historical Celtic groups included the Britons, Boii, Celtiberians, Gaels, Gauls, Gallaeci, Galatians, Lepontii and their offshoots. The relation between ethnicity, language and culture in the Celtic world is unclear and debated; for example over the ways in which the Iron Age people of Britain and Ireland should be called Celts. In current scholarship, 'Celt' primarily refers to 'speakers of Celtic languages' rather than to a single ethnic group.

Roman concrete

Roman concrete

Roman concrete, also called opus caementicium, was used in construction in ancient Rome. Like its modern equivalent, Roman concrete was based on a hydraulic-setting cement added to an aggregate.

Technological history of the Roman military

Technological history of the Roman military

The technology history of the Roman military covers the development of and application of technologies for use in the armies and navies of Rome from the Roman Republic to the fall of the Western Roman Empire. The rise of Hellenism and the Roman Republic are generally seen as signalling the end of the Iron Age in the Mediterranean. Roman iron-working was enhanced by a process known as carburization. The Romans used the better properties in their armaments, and the 1,300 years of Roman military technology saw radical changes. The Roman armies of the early empire were much better equipped than early republican armies. Metals used for arms and armor primarily included iron, bronze, and brass. For construction, the army used wood, earth, and stone. The later use of concrete in architecture was widely mirrored in Roman military technology, especially in the application of a military workforce to civilian construction projects.

Medicine in ancient Rome

Medicine in ancient Rome

Medicine in ancient Rome was highly influenced by ancient Greek medicine, but also developed new practices through knowledge of the Hippocratic Corpus combined with use of the treatment of diet, regimen, along with surgical procedures. This was most notably seen through the works of two of the prominent Greek physicians, Dioscorides and Galen, who practiced medicine and recorded their discoveries. This is contrary to two other physicians like Soranus of Ephesus and Asclepiades of Bithynia, who practiced medicine both in outside territories and in ancient Roman territory, subsequently. Dioscorides was a Roman army physician, Soranus was a representative for the Methodic school of medicine, Galen performed public demonstrations, and Asclepiades was a leading Roman physician. These four physicians all had knowledge of medicine, ailments, and treatments that were healing, long lasting and influential to human history.

Types of power

Human power

The most readily available sources of power to the ancients were human power and animal power. An obvious utilization of human power is the movement of objects. For objects ranging from 20 to 80 pounds a single person can generally suffice. For objects of greater weight, more than one person may be required to move the object. A limiting factor in using multiple people to move objects is the available amount of grip space. To overcome this limiting factor, mechanical devices were developed to assist in the manipulation of objects. One device being the windlass which used ropes and pulleys to manipulate objects. The device was powered by multiple people pushing or pulling on handspikes attached to a cylinder.

Human power was also a factor in the movement of ships, in particularly warships. Though wind-powered sails were the dominant form of power in water transportation, rowing was often used by military craft during battle engagements.[3]

Animal power

The primary usage of animal power was for transportation. Several species of animals were used for differing tasks. Oxen are strong creatures that do not require the finest pasture. Being strong and cheap to maintain, oxen were used to farm and transport large masses of goods. A disadvantage to using oxen is that they are slow. If speed was desired, horses were called upon. The main environment which called for speed was the battlefield, with horses being used in the cavalry and scouting parties. For carriages carrying passengers or light materials donkeys or mules were generally used, as they were faster than oxen and cheaper on fodder than horses. Other than being used as a means of transportation, animals were also employed in the operation of rotary mills.

Schematic of an Overshot water wheel
Schematic of an Overshot water wheel

Beyond the confines of the land, a schematic for a ship propelled by animals has been discovered. The work known as Anonymus De rebus bellicis describes a ship powered by oxen. Wherein oxen are attached to a rotary, moving in a circle on a deck floor, spinning two paddle wheels, one on either side of the ship. The likelihood that such a ship was ever built is low, due to the impracticality of controlling animals on a watercraft.[3]

Water power

Power from water was generated through the use of a water wheel. A water wheel had two general designs: the undershot and the overshot. The undershot water wheel generated power from the natural flow of a running water source pushing upon the wheel’s submerged paddles. The overshot water wheel generated power by having water flow over its buckets from above. This was usually achieved by building an aqueduct above the wheel. Although it is possible to make the overshot water wheel 70 percent more efficient than the undershot, the undershot was generally the preferred water wheel. The reason being, the economic cost to building an aqueduct was too high for the mild benefit of having the water wheel turn faster. The primary purpose of water wheels were to generate power for milling operations and to raise water above a system’s natural height. Evidence also exists that water wheels were used to power the operation of saws, though only scant descriptions of such devices remain.[3]

Reconstruction of Hero of Alexandria's steam machine the Aeolipile, 1st century CE
Reconstruction of Hero of Alexandria's steam machine the Aeolipile, 1st century CE

Wind power

Wind power was used in the operation of watercraft, through the use of sails. Windmills do not appear to have been created in Ancient times.[3]

Solar power

The Romans used the Sun as a passive solar heat source for buildings, such as bath houses. Thermae were built with large windows facing southwest, the location of the Sun at the hottest time of day.[4]

Theoretical types of power

Steam power

The generation of power through steam remained theoretical in the Roman world. Hero of Alexandria published schematics of a steam device that rotated a ball on a pivot. The device used heat from a cauldron to push steam through a system of tubes towards the ball. The device produced roughly 1500 rpm but would never be practical on an industrial scale as the labour requirements to operate, fuel and maintain the heat of the device would have been too great of a cost.[3]

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Windlass

Windlass

The windlass is an apparatus for moving heavy weights. Typically, a windlass consists of a horizontal cylinder (barrel), which is rotated by the turn of a crank or belt. A winch is affixed to one or both ends, and a cable or rope is wound around the winch, pulling a weight attached to the opposite end. The Greek scientist Archimedes was the inventor of the windlass. The oldest depiction of a windlass for raising water can be found in the Book of Agriculture published in 1313 by the Chinese official Wang Zhen of the Yuan Dynasty.

Handspike

Handspike

A handspike is a metal bar or pipe that is used as a lever for prying or leverage, similar to a crowbar. Handspike is also an archaic term for a bar or lever, generally of wood, used in a windlass or capstan, for heaving anchor, and, in modified forms, for various other purposes.

Water transportation

Water transportation

Water transportation is the international movement of water over large distances. Methods of transportation fall into three categories:Aqueducts, which include pipelines, canals, tunnels and bridges Container shipment, which includes transport by tank truck, tank car, and tank ship. Towing, where a tugboat is used to pull an iceberg or a large water bag along behind it.

De rebus bellicis

De rebus bellicis

De rebus bellicis is an anonymous work of the 4th or 5th century which suggests remedies for the military and financial problems in the Roman Empire, including a number of fanciful war machines. It was written after the death of Constantine I in 337 and before the fall of the Western Roman Empire in 476. Some researchers suggest that it may refer to the Battle of Adrianople of 378, or even the death of Emperor Theodosius I in 395, as it uses the plural form of the word "princeps", the title of the emperor, which may refer to the split of the Empire between Honorius and Arcadius after the death of Theodosius.

Water wheel

Water wheel

A water wheel is a machine for converting the energy of flowing or falling water into useful forms of power, often in a watermill. A water wheel consists of a wheel, with a number of blades or buckets arranged on the outside rim forming the driving car. Water wheels were still in commercial use well into the 20th century but they are no longer in common use. Uses included milling flour in gristmills, grinding wood into pulp for papermaking, hammering wrought iron, machining, ore crushing and pounding fibre for use in the manufacture of cloth.

