The history of rail transport began before the common era. It can be divided into several discrete periods, defined by the principal track material and power used.
Ancient systems
The Post Track, a prehistoric causeway in the valley of the River Brue in the Somerset Levels, England, is one of the oldest known constructed trackways and dates from around 3838 BC, making it some 30 years older than the Sweet Track in the same area. Various sections have been designated as scheduled monuments. Evidence indicates that there was a 6-to-8.5-kilometre-long (3.7 to 5.3 mi) paved trackway (Diolkos), which transported boats across the Isthmus of Corinth in Greece from around 600 BC. Wheeled vehicles pulled by men and animals ran in grooves indented in the limestone, which were meant to hold the wagon wheels in place & to travel in a straight direction. The Diolkos was in use for over 650 years, until at least the 1st century AD. Paved trackways were also later built in Roman Egypt.
Pre-steam
Wooden rails introduced
In 1515, Cardinal Matthäus Lang wrote a description of the Reisszug, a funicular railway at the Hohensalzburg Fortress in Austria. The line originally used wooden rails and a hemp haulage rope and was operated by human or animal power through a treadwheel. The line still exists today and remains operational, though in updated form. It may be the oldest operational railway.
Wagonways (or tramways), with wooden rails and horse-drawn traffic, were used in the 1550s to facilitate transportation of ore tubs to and from mines. They soon became popular in Europe, and Georgius Agricola illustrated their operation in his 1556 work De re metallica (see image). This line used "Hund" carts with unflanged wheels running on wooden planks and a vertical pin on the truck fitting into the gap between the planks to keep it going the right way. The miners called the wagons Hunde (meaning "dogs") from the noise they made on the tracks. There are many references to wagonways in central Europe in the 16th century. A wagonway was introduced to England by German miners at Caldbeck, Cumbria, possibly in the 1560s. This underground wagonway is the earliest known evidence for the use of tracked transport in Britain. A wagonway was built at Prescot, near Liverpool, sometime around 1600, possibly as early as 1594. Owned by Philip Layton, the line carried coal from a pit near Prescot Hall to a terminus about half a mile away. The Wollaton Wagonway, completed in 1604 by Huntingdon Beaumont, was the earliest British railway, excluding systems using a guided pin. It ran from Strelley to Wollaton near Nottingham. Several funicular railways (counter-balanced trains on a slope, linked by rope) were set up at Broseley in Shropshire from October 1605. Another line constructed in April 1606, carried coal for James Clifford from his mines down to the river Severn to be loaded onto barges and carried to riverside towns. The Middleton Railway in Leeds, which was built in 1758, later became the world's oldest operational railway (other than funiculars), albeit now in an upgraded form. In 1764, the first railway in the Americas was built in Lewiston, New York.
Metal rails introduced
The introduction of steam engines to powering blast furnaces led to a large increase in British iron production after the mid-1750s. In the late 1760s, the Coalbrookdale Company began to fix plates of cast iron to the upper surface of wooden rails, which increased their durability and load-bearing ability. At first, only balloon loops could be used for turning wagons, but later, movable points were introduced that allowed passing loops to be created. A system was introduced in which unflanged wheels ran on L-shaped metal plates – these became known as plateways. John Curr, a Sheffield colliery manager, invented this flanged rail in 1787, though the exact date of this is disputed. The plate rail was taken up by Benjamin Outram for wagonways serving his canals, manufacturing them at his Butterley ironworks. In 1803, William Jessop opened the Surrey Iron Railway, a double track plateway in south London sometimes erroneously cited as world's first public railway. In 1789, William Jessop had introduced a form of all-iron edge rail and flanged wheels for an extension to the Charnwood Forest Canal at Nanpantan, Loughborough, Leicestershire. In 1790, Jessop and his partner Outram began to manufacture edge-rails. Jessop became a partner in the Butterley Company in 1790. The first public edgeway (thus also first public railway) built was the Lake Lock Rail Road in 1796. Although the primary purpose of the line was to carry coal, it also carried passengers. These two systems of constructing iron railways, the "L" plate-rail and the smooth edge-rail, continued to exist side by side into the early 19th century. The flanged wheel and edge-rail eventually proved its superiority and became the standard for railways.