Hero of Alexandria

Hero of Alexandria

Hero of Alexandria was a Greek mathematician and engineer who was active in his native city of Alexandria in Egypt during the Roman era. He is often considered the greatest experimenter of antiquity and his work is representative of the Hellenistic scientific tradition.

Technology as a craft

Roman technology was largely based on a system of crafts. Technical skills and knowledge were contained within the particular trade, such as stonemasons. In this sense, knowledge was generally passed down from a tradesman master to a tradesman apprentice. Since there are only a few sources from which to draw upon for technical information, it is theorized that tradesmen kept their knowledge a secret. Vitruvius, Pliny the Elder and Frontinus are among the few writers who have published technical information about Roman technology.[4] There was a corpus of manuals on basic mathematics and science such as the many books by Archimedes, Ctesibius, Heron (a.k.a. Hero of Alexandria), Euclid and so on. Not all of the manuals which were available to the Romans have survived, as lost works illustrate.

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Vitruvius

Vitruvius

Vitruvius was a Roman architect and engineer during the 1st century BC, known for his multi-volume work entitled De architectura. He originated the idea that all buildings should have three attributes: firmitas, utilitas, and venustas. These principles were later widely adopted in Roman architecture. His discussion of perfect proportion in architecture and the human body led to the famous Renaissance drawing of the Vitruvian Man by Leonardo da Vinci.

Pliny the Elder

Pliny the Elder

Gaius Plinius Secundus, called Pliny the Elder, was a Roman author, naturalist, natural philosopher, and naval and army commander of the early Roman Empire, and a friend of the emperor Vespasian. He wrote the encyclopedic Naturalis Historia, which became an editorial model for encyclopedias. He spent most of his spare time studying, writing, and investigating natural and geographic phenomena in the field.

Frontinus

Frontinus

Sextus Julius Frontinus was a prominent Roman civil engineer, author, soldier and senator of the late 1st century AD. He was a successful general under Domitian, commanding forces in Roman Britain, and on the Rhine and Danube frontiers. A novus homo, he was consul three times. Frontinus ably discharged several important administrative duties for Nerva and Trajan. However, he is best known to the post-Classical world as an author of technical treatises, especially De aquaeductu, dealing with the aqueducts of Rome.

Archimedes

Archimedes

Archimedes of Syracuse was a Greek mathematician, physicist, engineer, astronomer, and inventor from the ancient city of Syracuse in Sicily. Although few details of his life are known, he is regarded as one of the leading scientists in classical antiquity. Considered the greatest mathematician of ancient history, and one of the greatest of all time, Archimedes anticipated modern calculus and analysis by applying the concept of the infinitely small and the method of exhaustion to derive and rigorously prove a range of geometrical theorems. These include the area of a circle, the surface area and volume of a sphere, the area of an ellipse, the area under a parabola, the volume of a segment of a paraboloid of revolution, the volume of a segment of a hyperboloid of revolution, and the area of a spiral.

Ctesibius

Ctesibius

Ctesibius or Ktesibios or Tesibius was a Greek inventor and mathematician in Alexandria, Ptolemaic Egypt. He wrote the first treatises on the science of compressed air and its uses in pumps. This, in combination with his work On pneumatics on the elasticity of air, earned him the title of "father of pneumatics." None of his written work has survived, including his Memorabilia, a compilation of his research that was cited by Athenaeus. Ctesibius' most commonly known invention today is a pipe organ (hydraulis), a predecessor of the modern church organ.

Hero of Alexandria

Hero of Alexandria

Hero of Alexandria was a Greek mathematician and engineer who was active in his native city of Alexandria in Egypt during the Roman era. He is often considered the greatest experimenter of antiquity and his work is representative of the Hellenistic scientific tradition.

Euclid

Euclid

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Engineering and construction

Building materials and instruments

Reconstruction of a 10.4-metre-high Roman construction crane at Bonn, Germany
Reconstruction of a 10.4-metre-high Roman construction crane at Bonn, Germany

Wood

The Romans created fireproof wood by coating the wood with alum.[5]

Stone

It was ideal to mine stones from quarries that were situated as close to the site of construction as possible, to reduce the cost of transportation. Stone blocks were formed in quarries by punching holes in lines at the desired lengths and widths. Then, wooden wedges were hammered into the holes. The holes were then filled with water so that the wedges would swell with enough force to cut the stone block out of the Earth. Blocks with the dimensions of 23yds by 14 ft by 15 ft have been found, with weights of about 1000 tons. There is evidence that saws were developed to cut stone in the Imperial age. Initially, Romans used saws powered by hand to cut stone, but later went on to develop stone cutting saws powered by water.[5]

Cements

The ratio of the mixture of Roman lime mortars depended upon where the sand for the mixture was acquired. For sand gathered at a river or sea, the mixture ratio was two parts sand, one part lime, and one part powdered shells. For sand gathered further inland, the mixture was three parts sand and one part lime. The lime for mortars was prepared in limekilns, which were underground pits designed to block out the wind.[5]

Another type of Roman mortar is known as pozzolana mortar. Pozzolana is a volcanic clay substance located in and around Naples. The mixture ratio for the cement was two parts pozzolana and one part lime mortar. Due to its composition, pozzolana cement was able to form in water and has been found to be as hard as natural forming rock.[5]

Cranes

Cranes were used for construction work and possibly to load and unload ships at their ports, although for the latter use there is according to the "present state of knowledge" still no evidence.[6] Most cranes were capable of lifting about 6–7 tons of cargo, and according to a relief shown on Trajan's Column were worked by treadwheel.

Buildings

The dome of the Pantheon, constructed 113–125 AD
The dome of the Pantheon, constructed 113–125 AD

The Pantheon

The Romans designed the Pantheon thinking about the concepts of beauty, symmetry, and perfection. The Romans incorporated these mathematical concepts into their public works projects. For instance, the concept of perfect numbers was used in the design of the Pantheon by embedding 28 coffers into the dome. A perfect number is a number where its factors add up to itself. So, the number 28 is considered to be a perfect number, because its factors of 1, 2, 4, 7, and 14 add together to equal 28. Perfect numbers are extremely rare, with there being only one number for each quantity of digits (one for single digits, double digits, triple digits, quadruple digits, etc.). Embodying mathematical concepts of beauty, symmetry, and perfection, into the structure conveys the technical sophistication of Roman engineers.[7]

Roman concrete was essential to the design of the Pantheon. The mortar used in the construction of the dome is made up of a mixture of lime and the volcanic powder known as pozzolana. The concrete is suited for use in constructing thick walls as it does not require to be completely dry to cure.[8]

The construction of the Pantheon was a massive undertaking, requiring large quantities of resources and man-hours. Delaine estimates the amount of total manpower needed in the construction of the Pantheon to be about 400 000 man-days.[9]  

Hagia Sophia

Hagia Sophia in Istanbul, constructed 537 AD
Hagia Sophia in Istanbul, constructed 537 AD

Although the Hagia Sophia was constructed after the fall of the Western empire, its construction incorporated the building materials and techniques signature to ancient Rome. The building was constructed using pozzolana mortar. Evidence for the use of the substance comes from the sagging of the structure's arches during construction, as a distinguishing feature of pozzolana mortar is the large amount of time it needs to cure. The engineers had to remove decorative walls to let the mortar cure.[10]