Cast iron was not a satisfactory material for rails because it was brittle and broke under heavy loads. The wrought iron rail invented by John Birkinshaw in 1820 solved this problem. Wrought iron (usually simply referred to as "iron") was a ductile material that could undergo considerable deformation before breaking, making it more suitable for iron rails, but wrought iron was expensive to produce until Henry Cort patented the puddling process in 1784. In 1783, Cort also patented the rolling process, which was 15 times faster at consolidating and shaping iron than hammering. These processes greatly lowered the cost of producing iron and iron rails. The next important development in iron production was hot blast patented by James Beaumont Neilson in 1828, which considerably reduced the amount of coke (fuel) or charcoal needed to produce pig iron. Wrought iron was a soft material that contained slag or dross. The softness and dross tended to make iron rails distort and delaminate, and they typically lasted less than 10 years in use and sometimes as little as one year under high traffic. All these developments in the production of iron eventually led to replacement of composite wood/iron rails with superior all-iron rails. The introduction of the Bessemer process reduced the cost of steel production and led to a great expansion of railways that began in the late 1860s. Steel rails lasted several times longer than iron. Steel rails made heavier locomotives possible, allowing for longer trains and improving the productivity of railroads. However, the Bessemer process introduced nitrogen into the steel, which caused the steel to become brittle with age, and the open hearth furnace began to replace the Bessemer process near the end of 19th century, improving the quality of steel and further reducing costs. Steel completely replaced the use of iron in rails, becoming standard for all railways. According to Ozyuksel, the rails were one of the major initiators of the expansion of the steel industry. 600,000 people across the globe worked in the rail industry in 1907.
Steam power introduced
Scottish inventor and mechanical engineer James Watt greatly improved the steam engine of Thomas Newcomen, which was used to pump water out of mines. In 1769, Watt developed a reciprocating engine capable of powering a wheel. It was a large stationary engine: the state of boiler technology necessitated the use of low-pressure steam acting upon a vacuum in the cylinder, and this required a separate condenser and an air pump. As the construction of boilers improved, Watt investigated the use of high-pressure steam acting directly upon a piston. This raised the possibility of a smaller engine that could be used to power a vehicle, and he patented a design for a steam locomotive in 1784. His employee William Murdoch produced a working model of a self-propelled steam carriage in that year.
In 1804, the first full-scale working railway steam locomotive was built in the United Kingdom by Richard Trevithick, a British engineer born in Cornwall. This used high-pressure steam to drive the engine by one power stroke. The transmission system employed a large flywheel to even out the action of the piston rod. On 21 February 1804, Trevithick's unnamed steam locomotive hauled a train along the tramway of the Penydarren ironworks near Merthyr Tydfil in South Wales, becoming the world's first steam-powered railway journey. Trevithick later demonstrated a locomotive operating upon a piece of circular rail track in Bloomsbury, London, the Catch Me Who Can, but he never got beyond the experimental stage with railway locomotives, not least because his engines were too heavy for the cast-iron plateway track in use at that time.
In 1812, the first commercially successful steam locomotive was Matthew Murray's rack locomotive Salamanca built for the Middleton Railway in Leeds. This twin-cylinder locomotive was not heavy enough to break the edge-rails track and solved the problem of adhesion by a cog-wheel using teeth cast on the side of one of the rails. Thus it was also the first rack railway.In 1813, this was followed by the locomotive Puffing Billy built by Christopher Blackett and William Hedley for the Wylam Colliery Railway, the first successful locomotive running by adhesion only. This was accomplished by the distribution of weight between a number of wheels. Puffing Billy is now on display in the Science Museum in London, making it the oldest locomotive in existence.