The pozzolana mortar used in the construction of the Hagia Sophia does not contain volcanic ash but instead crushed brick dust. The composition of the materials used in pozzolana mortar leads to increased tensile strength. A mortar composed of mostly lime has a tensile strength of roughly 30 psi whereas pozzolana mortar using crushed brick dust has a tensile strength of 500 psi. The advantage of using pozzolana mortar in the construction of the Hagia Sophia is the increase in strength of the joints. The mortar joints used in the structure are wider than one would expect in a typical brick and mortar structure. The fact of the wide mortar joints suggests the designers of the Hagia Sophia knew about the high tensile strength of the mortar and incorporated it accordingly.[10]

Waterworks

Aqueducts

The Romans constructed numerous aqueducts to supply water. The city of Rome itself was supplied by eleven aqueducts made of limestone that provided the city with over 1 million cubic metres of water each day, sufficient for 3.5 million people even in modern-day times,[11] and with a combined length of 350 kilometres (220 mi).[12]

Roman Segovia Aqueduct in modern-day Spain, constructed 1st century CE
Roman Segovia Aqueduct in modern-day Spain, constructed 1st century CE

Water inside the aqueducts depended entirely on gravity. The raised stone channels in which the water traveled were slightly slanted. The water was carried directly from mountain springs. After it had gone through the aqueduct, the water was collected in tanks and fed through pipes to fountains, toilets, etc.[13]

The main aqueducts in Ancient Rome were the Aqua Claudia and the Aqua Marcia.[14] Most aqueducts were constructed below the surface with only small portions above ground supported by arches.[15] The longest Roman aqueduct, 178 kilometres (111 mi) in length, was traditionally assumed to be that which supplied the city of Carthage. The complex system built to supply Constantinople had its most distant supply drawn from over 120 km away along a sinuous route of more than 336 km.[16]

Roman aqueducts were built to remarkably fine tolerances, and to a technological standard that was not to be equaled until modern times. Powered entirely by gravity, they transported very large amounts of water very efficiently. Sometimes, where depressions deeper than 50 metres had to be crossed, inverted siphons were used to force water uphill.[15] An aqueduct also supplied water for the overshot wheels at Barbegal in Roman Gaul, a complex of water mills hailed as "the greatest known concentration of mechanical power in the ancient world".[17]

Roman aqueducts conjure images of water travelling long distances across arched bridges, however; only 5 percent of the water being transported along the aqueduct systems traveled by way of bridges. Roman engineers worked to make the routes of aqueducts as practical as possible. In practice, this meant designing aqueducts that flowed ground level or below surface level, as these were more cost effective than building bridges considering the cost of construction and maintenance for bridges was higher than that of surface and sub-surface elevations. Aqueduct bridges were often in need of repairs and spent years at a time in disuse. Water theft from the aqueducts was a frequent problem which led to difficulties in estimating the amount of water flowing through the channels.[18] To prevent the channels of the aqueducts from eroding, a plaster known as opus signinum was used.[4] The plaster incorporated crushed terracotta in the typical Roman mortar mixture of pozzolana rock and lime.[19]

Proserpina Dam was constructed during the first to second century CE and is still in use today.
Proserpina Dam was constructed during the first to second century CE and is still in use today.

Dams

The Romans built dams for water collection, such as the Subiaco Dams, two of which fed Anio Novus, one of the largest aqueducts of Rome. They built 72 dams in just one country, Spain and many more are known across the Empire, some of which are still in use. At one site, Montefurado in Galicia, they appear to have built a dam across the river Sil to expose alluvial gold deposits in the bed of the river. The site is near the spectacular Roman gold mine of Las Medulas. Several earthen dams are known from Britain, including a well-preserved example from Roman Lanchester, Longovicium, where it may have been used in industrial-scale smithing or smelting, judging by the piles of slag found at this site in northern England. Tanks for holding water are also common along aqueduct systems, and numerous examples are known from just one site, the gold mines at Dolaucothi in west Wales. Masonry dams were common in North Africa for providing a reliable water supply from the wadis behind many settlements.

The Romans built dams to store water for irrigation. They understood that spillways were necessary to prevent the erosion of earth-packed banks. In Egypt, the Romans adopted the water technology known as wadi irrigation from the Nabataeans. Wadis were a technique developed to capture large amounts of water produced during the seasonal floods and store it for the growing season. The Romans successfully developed the technique further for a larger scale.[18]

Sanitation

Roman baths in the English city of Bath. A temple was initially constructed on the site in 60 CE with the bathing complex being built up over time.
Roman baths in the English city of Bath. A temple was initially constructed on the site in 60 CE with the bathing complex being built up over time.

The Romans did not invent plumbing or toilets, but instead borrowed their waste disposal system from their neighbors, particularly the Minoans.[20] A waste disposal system was not a new invention, but rather had been around since 3100 BCE, when one was created in the Indus River Valley [21] The Roman public baths, or thermae served hygienic, social and cultural functions. The baths contained three main facilities for bathing. After undressing in the apodyterium or changing room, Romans would proceed to the tepidarium or warm room. In the moderate dry heat of the tepidarium, some performed warm-up exercises and stretched while others oiled themselves or had slaves oil them. The tepidarium’s main purpose was to promote sweating to prepare for the next room, the caldarium or hot room. The caldarium, unlike the tepidarium, was extremely humid and hot. Temperatures in the caldarium could reach 40 degrees Celsius (104 degrees Fahrenheit). Many contained steam baths and a cold-water fountain known as the labrum. The last room was the frigidarium or cold room, which offered a cold bath for cooling off after the caldarium. The Romans also had flush toilets.

Roman baths

The containment of heat in the rooms was important in the operation of the baths, as to avoid patrons from catching colds. To prevent doors from being left open, the door posts were installed at an inclined angle so that the doors would automatically swing shut. Another technique of heat efficiency was the use of wooden benches over stone, as wood conducts away less heat.[22]

Transportation

Roads

The Romans primarily built roads for their military. Their economic importance was probably also significant, although wagon traffic was often banned from the roads to preserve their military value. In total, more than 400,000 kilometres (250,000 mi) of roads were constructed, 80,500 kilometres (50,000 mi) of which were stone-paved.[23]

Way stations providing refreshments were maintained by the government at regular intervals along the roads. A separate system of changing stations for official and private couriers was also maintained. This allowed a dispatch to travel a maximum of 800 kilometres (500 mi) in 24 hours by using a relay of horses.

The roads were constructed by digging a pit along the length of the intended course, often to bedrock. The pit was first filled with rocks, gravel or sand and then a layer of concrete. Finally, they were paved with polygonal rock slabs. Roman roads are considered the most advanced roads built until the early 19th century. Bridges were constructed over waterways. The roads were resistant to floods and other environmental hazards. After the fall of the Roman Empire the roads were still usable and used for more than 1000 years.

Most Roman cities were shaped like a square. There were 4 main roads leading to the center of the city, or forum. They formed a cross shape, and each point on the edge of the cross was a gateway into the city. Connecting to these main roads were smaller roads, the streets where people lived.

Bridges

Roman bridges were built with stone and/or concrete and utilized the arch. Built in 142 BC, the Pons Aemilius, later named Ponte Rotto (broken bridge) is the oldest Roman stone bridge in Rome, Italy. The biggest Roman bridge was Trajan's Bridge over the lower Danube, constructed by Apollodorus of Damascus, which remained for over a millennium the longest bridge to have been built both in terms of overall and span length. They were most of the time at least 60 feet (18 m) above the body of water.

Carts

Alcántara Bridge constructed in 104 to 106 CE, was built in a similar in style to Trajan's Bridge.
Alcántara Bridge constructed in 104 to 106 CE, was built in a similar in style to Trajan's Bridge.