In 1814, inspired by the early locomotives of Trevithick, Murray and Hedley, George Stephenson persuaded the manager of the Killingworth colliery where he worked to allow him to build a steam-powered machine. Stephenson played a pivotal role in the development and widespread adoption of the steam locomotive. His designs considerably improved on the work of the earlier pioneers. He built the locomotive Blücher, also a successful flanged-wheel adhesion locomotive. In 1825, he built the locomotive Locomotion for the Stockton and Darlington Railway in the North East of England, which became the first public steam railway in the world, although it used both horse power and steam power on different runs. In 1829, he built the locomotive Rocket, which entered in and won the Rainhill Trials. This success led to Stephenson establishing his company as the pre-eminent builder of steam locomotives for railways in Great Britain and Ireland, the United States, and much of Europe. In 1830, the first public railway which used only steam locomotives, all the time, the Liverpool and Manchester Railway, was built. On 15 September 1830, the world's first and historical train journey was between Liverpool and Manchester in England. Steam power continued to be the dominant power system in railways around the world for more than a century.
Electric power introduced
The first known electric locomotive was built in 1837 by chemist Robert Davidson of Aberdeen in Scotland, and it was powered by galvanic cells (batteries). Thus it was also the earliest battery electric locomotive. Davidson later built a larger locomotive named Galvani, exhibited at the Royal Scottish Society of Arts Exhibition in 1841. The seven-ton vehicle had two direct-drive reluctance motors, with fixed electromagnets acting on iron bars attached to a wooden cylinder on each axle, and simple commutators. It hauled a load of six tons at four miles per hour (6 kilometers per hour) for a distance of one and a half miles (2.4 kilometres). It was tested on the Edinburgh and Glasgow Railway in September of the following year, but the limited power from batteries prevented its general use. It was destroyed by railway workers, who saw it as a threat to their job security. Early experimentation with railway electrification was undertaken by the Ukrainian engineer Fyodor Pirotsky. In 1875, he had electrically powered railway cars run on Miller's line, between Sestroretsk and Beloostrov. During September 1880, in St. Petersburg, Pirotsky put into operation an electric tram he had converted from a double-decker horse tramway. Although Pirotsky's own tram project was taken no further, his experiment and work in the field did stimulate interest in electric trams globally. Carl von Siemens met with Pirotsky and studied exhibits of his work carefully. The Siemens brothers (Carl and Werner) began commercial production of their own design of electric trams soon after, in 1881.
Werner von Siemens demonstrated an electric railway in 1879 in Berlin. One of the world's first electric tram lines, Gross-Lichterfelde Tramway, opened in Lichterfelde near Berlin, Germany, in 1881. It was built by Siemens. The tram ran on 180 Volt DC, which was supplied by running rails. In 1891 the track was equipped with an overhead wire and the line was extended to Berlin-Lichterfelde West station. The Volk's Electric Railway opened in 1883 in Brighton, England. The railway is still operational, thus making it the oldest operational electric railway in the world. Also in 1883, Mödling and Hinterbrühl Tram opened near Vienna in Austria. It was the first tram line in the world in regular service powered from an overhead line. Five years later, in the US electric trolleys were pioneered in 1888 on the Richmond Union Passenger Railway, using equipment designed by Frank J. Sprague.
The first use of electrification on a main line was on a four-mile stretch of the Baltimore Belt Line of the Baltimore and Ohio Railroad (B&O) in 1895 connecting the main portion of the B&O to the new line to New York through a series of tunnels around the edges of Baltimore's downtown. Electricity quickly became the power supply of choice for subways, abetted by the Sprague's invention of multiple-unit train control in 1897. By the early 1900s, most street railways were electrified. The first practical AC electric locomotive was designed by Charles Brown, then working for Oerlikon, Zürich. In 1891, Brown had demonstrated long-distance power transmission, using three-phase AC, between a hydro-electric plant at Lauffen am Neckar and Frankfurt am Main West, a distance of 280 km. Using experience he had gained while working for Jean Heilmann on steam-electric locomotive designs, Brown observed that three-phase motors had a higher power-to-weight ratio than DC motors and, because of the absence of a commutator, were simpler to manufacture and maintain. However, they were much larger than the DC motors of the time and could not be mounted in underfloor bogies: they could only be carried within locomotive bodies. In 1894, Hungarian engineer Kálmán Kandó developed a new type 3-phase asynchronous electric drive motors and generators for electric locomotives. Kandó's early 1894 designs were first applied in a short three-phase AC tramway in Evian-les-Bains (France), which was constructed between 1896 and 1898. In 1896, Oerlikon installed the first commercial example of the system on the Lugano Tramway. Each 30-tonne locomotive had two 110 kW (150 hp) motors run by three-phase 750 V 40 Hz fed from double overhead lines. Three-phase motors run at constant speed and provide regenerative braking, and are well suited to steeply graded routes, and the first main-line three-phase locomotives were supplied by Brown (by then in partnership with Walter Boveri) in 1899 on the 40 km Burgdorf–Thun line, Switzerland.