Roman carts had many purposes and came in a variety of forms. Freight carts were used to transport goods. Barrel carts were used to transport liquids. The carts had large cylindrical barrels laid horizontally with their tops facing forward. For transporting building materials, such as sand or soil, the Romans used carts with high walls. Public transportation carts were also in use with some designed with sleeping accommodations for up to six people.[24]

The Romans developed a railed cargo system for transporting heavy loads. The rails consisted of grooves embedded into existing stone roadways. The carts used in such a system had large block axles and wooden wheels with metal casings.[24]

Carts also contained brakes, elastic suspensions and bearings. The elastic suspension systems used leather belts attached bronze supports to suspend the carriage above the axles. The system helped to create a smoother ride by reducing the vibration. The Romans adopted bearings developed by the Celts. The bearings decreased rotational friction by using mud to lubricate stone rings.[24]

Industrial

Rosia Montana Roman Gold Mine
Rosia Montana Roman Gold Mine

Mining

The Romans also made great use of aqueducts in their extensive mining operations across the empire, some sites such as Las Medulas in north-west Spain having at least 7 major channels entering the minehead. Other sites such as Dolaucothi in south Wales was fed by at least five leats, all leading to reservoirs and tanks or cisterns high above the present opencast. The water was used for hydraulic mining, where streams or waves of water are released onto the hillside, first to reveal any gold-bearing ore, and then to work the ore itself. Rock debris could be sluiced away by hushing, and the water also used to douse fires created to break down the hard rock and veins, a method known as fire-setting.

Alluvial gold deposits could be worked and the gold extracted without needing to crush the ore. Washing tables were fitted below the tanks to collect the gold-dust and any nuggets present. Vein gold needed crushing, and they probably used crushing or stamp mills worked by water-wheels to comminute the hard ore before washing. Large quantities of water were also needed in deep mining to remove waste debris and power primitive machines, as well as for washing the crushed ore. Pliny the Elder provides a detailed description of gold mining in book xxxiii of his Naturalis Historia, most of which has been confirmed by archaeology. That they used water mills on a large scale elsewhere is attested by the flour mills at Barbegal in southern France, and on the Janiculum in Rome.

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Bonn

Bonn

The federal city of Bonn (German pronunciation: [bɔn] is a city on the banks of the Rhine located in the German state of North Rhine-Westphalia, with a population of over 300,000. About 24 km south-southeast of Cologne, Bonn is in the southernmost part of the Rhine-Ruhr region, Germany's largest metropolitan area, with over 11 million inhabitants. It is a university city, was the birthplace of Ludwig van Beethoven and was the capital of West Germany from 1949 to 1990. Bonn was the seat of government of reunited Germany from 1990 to 1999.

Germany

Germany

Germany, officially the Federal Republic of Germany, is a country in Central Europe. It is the second-most populous country in Europe after Russia, and the most populous member state of the European Union. Germany is situated between the Baltic and North seas to the north, and the Alps to the south; it covers an area of 357,022 square kilometres (137,847 sq mi), with a population of over 84 million within its 16 constituent states. Germany borders Denmark to the north, Poland and the Czech Republic to the east, Austria and Switzerland to the south, and France, Luxembourg, Belgium, and the Netherlands to the west. The nation's capital and most populous city is Berlin and its main financial centre is Frankfurt; the largest urban area is the Ruhr.

Alum

Alum

An alum is a type of chemical compound, usually a hydrated double sulfate salt of aluminium with the general formula XAl(SO4)2·12 H2O, where X is a monovalent cation such as potassium or ammonium. By itself, "alum" often refers to potassium alum, with the formula KAl(SO4)2·12 H2O. Other alums are named after the monovalent ion, such as sodium alum and ammonium alum.

Pozzolana

Pozzolana

Pozzolana or pozzuolana, also known as pozzolanic ash, is a natural siliceous or siliceous-aluminous material which reacts with calcium hydroxide in the presence of water at room temperature. In this reaction insoluble calcium silicate hydrate and calcium aluminate hydrate compounds are formed possessing cementitious properties. The designation pozzolana is derived from one of the primary deposits of volcanic ash used by the Romans in Italy, at Pozzuoli. The modern definition of pozzolana encompasses any volcanic material, predominantly composed of fine volcanic glass, that is used as a pozzolan. Note the difference with the term pozzolan, which exerts no bearing on the specific origin of the material, as opposed to pozzolana, which can only be used for pozzolans of volcanic origin, primarily composed of volcanic glass.

Trajan's Column

Trajan's Column

Trajan's Column is a Roman triumphal column in Rome, Italy, that commemorates Roman emperor Trajan's victory in the Dacian Wars. It was probably constructed under the supervision of the architect Apollodorus of Damascus at the order of the Roman Senate. It is located in Trajan's Forum, north of the Roman Forum. Completed in AD 113, the freestanding column is most famous for its spiral bas relief, which depicts the wars between the Romans and Dacians. Its design has inspired numerous victory columns, both ancient and modern.

Pantheon, Rome

Pantheon, Rome

The Pantheon is a former Roman temple and, since 609 AD, a Catholic church in Rome, Italy, on the site of an earlier temple commissioned by Marcus Agrippa during the reign of Augustus. It was rebuilt by the emperor Hadrian and probably dedicated c. 126 AD. Its date of construction is uncertain, because Hadrian chose not to inscribe the new temple but rather to retain the inscription of Agrippa's older temple, which had burned down.

Roman concrete

Roman concrete

Roman concrete, also called opus caementicium, was used in construction in ancient Rome. Like its modern equivalent, Roman concrete was based on a hydraulic-setting cement added to an aggregate.

Hagia Sophia

Hagia Sophia

Hagia Sophia, officially the Hagia Sophia Grand Mosque, is a mosque and major cultural and historical site in Istanbul, Turkey. The mosque was originally built as an Eastern Orthodox church and was used as such from the year 360 until the conquest of Constantinople by the Ottoman Empire in 1453. It served as a mosque until 1935, when it became a museum. In 2020, the site once again became a mosque.

Istanbul

Istanbul

Istanbul, formerly known as Constantinople, is the largest city in Turkey, serving as the country's economic, cultural and historic hub. The city straddles the Bosporus strait, lying in both Europe and Asia, and has a population of over 15 million residents, comprising 19% of the population of Turkey. Istanbul is the most populous European city, and the world's 15th-largest city.

Roman aqueduct

Roman aqueduct

The Romans constructed aqueducts throughout their Republic and later Empire, to bring water from outside sources into cities and towns. Aqueduct water supplied public baths, latrines, fountains, and private households; it also supported mining operations, milling, farms, and gardens.

Aqueduct (bridge)

Aqueduct (bridge)

Aqueducts are bridges constructed to convey watercourses across gaps such as valleys or ravines. The term aqueduct may also be used to refer to the entire watercourse, as well as the bridge. Large navigable aqueducts are used as transport links for boats or ships. Aqueducts must span a crossing at the same level as the watercourses on each end. The word is derived from the Latin aqua ("water") and ducere, therefore meaning "to lead water". A modern version of an aqueduct is a pipeline bridge. They may take the form of tunnels, networks of surface channels and canals, covered clay pipes or monumental bridges.

List of aqueducts in the city of Rome

List of aqueducts in the city of Rome

This article lists ancient Roman aqueducts in the city of Rome.

Military technology

The Roman military technology ranged from personal equipment and armament to deadly siege engines.

Foot soldier

Weaponry

Pilum (spear): The Roman heavy spear was a weapon favored by legionaries and weighed approximately five pounds.[25] The innovated javelin was designed to be used only once and was destroyed upon initial use. This ability prevented the enemy from reusing spears. All soldiers carried two versions of this weapon: a primary spear and a backup. A solid block of wood in the middle of the weapon provided legionaries protection for their hands while carrying the device. According to Polybius, historians have records of "how the Romans threw their spears and then charged with swords".[26] This tactic seemed to be common practice among Roman infantry.

Armour

Roman scale armour
Roman scale armour

While heavy, intricate armour was not uncommon (cataphracts), the Romans perfected a relatively light, full torso armour made of segmented plates (lorica segmentata). This segmented armour provided good protection for vital areas, but did not cover as much of the body as lorica hamata or chainmail. The lorica segmentata provided better protection, but the plate bands were expensive and difficult to produce and difficult to repair in the field. Generally, chainmail was cheaper, easier to produce, and simpler to maintain, was one-size-fits-all and was more comfortable to wear; thus, it remained the primary form of armour even when lorica segmentata was in use.

Tactics

Testudo is a tactical military maneuver original to Rome. The tactic was implemented by having units raise their shields in order to protect themselves from enemy projectiles raining down on them. The strategy only worked if each member of the testudo protected his comrade. Commonly used during siege battles, the "sheer discipline and synchronization required to form a Testudo" was a testament to the abilities of legionnaires.[27] Testudo, meaning tortoise in Latin, "was not the norm, but rather adopted in specific situations to deal with particular threats on the battlefield".[27] The Greek phalanx and other Roman formations were a source of inspiration for this maneouver.

Cavalry

The Roman cavalry saddle had four horns [1] and is believed to have been copied from Celtic peoples.

Siege warfare

Roman siege engines such as ballistas, scorpions and onagers were not unique, but the Romans were probably the first people to put ballistas on carts for better mobility on campaigns. On the battlefield, it is thought that they were used to pick off enemy leaders. There is one account of the use of artillery in battle from Tacitus, Histories III,23:

On engaging they drove back the enemy, only to be driven back themselves, for the Vitellians had concentrated their artillery on the raised road that they might have free and open ground from which to fire; their earlier shots had been scattered and had struck the trees without injuring the enemy. A ballista of enormous size belonging to the Fifteenth legion began to do great harm to the Flavians' line with the huge stones that it hurled; and it would have caused wide destruction if it had not been for the splendid bravery of two soldiers, who, taking some shields from the dead and so disguising themselves, cut the ropes and springs of the machine.[28]

In addition to innovations in land warfare, the Romans also developed the corvus (boarding device) a movable bridge that could attach itself to an enemy ship and allow the Romans to board the enemy vessel. Developed during the First Punic War it allowed them to apply their experience in land warfare on the seas.[28]

Ballistas and onagers

While core artillery inventions were notably founded by the Greeks, Rome saw opportunity in the ability to enhance this long range artillery. Large artillery pieces such as carroballista and onagers bombarded enemy lines, before full ground assault by infantry. The manuballista would "often be described as the most advanced two-armed torsion engine used by the Roman Army”.[27] The weapon often looks like a mounted crossbow capable of shooting projectiles. Similarly, the onager "named after the wild ass because of its 'kick'," was a larger weapon that was capable of hurling large projectiles at walls or forts.[27] Both were very capable machines of war and were put to use by the Roman military.

Computer model of a helepolis
Computer model of a helepolis

The Helepolis

The helepolis was a transportation vehicle used to besiege cities. The vehicle had wooden walls to shield soldiers as they were transported toward the enemy’s walls. Upon reaching the walls, the soldiers would disembark at the top of the 15m tall structure and drop on to the enemy’s ramparts. To be effective in combat, the helepolis was designed to be self-propelled. The self-propelled vehicles were operated using two types of motors: an internal motor powered by humans, or a counterweight motor powered by gravity. The human-powered motor used a system of ropes that connected the axles to a capstan. It has been calculated that at least 30 men would be required to turn the capstan in order to exceed the force required to move the vehicle. Two capstans may have been used instead of just the one, reducing the amount of men needed per capstan to 16, for a total of 32 to power the helepolis. The gravity-powered counterweight motor used a system of ropes and pulleys to propel the vehicle. Ropes were wrapped around the axles, strung through a pulley system that connected them to a counterweight hanging at the top of the vehicle. The counterweights would have been made of lead or a bucket filled with water. The lead counterweight was encapsulated in a pipe filled with seeds to control its fall. The water bucket counterweight was emptied when it reached the bottom of the vehicle, raised back to the top, and filled with water using a reciprocating water pump, so that motion could again be achieved. It has been calculated that to move a helepolis with a mass of 40000 kg, a counterweight with a mass of 1000 kg was needed.[24]

Greek fire

Originally an incendiary weapon adopted from the Greeks in 7th century AD, the Greek fire "is one of the very few contrivances whose gruesome effectiveness was noted by"[27] many sources. Roman innovators made this already lethal weapon even more deadly. Its nature is often described as a "precursor to napalm".[27] Military strategists often put the weapon to good use during naval battles, and the ingredients to its construction "remained a closely guarded military secret".[27] Despite this, the devastation caused by Greek fire in combat is indisputable.

Depiction of a Roman pontoon bridge on the Column of Marcus Aurelius, constructed 193 CE
Depiction of a Roman pontoon bridge on the Column of Marcus Aurelius, constructed 193 CE

Transportation

Pontoon bridge

Mobility, for a military force, was an essential key to success. Although this was not a Roman invention, as there were instances of "ancient Chinese and Persians making use of the floating mechanism”,[27] Roman generals used the innovation to great effect in campaigns. Furthermore, engineers perfected the speed at which these bridges were constructed. Leaders surprised enemy units to great effect by speedily crossing otherwise treacherous bodies of water. Lightweight crafts were "organized and tied together with the aid of planks, nails and cables".[27] Rafts were more commonly used instead of building new makeshift bridges, enabling quick construction and deconstruction.[29] The expedient and valuable innovation of the pontoon bridge also accredited its success to the excellent abilities of Roman Engineers.

Surgical instruments used by ancient Romans
Surgical instruments used by ancient Romans

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Pilum

Pilum

The pilum was a javelin commonly used by the Roman army in ancient times. It was generally about 2 metres long overall, consisting of an iron shank about 7 mm in diameter and 60 cm (24 in) long with a pyramidal head, attached to a wooden shaft by either a socket or a flat tang.

Polybius

Polybius

Polybius was a Greek historian of the Hellenistic period. He is noted for his work The Histories, which covered the period of 264–146 BC and the Punic Wars in detail.

Lorica segmentata

Lorica segmentata

The lorica segmentata, also called lorica lamminata, is a type of personal armour that was used by soldiers of the Roman army, consisting of metal strips fashioned into circular bands, fastened to internal leather straps. The lorica segmentata has come to be viewed as iconic of the Roman legions in popular culture. The tendency to portray Roman legionaries clad in this type of armour often extends to periods of time that are too early or too late in history.

Lorica hamata

Lorica hamata

The lorica hamata is a type of mail armor used by soldiers for over 600 years from the Roman Republic to the Roman Empire. Lorica hamata comes from the Latin hamatus (hooked) from hamus which means "hook", as the rings hook into one another.

Phalanx

Phalanx

The phalanx was a rectangular mass military formation, usually composed entirely of heavy infantry armed with spears, pikes, sarissas, or similar pole weapons. The term is particularly used to describe the use of this formation in ancient Greek warfare, although the ancient Greek writers used it to also describe any massed infantry formation, regardless of its equipment. Arrian uses the term in his Array against the Alans when he refers to his legions. In Greek texts, the phalanx may be deployed for battle, on the march, or even camped, thus describing the mass of infantry or cavalry that would deploy in line during battle. They marched forward as one entity.