Italian railways were the first in the world to introduce electric traction for the entire length of a main line rather than just a short stretch. The 106 km Ferrovia della Valtellina line was opened on 4 September 1902, designed by Kandó and a team from the Ganz works. The electrical system was three-phase at 3 kV 15 Hz. In 1918, Kandó invented and developed the rotary phase converter, enabling electric locomotives to use three-phase motors whilst supplied via a single overhead wire, carrying the simple industrial frequency (50 Hz) single phase AC of the high voltage national networks. An important contribution to the wider adoption of AC traction came from SNCF of France after World War II. The company conducted trials at 50 Hz, and established it as a standard. Following SNCF's successful trials, 50 Hz (now also called industrial frequency) was adopted as standard for main lines across Europe and many other parts of the world.
Diesel power introduced
Earliest recorded examples of an internal combustion engine for railway use included a prototype designed by William Dent Priestman, which was examined by Sir William Thomson in 1888 who described it as a "Priestmans' petroleum engine" mounted upon a truck which is worked on a temporary line of rails to show the adaptation of a petroleum engine for locomotive purposes.". In 1894, a 20 hp (15 kW) two axle machine built by Priestman Brothers was used on the Hull Docks. In 1906, Rudolf Diesel, Adolf Klose and the steam and diesel engine manufacturer Gebrüder Sulzer founded Diesel-Sulzer-Klose GmbH to manufacture diesel-powered locomotives. Sulzer had been manufacturing diesel engines since 1898. The Prussian State Railways ordered a diesel locomotive from the company in 1909. The world's first diesel-powered locomotive was operated in the summer of 1912 on the Winterthur–Romanshorn railway in Switzerland, but was not a commercial success. The locomotive weight was 95 tonnes and the power was 883 kW with a maximum speed of 100 km/h. Small numbers of prototype diesel locomotives were produced in a number of countries through the mid-1920s.
A significant breakthrough occurred in 1914, when Hermann Lemp, a General Electric electrical engineer, developed and patented a reliable direct current electrical control system (subsequent improvements were also patented by Lemp). Lemp's design used a single lever to control both engine and generator in a coordinated fashion, and was the prototype for all diesel–electric locomotive control systems. In 1914, world's first functional diesel–electric railcars were produced for the Königlich-Sächsische Staatseisenbahnen (Royal Saxon State Railways) by Waggonfabrik Rastatt with electric equipment from Brown, Boveri & Cie and diesel engines from Swiss Sulzer AG. They were classified as DET 1 and DET 2. The first regular use of diesel–electric locomotives was in switching (shunter) applications. General Electric produced several small switching locomotives in the 1930s (the famous "44-tonner" switcher was introduced in 1940) Westinghouse Electric and Baldwin collaborated to build switching locomotives starting in 1929. In 1929, the Canadian National Railways became the first North American railway to use diesels in mainline service with two units, 9000 and 9001, from Westinghouse.
High-speed rail
The first electrified high-speed rail Tōkaidō Shinkansen (series 0) was introduced in 1964 between Tokyo and Osaka in Japan. Since then high-speed rail transport, functioning at speeds up and above 300 km/h (186.4 mph), has been built in Japan, Spain, France, Germany, Italy, Taiwan, the People's Republic of China, the United Kingdom, South Korea, Scandinavia, Belgium, the Netherlands, and Indonesia. The construction of many of these lines has resulted in the dramatic decline of short haul flights and automotive traffic between connected cities, such as the London–Paris–Brussels corridor, Madrid–Barcelona, Milan–Rome–Naples, as well as many other major lines. High-speed trains normally operate on standard gauge tracks of continuously welded rail on grade-separated right-of-way that incorporates a large turning radius in its design. While high-speed rail is most often designed for passenger travel, some high-speed systems also offer freight service.
Hydrogen power introduced Alstom Coradia Lint hydrogen-powered train entered service in Lower Saxony, Germany in 2018.
History by country
Europe
In recent years deregulation has been a major topic across Europe.
Albania
Austria
Belarus
Belgium
Belgium led the Industrial Revolution on the Continent starting in the 1820s. It showed the value of the railways for speeding the industrial revolution. After splitting from the Netherlands in 1830, the new country decided to stimulate industry. It planned and funded a simple cross-shaped system that connected the major cities, ports and mining areas and linked to neighboring countries. Unusually, the Belgian state became a major contributor to early rail development and championed the creation of a national network with no duplication of lines. Belgium thus became the railway center of the region. The system was built along British lines, often with British engineers doing the planning. Profits were low but the infrastructure necessary for rapid industrial growth was put in place. In May 1835, the first railway in Belgium, running from northern Brussels to Mechelen, was completed.
Britain
Early developments The earliest railway in Britain was a wagonway system; a horse drawn wooden rail system, used by German miners at Caldbeck, Cumbria, England, perhaps from the 1560s. A wagonway was built at Prescot, near Liverpool, sometime around 1600, possibly as early as 1594. Owned by Philip Layton, the line carried coal from a pit near Prescot Hall to a terminus about half a mile away. On 26 July 1803, Jessop opened the Surrey Iron Railway, south of London erroneously considered first railway in Britain, also a horse-drawn one. It was not a railway in the modern sense of the word, as it functioned like a turnpike road. There were no official services, as anyone could bring a vehicle on the railway by paying a toll. The oldest railway in continuous use is the Tanfield Railway in County Durham, England. This began life in 1725 as a wooden waggonway worked with horse power and developed by private coal owners and included the construction of the Causey Arch, the world's oldest purpose built railway bridge. By the mid 19th century it had converted to standard gauge track and steam locomotive power. It continues in operation as a heritage line. The Middleton Railway in Leeds, opened in 1758, is also still in use as a heritage line and began using steam locomotive power in 1812 before reverting to horsepower and then upgrading to standard gauge. In 1764, the first railway in the Americas was built in Lewiston, New York. The first passenger Horsecar or tram, Swansea and Mumbles Railway was opened between Swansea and Mumbles in Wales in 1807. Horse remained preferable mode for tram transport even after arrival of steam engines, well till the end of 19th century. The major reason was that the horse-cars were clean as compared to steam driven trams which caused smoke in city streets. In 1812, Oliver Evans, an American engineer and inventor, published his vision of what steam railways could become, with cities and towns linked by a network of long-distance railways plied by speedy locomotives, greatly speeding up personal travel and goods transport. Evans specified that there should be separate sets of parallel tracks for trains going in different directions. However, conditions in the infant United States did not enable his vision to take hold. This vision had its counterpart in Britain, where it proved to be far more influential. William James, a rich and influential surveyor and land agent, was inspired by the development of the steam locomotive to suggest a national network of railways. It seems likely that in 1808 James attended the demonstration running of Richard Trevithick's steam locomotive Catch me who can in London; certainly at this time he began to consider the long-term development of this means of transport. He proposed a number of projects that later came to fruition and is credited with carrying out a survey of the Liverpool and Manchester Railway. Unfortunately he became bankrupt and his schemes were taken over by George Stephenson and others. However, he is credited by many historians with the title of "Father of the Railway". It was not until 1825, that the success of the Stockton and Darlington Railway in County Durham, England, the world's first public railway to combine locomotive power, malleable iron rails, twin tracks and other innovations such as early signalling, proto-Station buildings and rudimentary timetables in one place It proved to a national and international audience that the railways could be made profitable for passengers and general goods as well as a single commodity such as coal. This railway broke new ground by using rails made of rolled wrought iron, produced at Bedlington Ironworks in Northumberland. Such rails were stronger. This railway linked the coal field of Durham with the towns of Darlington and the port of Stockton-on-Tees and was intended to enable local collieries (which were connected to the line by short branches) to transport their coal to the docks. As this would constitute the bulk of the traffic, the company took the important step of offering to haul the colliery wagons or chaldrons by locomotive power, something that required a scheduled or timetabled service of trains. However, the line also functioned as a toll railway, on which private horse-drawn wagons