Roman cavalry

Roman cavalry

Roman cavalry refers to the horse-mounted forces of the Roman army throughout the Regal, Republican, and Imperial eras.

Celts

Celts

The Celts or Celtic peoples are a collection of Indo-European peoples in Europe and Anatolia, identified by their use of Celtic languages and other cultural similarities. Historical Celtic groups included the Britons, Boii, Celtiberians, Gaels, Gauls, Gallaeci, Galatians, Lepontii and their offshoots. The relation between ethnicity, language and culture in the Celtic world is unclear and debated; for example over the ways in which the Iron Age people of Britain and Ireland should be called Celts. In current scholarship, 'Celt' primarily refers to 'speakers of Celtic languages' rather than to a single ethnic group.

Ballista

Ballista

The ballista, plural ballistae, sometimes called bolt thrower, was an ancient missile weapon that launched either bolts or stones at a distant target.

Corvus (boarding device)

Corvus (boarding device)

The corvus was a Roman naval boarding device used in sea battles against Carthage during the First Punic War.

First Punic War

First Punic War

The First Punic War was the first of three wars fought between Rome and Carthage, the two main powers of the western Mediterranean in the early 3rd century BC. For 23 years, in the longest continuous conflict and greatest naval war of antiquity, the two powers struggled for supremacy. The war was fought primarily on the Mediterranean island of Sicily and its surrounding waters, and also in North Africa. After immense losses on both sides, the Carthaginians were defeated.

Helepolis

Helepolis

Helepolis is the Greek name for a movable siege tower.

Greek fire

Greek fire

Greek fire was an incendiary weapon used by the Eastern Roman Empire beginning c. 672. Used to set fire to enemy ships, it consisted of a combustible compound emitted by a flame-throwing weapon. Some historians believe it could be ignited on contact with water, and was probably based on naphtha and quicklime. The Byzantines typically used it in naval battles to great effect, as it could continue burning while floating on water. The technological advantage it provided was responsible for many key Byzantine military victories, most notably the salvation of Constantinople from the first and second Arab sieges, thus securing the empire's survival.

Medical technology

Surgery

Although various levels of medicine were practiced in the ancient world,[30] the Romans created or pioneered many innovative surgeries and tools that are still in use today such as hemostatic tourniquets and arterial surgical clamps.[31] Rome was also responsible for producing the first battlefield surgery unit, a move that paired with their contributions to medicine made the Roman army a force to be reckoned with.[31] They also used a rudimentary version of antiseptic surgery years before its use became popular in the 19th century and possessed very capable doctors.[31]

Technologies developed or invented by the Romans

Technology Comment
Abacus, Roman Portable.
Alum The production of alum (KAl(SO4)2.12H2O) from alunite (KAl3(SO4)2.(OH)6) is archaeologically attested on the island Lesbos.[32] This site was abandoned in the 7th century but dates back at least to the 2nd century AD.
Amphitheatre See e.g. Colosseum.
Apartment building See e.g. Insula.
Aqueduct, true arch Pont du Gard, Segovia etc.
Arch, monumental
Bath, monumental public (Thermae) See e.g. Baths of Diocletian
Book (Codex) First mentioned by Martial in the 1st century AD. Held many advantages over the scroll.
Brass The Romans had enough understanding of zinc to produce a brass denomination coinage; see sestertius.
Bridge, true arch See e.g. Roman bridge in Chaves or the Severan Bridge.
Bridge, segmental arch More than a dozen Roman bridges are known to feature segmental (=flat) arches. A prominent example was Trajan's bridge over the Danube, a lesser known the extant Limyra Bridge in Lycia
Bridge, pointed arch Constructed in the early Byzantine era, the earliest known bridge featuring a pointed arch is the 5th or 6th century AD Karamagara Bridge[33]
Camel harness The harnessing of camels to ploughs is attested in North Africa by the 3rd century AD[34]
Cameos Probably a Hellenistic innovation e.g. Cup of the Ptolemies but taken up by the Emperors e.g. Gemma Augustea, Gemma Claudia etc.
Cast Iron Recently archaeologically detected in the Val Gabbia in northern Lombardy from the 5th and 6th centuries AD.[35] This technically interesting innovation appears to have had little economic impact. But archaeologists may have failed to recognize the distinctive slag, so the date and location of this innovation may be revised.
Cement