could be carried. This hybrid of a system (which also included, at one stage, a horse-drawn passenger traffic when sufficient locomotives weren't available) could not last and within a few years, traffic was restricted to timetabled trains. (However, the tradition of private owned wagons continued on railways in Britain until the 1960s.). The S&DRs chief engineer Timothy Hackworth under the guidance of its principal funder Edward Pease, hosted visiting engineers from the US, Prussia and France and shared experience and learning on how to build and run a railway so that by 1830 railways were being built in several locations across the UK, USA and Europe. Trained engineers and workers from the S&DR went on to help develop several other lines elsewhere including the Liverpool and Manchester of 1830, the next step forward in railway development.
The success of the Stockton and Darlington encouraged the rich investors in the rapidly industrialising North West of England to embark upon a project to link the rich cotton manufacturing town of Manchester with the thriving port of Liverpool. The Liverpool and Manchester Railway was the first modern railway, in that both the goods and passenger traffic were operated by scheduled or timetabled locomotive hauled trains. When it was built, there was serious doubt that locomotives could maintain a regular service over the distance involved. A widely reported competition was held in 1829 called the Rainhill Trials, to find the most suitable steam engine to haul the trains. A number of locomotives were entered, including Novelty, Perseverance and Sans Pareil. The winner was Stephenson's Rocket, which steamed better because of its multi-tubular boiler (suggested by Henry Booth, a director of the railway company). The promoters were mainly interested in goods traffic, but after the line opened on 15 September 1830, they were surprised to find that passenger traffic was just as remunerative. The success of the Liverpool and Manchester railway added to the influence of the S&DR in the development of railways elsewhere in Britain and abroad. The company hosted many visiting deputations from other railway projects and many railwaymen received their early training and experience upon this line. The Liverpool and Manchester line was, however, only 35 miles (56 km) long. The world's first trunk line can be said to be the Grand Junction Railway, opening in 1837 and linking a midpoint on the Liverpool and Manchester Railway with Birmingham, via Crewe, Stafford and Wolverhampton.
Further development The earliest locomotives in revenue service were small four-wheeled ones similar to the Rocket. However, the inclined cylinders caused the engine to rock, so they first became horizontal and then, in his "Planet" design, were mounted inside the frames. While this improved stability, the "crank axles" were extremely prone to breakage. Greater speed was achieved by larger driving wheels at expense of a tendency for wheel slip when starting. Greater tractive effort was obtained by smaller wheels coupled together, but speed was limited by the fragility of the cast-iron connecting rods. Hence, from the beginning, there was a distinction between the light fast passenger locomotive and the slower more powerful goods engine. Edward Bury, in particular, refined this design and the so-called "Bury Pattern" was popular for a number of years, particularly on the London and Birmingham. Meanwhile, by 1840, Stephenson had produced larger, more stable, engines in the form of the 2-2-2 "Patentee" and six-coupled goods engines. Locomotives were travelling longer distances and being worked more extensively. The North Midland Railway expressed their concern to Robert Stephenson who was, at that time, their general manager, about the effect of heat on their fireboxes. After some experiments, he patented his so-called Long Boiler design. These became a new standard and similar designs were produced by other manufacturers, particularly Sharp Brothers whose engines became known affectionately as "Sharpies". The longer wheelbase for the longer boiler produced problems in cornering. For his six-coupled engines, Stephenson removed the flanges from the centre pair of wheels. For his express engines, he shifted the trailing wheel to the front in the 4-2-0 formation, as in his "Great A". There were other problems: the firebox was restricted in size or had to be mounted behind the wheels; and for improved stability most engineers believed that the centre of gravity should be kept low. The most extreme outcome of this was the Crampton locomotive which mounted the driving wheels behind the firebox and could be made very large in diameter. These achieved the hitherto unheard of speed of 70 mph (110 km/h) but were very prone to wheelslip. With their long wheelbase, they were unsuccessful on Britain's winding tracks, but became popular in the US and France, where the popular expression became prendre le Crampton. John Gray of the London and Brighton Railway disbelieved the necessity for a low centre of gravity and produced a series of locomotives that were much admired by David Joy who developed the design at the firm of E. B. Wilson and Company to produce the 2-2-2 Jenny Lind locomotive, one of the most successful passenger locomotives of its day. Meanwhile, the Stephenson 0-6-0 Long Boiler locomotive with inside cylinders became the archetypal goods engine.