Concrete

Pozzolana variety
Crank handle A Roman iron crank handle was excavated in Augusta Raurica, Switzerland. The 82.5 cm long piece with a 15 cm long handle is of yet unknown purpose and dates to no later than c. 250 AD.[36]
Crank and connecting rod Found in several water-powered saw mills dating from the late 3rd (Hierapolis sawmill) to 6th century AD (at Ephesus respectively Gerasa).[37]
Crane, treadwheel
Dam, Arch[38] Currently best attested for the dam at Glanum, France dated c. 20 BC.[39] The structure has entirely disappeared. Its existence attested from the cuts into the rock on either side to key in the dam wall, which was 14.7 metres high, 3.9m thick at base narrowing to 2.96m at the top. Earliest description of arch action in such types of dam by Procopius around 560 AD, the Dara Dam[40]
Dam, Arch-gravity Examples include curved dams at Orükaya,[41] Çavdarhisar, both Turkey (and 2nd century)[41] Kasserine Dam in Tunisia,[42] and Puy Foradado Dam in Spain (2nd–3rd century)[43]
Dam, Bridge The Band-i-Kaisar, constructed by Roman prisoners of war in Shustar, Persia, in the 3rd century AD,[44] featured a weir combined with an arch bridge, a multifunctional hydraulic structure which subsequently spread throughout Iran.[45]
Dam, Buttress Attested in a number of Roman dams in Spain,[43] like the 600 m long Consuegra Dam
Dam, Multiple Arch Buttress Esparragalejo Dam, Spain (1st century AD) earliest known[46]
Dental fillings First mentioned by Cornelius Celsus in the 1st century AD.[47]
Dome, monumental See e.g. Pantheon.
Flos Salis A product of salt evaporation ponds Dunaliella salina[48] used in the perfume industry (Pliny Nat. Hist. 31,90)
Force pump used in fire engine See image of pointable nozzle
Glass blowing This led to a number of innovations in the use of glass. Window glass is attested at Pompeii in AD 79. In the 2nd century AD[49] hanging glass oil lamps were introduced. These used floating wicks and by reducing self-shading gave more lumens in a downwards direction. Cage cups (see photograph) are hypothesised as oil lamps.
Dichroic glass as in the Lycurgus Cup. [2] Note, this material attests otherwise unknown chemistry (or other way?) to generate nano-scale gold-silver particles.
Glass mirrors (Pliny the Elder Naturalis Historia 33,130)
Greenhouse cold frames (Pliny the Elder Naturalis Historia 19.64; Columella on Ag. 11.3.52)
Hydraulis A water organ. Later also the pneumatic organ.
Hushing Described by Pliny the Elder and confirmed at Dolaucothi and Las Médulas
Hydraulic mining Described by Pliny the Elder and confirmed at Dolaucothi and Las Médulas
Hydrometer Mentioned in a letter of Synesius
Hypocaust A floor and also wall heating system. Described by Vitruvius
Knife, multifunctional [3]
Lighthouses The best surviving examples are those at Dover castle and the Tower of Hercules at A Coruña
Leather, Tanned The preservation of skins with vegetable tannins was a pre-Roman invention but not of the antiquity once supposed. (Tawing was far more ancient.) The Romans were responsible for spreading this technology into areas where it was previously unknown such as Britain and Qasr Ibrim on the Nile. In both places this technology was lost when the Romans withdrew.[50]
Mills M.J.T.Lewis presents good evidence that water powered vertical pounding machines came in by the middle of the 1st century AD for fulling, grain hulling (Pliny Nat. Hist. 18,97) and ore crushing (archaeological evidence at Dolaucothi Gold Mines and Spain).
Grainmill, rotary. According to Moritz (p57) rotary grainmills were not known to the ancient Greeks but date from before 160 BC. Unlike reciprocating mills, rotary mills could be easily adapted to animal or water power. Lewis (1997) argues that the rotary grainmill dates to the 5th century BC in the western Mediterranean. Animal and water powered rotary mills came in the 3rd century BC.
Sawmill, water powered. Recorded by 370 AD. Attested in Ausonius's poem Mosella. Translated [4]"the Ruwer sends mill-stones swiftly round to grind the corn, And drives shrill saw-blades through smooth marble blocks". Recent archaeological evidence from Phrygia, Anatolia, now pushes back the date to the 3rd century AD and confirms the use of a crank in the sawmill.[51]
Shipmill, (though small, the conventional term is "shipmill" not boat mill, probably because there was always a deck, and usually an enclosed superstructure, to keep the flour away from the damp) where water wheels were attached to boats, was first recorded at Rome in 547 AD in Procopius of Caesarea's Gothic Wars (1.19.8–29) when Belisaurius was besieged there.
Essentials of the Steam engine By the late 3rd century AD, all essential elements for constructing a steam engine were known by Roman engineers: steam power (in Hero's aeolipile), the crank and connecting rod mechanism (in the Hierapolis sawmill), the cylinder and piston (in metal force pumps), non-return valves (in water pumps) and gearing (in water mills and clocks)[52]
Watermill. Improvements upon earlier models. For the largest mill complex known see Barbegal
Mercury Gilding as in the Horses of San Marco
Newspaper, rudimentary See Acta Diurna.
Odometer
Paddle wheel boats In de Rebus Bellicis (possibly only a paper invention).
Pewter Mentioned by Pliny the Elder (Naturalis Historia 34, 160–1). Surviving examples are mainly Romano-British of the 3rd and 4th centuries e.g.[5] and [6]. Roman pewter had a wide range of proportions of tin but proportions of 50%, 75% and 95% predominate (Beagrie 1989).
Pleasure lake An artificial reservoir, highly unusual in that it was meant for recreational rather than utilitarian purposes was created at Subiaco, Italy, for emperor Nero (54–68 AD). The dam remained the highest in the Roman Empire (50 m),[53] and in the world until its destruction in 1305.[54]
Plough
iron-bladed (A much older innovation (e.g. Bible; I Samuel 13, 20–1) that became much more common in the Roman period)
wheeled (Pliny the Elder Naturalis Historia 18. 171–3) (More important for the Middle Ages, than this era.)
Pottery, glossed i.e. Samian ware
Reaper An early harvesting machine: vallus (Pliny the Elder Naturalis Historia 18,296, Palladius 7.2.2–4 [7])
Sails, fore-and-aft rig Introduction of fore-and-aft rigs 1) the Lateen sail 2) the Spritsail, this last already attested in 2nd century BC in the northern Aegean Sea[55] Note: there is no evidence of any combination of fore-and-aft rigs with square sails on the same Roman ship.
Sails, Lateen Representations show lateen sails in the Mediterranean as early as the 2nd century AD. Both the quadrilateral and the triangular type were employed.[56][57][58][59][60][61][62][63][64][65]
Roller bearings Archaeologically attested in the Lake Nemi ships[66]
Rudder, stern-mounted See image for something very close to being a sternpost rudder
Sausage, fermented dry (probably) See salami.
Screw press An innovation of about the mid-1st century AD[67]
Sewers See for example Cloaca Maxima
Soap, hard (sodium) First mentioned by Galen (earlier, potassium, soap being Celtic).
Spiral staircase Though first attested as early as the 5th century BC in Greek Selinunte, spiral staircases only become more widespread after their adoption in Trajan's column and the Column of Marcus Aurelius.
Stenography, a system of See Tironian notes.
Street map, early See Forma Urbis Romae (Severan Marble Plan), a carved marble ground plan of every architectural feature in ancient Rome.[68]
Sundial, portable See Theodosius of Bithynia
Surgical instruments, various
Tooth implants, iron From archaeological evidence in Gaul[69]
Towpath e.g. beside the Danube, see the "road" in Trajan's bridge
Tunnels Excavated from both ends simultaneously. The longest known is the 5.6-kilometre (3.5 mi) drain of the Fucine lake
Vehicles, one wheeled Solely attested by a Latin word in 4th century AD Scriptores Historiae Augustae Heliogabalus 29. As this is fiction, the evidence dates to its time of writing.
Wood veneer Pliny Nat. Hist. 16. 231–2

Discover more about Technologies developed or invented by the Romans related topics

Roman abacus

Roman abacus

The Ancient Romans developed the Roman hand abacus, a portable, but less capable, base-10 version of earlier abacuses like those that were used by the Greeks and Babylonians.

Alum

Alum

An alum is a type of chemical compound, usually a hydrated double sulfate salt of aluminium with the general formula XAl(SO4)2·12 H2O, where X is a monovalent cation such as potassium or ammonium. By itself, "alum" often refers to potassium alum, with the formula KAl(SO4)2·12 H2O. Other alums are named after the monovalent ion, such as sodium alum and ammonium alum.

Amphitheatre

Amphitheatre

An amphitheatre or amphitheater is an open-air venue used for entertainment, performances, and sports. The term derives from the ancient Greek ἀμφιθέατρον, from ἀμφί, meaning "on both sides" or "around" and θέατρον, meaning "place for viewing".

Colosseum

Colosseum

The Colosseum is an elliptical amphitheatre in the centre of the city of Rome, Italy, just east of the Roman Forum. It is the largest ancient amphitheatre ever built, and is still the largest standing amphitheatre in the world, despite its age. Construction began under the emperor Vespasian in 72 and was completed in 80 AD under his successor and heir, Titus. Further modifications were made during the reign of Domitian. The three emperors who were patrons of the work are known as the Flavian dynasty, and the amphitheatre was named the Flavian Amphitheatre by later classicists and archaeologists for its association with their family name (Flavius).

Insula (building)

Insula (building)

In Roman architecture, an insula was one of two things: either a kind of apartment building, or a city block. This article deals with the former definition, that of a type of apartment building.

Roman aqueduct

Roman aqueduct

The Romans constructed aqueducts throughout their Republic and later Empire, to bring water from outside sources into cities and towns. Aqueduct water supplied public baths, latrines, fountains, and private households; it also supported mining operations, milling, farms, and gardens.

Pont du Gard

Pont du Gard

The Pont du Gard is an ancient Roman aqueduct bridge built in the first century AD to carry water over 50 km (31 mi) to the Roman colony of Nemausus (Nîmes). It crosses the river Gardon near the town of Vers-Pont-du-Gard in southern France. The Pont du Gard is the tallest of all Roman aqueduct bridges, as well as one of the best preserved. It was added to UNESCO's list of World Heritage sites in 1985 because of its exceptional preservation, historical importance, and architectural ingenuity.

Arch

Arch

An arch is a vertical curved structure that spans an elevated space and may or may not support the weight above it, or in case of a horizontal arch like an arch dam, the hydrostatic pressure against it.