Expanding network Railways quickly became essential to the swift movement of goods and labour that was needed for industrialization. In the beginning, canals were in competition with the railways, but the railways quickly gained ground as steam and rail technology improved and railways were built in places where canals were not practical. By the 1850s, many steam-powered railways had reached the fringes of built-up London. But the new companies were not permitted to demolish enough property to penetrate the city or the West End, so passengers had to disembark at Paddington, Euston, King's Cross, Fenchurch Street, Charing Cross, Waterloo or Victoria and then make their own way by hackney carriage or on foot into the centre, thereby massively increasing congestion in the city. A Metropolitan Railway was built underground to connect several of these separate railway terminals and was the world's first "Metro".
Social and economic consequences The railways changed British society in numerous and complex ways. Although recent attempts to measure the economic significance of the railways have suggested that their overall contribution to the growth of GDP was more modest than an earlier generation of historians sometimes assumed, it is nonetheless clear that the railways had a sizeable impact in many spheres of economic activity. The building of railways and locomotives, for example, called for large quantities of heavy materials and thus provided a significant stimulus or 'backward linkage', to the coal-mining, iron-production, engineering and construction industries. They also helped to reduce transaction costs, which in turn lowered the costs of goods: the distribution and sale of perishable goods such as meat, milk, fish and vegetables were transformed by the emergence of the railways, giving rise not only to cheaper produce in the shops but also to far greater variety in people's diets. Finally, by improving personal mobility the railways were a significant force for social change. Rail transport had originally been conceived as a way of moving coal and industrial goods but the railway operators quickly realised the potential market for railway travel, leading to an extremely rapid expansion in passenger services. The number of railway passengers trebled in just eight years between 1842 and 1850: traffic volumes roughly doubled in the 1850s and then doubled again in the 1860s. As the historian Derek Aldcroft has noted, "in terms of mobility and choice they added a new dimension to everyday life".
Bulgaria The Ruse – Varna railway was the first line in the Ottoman Empire and in modern Bulgaria. In 1864, the Ottoman government commissioning an English company managed by William Gladstone, a politician, and the Barkley brothers, civil engineers, to build it. The line was opened in 1866 and was 223 km long.
Czech Republic
Denmark
Estonia
Finland
France
In France, the first railways were operated by private coal companies. The first legal agreement to build a railway was signed in 1823, and the line (Saint-Étienne to Andrézieux) started operation in 1827. Much of the equipment was imported from Britain, but demand soon spurred a national heavy industry. Trains became a national medium for the modernization of backward regions. A leading advocate of this approach was the poet-politician Alphonse de Lamartine. One writer hoped that railways might improve the lot of "populations two or three centuries behind their fellows" and eliminate "the savage instincts born of isolation and misery." France built a centralized system that radiated out from Paris, which also included lines that cut east to west in the south. This design was intended to achieve political and cultural goals rather than maximize efficiency. After some time, six companies consolidated monopolies over their regions, subject to close government control of fares, finances, and even minute technical details. The central government department of Ponts et Chaussées (bridges and roads) brought in British engineers and workers, handled much of the construction work, provided engineering expertise and planning, acquired land, and built permanent infrastructure such as the track bed, bridges and tunnels. It also subsidized military lines along the German border, which was considered necessary for national defense. Private operating companies provided management, hired labor, laid the tracks, and built and operated stations. They purchased and maintained the rolling stock—6,000 locomotives were in operation in 1880, which averaged 51,600 passengers a year or 21,200 tons of freight.
Although starting the whole system at once was politically expedient, it delayed completion and forced even more reliance on temporary experts brought in from Britain. Financing was also a problem. The solution was a narrow base of funding through the Rothschilds and the closed circles of the Bourse in Paris, so France did not develop the same kind of national stock exchange that flourished in London and New York. The system did help modernize the parts of rural France it reached and help to develop many local industrial centers, mostly in the North (coal and iron mines) and in the East (textiles and heavy industry). Critics such as Émile Zola complained that it never overcame the corruption of the political system, but rather contributed to it. The railways probably helped the industrial revolution in France by facilitating a national market for raw materials, wines, cheeses and imported and exported manufactured products. In The Rise of Rail-Power in War and Conquest, 1833–1914, published in 1915, Edwin A. Pratt wrote, "the French railways … attained a remarkable degree of success. … It was estimated that the 75,966 men and 4,469 horses transported by rail from Paris to the Mediterranean or to the frontiers of the Kingdom of Sardinia between 20 and 30 April April [during the 1859 Second Italian War of Independence] would have taken sixty days to make the journey by road. … This… was about twice as fast as the best achievement recorded up to that time on the German railways. " Yet the goals set by the French for their railway system were moralistic, political and military rather than economic. As a result, the freight trains were shorter and less heavily loaded than those in such rapidly industrializing nations such as Britain, Belgium or Germany. Other infrastructure needs in rural France, such as better roads and canals, were neglected because of the expense of the railways, so it seems likely that there were net negative effects in areas not served by the trains.
Germany
An operation was illustrated in Germany in 1556 by Georgius Agricola in his work De re metallica. This line used "Hund" carts with unflanged wheels running on wooden planks and a vertical pin on the truck fitting into the gap between the planks to keep it going the right way. The miners called the wagons Hunde ("dogs") from the noise they made on the tracks. This system became very popular across Europe.
Economic development came with the railroad revolution in the 1840s, which opened up new markets for local products, created a pool of middle managers, increased the demand for engineers, architects and skilled machinists, and stimulated investments in coal and iron. Political disunity of three dozen states and pervasive conservatism had made it difficult to build railways in the 1830s. However, by the 1840s, trunk lines linked major cities. Each German state was responsible for the lines within its own borders. Economist Friedrich List summed up the advantages of the railway system in 1841:
As a means of national defence, it facilitates the concentration, distribution and direction of the army. It is a means to the improvement of the culture of the nation. It brings talent, knowledge and skill of every kind readily to market. It secures the community against dearth and famine and against excessive fluctuation in the prices of the necessaries of life. It promotes the spirit of the nation, as it has a tendency to destroy the Philistine spirit arising from isolation and provincial prejudice and vanity. It binds nations by ligaments and promotes an interchange of food and of commodities, thus making it feel to be a unit. The iron rails become a nerve system, which, on the one hand, strengthens public opinion, and, on the other hand, strengthens the power of the state for police and governmental purposes. Lacking a technological base at first, the Germans imported their engineering and hardware from Britain, but quickly learned the skills needed to operate and expand the railways. In many cities, the new railway shops were the centres of technological awareness and training, so that by 1850, Germany was self-sufficient in meeting the demands of railroad construction and the railways were a major impetus for the growth of the new steel industry. Observers found that even as late as 1890, their engineering was inferior to Britain's. However, German unification in 1870 stimulated consolidation, nationalisation into state-owned companies and further rapid growth. Unlike the situation in France, the goal was support of industrialisation and so heavy lines crisscrossed the Ruhr and other industrial districts and provided good connections to the major ports of Hamburg and Bremen. By 1880, Germany had 9,400 locomotives pulling 43,000 passengers and 30,000 tons