Baths of Diocletian

Baths of Diocletian

The Baths of Diocletian were public baths in ancient Rome. Named after emperor Diocletian and built from 298 CE to 306 CE, they were the largest of the imperial baths. The project was originally commissioned by Maximian upon his return to Rome in the autumn of 298 and was continued after his and Diocletian's abdication under Constantius, father of Constantine.

Codex

Codex

The codex was the historical ancestor of the modern book. Instead of being composed of sheets of paper, it used sheets of vellum, papyrus, or other materials. The term codex is often used for ancient manuscript books, with handwritten contents. A codex, much like the modern book, is bound by stacking the pages and securing one set of edges by a variety of methods over the centuries, yet in a form analogous to modern bookbinding. Modern books are divided into paperback or softback and those bound with stiff boards, called hardbacks. Elaborate historical bindings are called treasure bindings. At least in the Western world, the main alternative to the paged codex format for a long document was the continuous scroll, which was the dominant form of document in the ancient world. Some codices are continuously folded like a concertina, in particular the Maya codices and Aztec codices, which are actually long sheets of paper or animal skin folded into pages.

Martial

Martial

Marcus Valerius Martialis was a Roman poet from Hispania best known for his twelve books of Epigrams, published in Rome between AD 86 and 103, during the reigns of the emperors Domitian, Nerva and Trajan. In these short, witty poems he cheerfully satirises city life and the scandalous activities of his acquaintances, and romanticises his provincial upbringing. He wrote a total of 1,561 epigrams, of which 1,235 are in elegiac couplets.

Brass

Brass

Brass is an alloy of copper (Cu) and zinc (Zn), in proportions which can be varied to achieve different colours and mechanical, electrical, and chemical properties, but copper typically has the larger proportion. In use since prehistoric times, it is a substitutional alloy: atoms of the two constituents may replace each other within the same crystal structure.

Source: "Ancient Roman technology", Wikipedia, Wikimedia Foundation, (2023, March 23rd), https://en.wikipedia.org/wiki/Ancient_Roman_technology.

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See also
References
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Further reading
  • Wilson, Andrew (2002), "Machines, Power and the Ancient Economy", The Journal of Roman Studies, Society for the Promotion of Roman Studies, Cambridge University Press, vol. 92, pp. 1–32, doi:10.2307/3184857, JSTOR 3184857, S2CID 154629776
  • Greene, Kevin (2000), "Technological Innovation and Economic Progress in the Ancient World: M.I. Finley Re-Considered", The Economic History Review, vol. 53, no. 1, pp. 29–59, doi:10.1111/1468-0289.00151
  • Derry, Thomas Kingston and Trevor I. Williams. A Short History of Technology: From the Earliest Times to A.D. 1900. New York : Dover Publications, 1993
  • Williams, Trevor I. A History of Invention From Stone Axes to Silicon Chips. New York, New York, Facts on File, 2000
  • Lewis, M. J. T. (2001), "Railways in the Greek and Roman world", in Guy, A.; Rees, J. (eds.), Early Railways. A Selection of Papers from the First International Early Railways Conference (PDF), pp. 8–19 (10–15), archived from the original (PDF) on 7 October 2009
  • Galliazzo, Vittorio (1995), I ponti romani, vol. 1, Treviso: Edizioni Canova, pp. 92, 93 (fig. 39), ISBN 88-85066-66-6
  • Werner, Walter (1997), "The largest ship trackway in ancient times: the Diolkos of the Isthmus of Corinth, Greece, and early attempts to build a canal", The International Journal of Nautical Archaeology, 26 (2): 98–119, doi:10.1111/j.1095-9270.1997.tb01322.x
  • Neil Beagrie, "The Romano-British Pewter Industry", Britannia, Vol. 20 (1989), pp. 169–91
  • Grewe, Klaus (2009), "Die Reliefdarstellung einer antiken Steinsägemaschine aus Hierapolis in Phrygien und ihre Bedeutung für die Technikgeschichte. Internationale Konferenz 13.−16. Juni 2007 in Istanbul", in Bachmann, Martin (ed.), Bautechnik im antiken und vorantiken Kleinasien (PDF), Byzas, vol. 9, Istanbul: Ege Yayınları/Zero Prod. Ltd., pp. 429–454, ISBN 978-975-8072-23-1, archived from the original (PDF) on 11 May 2011
  • Lewis, M.J.T., 1997, Millstone and Hammer, University of Hull Press
  • Moritz, L.A., 1958, Grainmills and Flour in Classical Antiquity, Oxford
  • Ritti, Tullia; Grewe, Klaus; Kessener, Paul (2007), "A Relief of a Water-powered Stone Saw Mill on a Sarcophagus at Hierapolis and its Implications", Journal of Roman Archaeology, 20: 138–163, doi:10.1017/S1047759400005341, S2CID 161937987
  • Oliver Davies, "Roman Mines in Europe", Clarendon Press (Oxford), 1935.
  • Jones G. D. B., I. J. Blakey, and E. C. F. MacPherson, "Dolaucothi: the Roman aqueduct," Bulletin of the Board of Celtic Studies 19 (1960): 71–84 and plates III-V.
  • Lewis, P. R. and G. D. B. Jones, "The Dolaucothi gold mines, I: the surface evidence," The Antiquaries Journal, 49, no. 2 (1969): 244–72.
  • Lewis, P. R. and G. D. B. Jones, "Roman gold-mining in north-west Spain," Journal of Roman Studies 60 (1970): 169–85.
  • Lewis, P. R., "The Ogofau Roman gold mines at Dolaucothi," The National Trust Year Book 1976–77 (1977).
  • Barry C. Burnham, "Roman Mining at Dolaucothi: the Implications of the 1991–3 Excavations near the Carreg Pumsaint", Britannia 28 (1997), 325–336
  • A.H.V. Smith, "Provenance of Coals from Roman Sites in England and Wales", Britannia, Vol. 28 (1997), pp. 297–324
  • Basch, Lucien (2001), "La voile latine, son origine, son évolution et ses parentés arabes", in Tzalas, H. (ed.), Tropis VI, 6th International Symposium on Ship Construction in Antiquity, Lamia 1996 proceedings, Athens: Hellenic Institute for the Preservation of Nautical Tradition, pp. 55–85
  • Campbell, I.C. (1995), "The Lateen Sail in World History" (PDF), Journal of World History, vol. 6, no. 1, pp. 1–23
  • Casson, Lionel (1954), "The Sails of the Ancient Mariner", Archaeology, vol. 7, no. 4, pp. 214–219
  • Casson, Lionel (1995), Ships and Seamanship in the Ancient World, Johns Hopkins University Press, ISBN 0-8018-5130-0
  • Castro, F.; Fonseca, N.; Vacas, T.; Ciciliot, F. (2008), "A Quantitative Look at Mediterranean Lateen- and Square-Rigged Ships (Part 1)", The International Journal of Nautical Archaeology, vol. 37, no. 2, pp. 347–359, doi:10.1111/j.1095-9270.2008.00183.x, S2CID 45072686
  • Friedman, Zaraza; Zoroglu, Levent (2006), "Kelenderis Ship. Square or Lateen Sail?", The International Journal of Nautical Archaeology, vol. 35, no. 1, pp. 108–116, doi:10.1111/j.1095-9270.2006.00091.x, S2CID 108961383
  • Makris, George (2002), "Ships", in Laiou, Angeliki E (ed.), The Economic History of Byzantium. From the Seventh through the Fifteenth Century, vol. 2, Dumbarton Oaks, pp. 89–99, ISBN 0-88402-288-9
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