Difference between revisions of "Rail transport" - New World Encyclopedia

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:''"Railroad" redirects here. For other uses, see [[Railroad (disambiguation)]].''
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[[Image:ICE 3 Fahlenbach.jpg|thumb|right|German [[InterCityExpress]]]]
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:''"Railroad" and "Railway" redirect here.''
[[Image:BNSF 5350 20040808 Prairie du Chien WI.jpg|thumb|right|[[BNSF Railway]] freight service in the United States]]
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[[Image:ICE 3 Fahlenbach.jpg|thumb|right|300px|German [[InterCityExpress]].]]
  
'''Rail transport''' is the conveyance of [[passenger]]s and [[Product (business)|goods]] by means of wheeled vehicles specially designed to run along '''railways''' or '''railroads'''. Rail transport is part of the [[logistics]] chain, which facilitates [[International trade| international trade]] and [[economic]] growth in most countries.
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'''Rail transport''' is the conveyance of [[passenger]]s and [[Product (business)|goods]] by means of wheeled vehicles specially designed to run along '''railways''' or '''railroads'''. It is a rapid, [[energy efficiency|energy-efficient]], but [[capital intensive|capital-intensive]] means of mechanized land [[transport]]. It is part of the [[logistics]] chain that facilitates [[International trade| international trade]] and [[economic]] growth in most countries.
  
Typical railway [[Rail tracks|tracks]] consist of two parallel [[Rail profile|rails]], normally made of [[steel]], secured to cross[[beam (structure)|beam]]s, termed ''[[railroad tie|sleepers]]'' (UK and Australia) or ''ties'' (US). The sleepers maintain a constant distance between the two rails; a measurement known as the "[[Rail gauge|gauge]]" of the track. To maintain the alignment of the track it is either laid on a bed of [[track ballast|ballast]] or else secured to a solid [[concrete]] foundation. The whole is referred to as [[permanent way]] (UK and Australia usage) or [[right-of-way (transportation)|right-of-way]] (North American usage).
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A railway system is a highly complex feat of engineering, with many hours of planning and forethought required for a successful outcome. Each system has two major types of components: those that move and those that are fixed. The components that move, called the ''[[rolling stock]],'' include [[locomotive]]s, [[Passenger car (rail)|passenger carrying vehicles]] (or coaches), and [[freight car|freight carrying vehicles]] (or goods wagons). The fixed components include the [[rail track]]s (with their supporting structures) and ancillary buildings.
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{{toc}}
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[[Image:BNSF 5350 20040808 Prairie du Chien WI.jpg|thumb|right|250px|[[BNSF Railway]] freight service in the United States.]]
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[[Image:Eastbound over SCB.jpg|thumb|200px|A long freight train crosses the Stoney Creek viaduct on the Canadian Pacific Railway in Southern [[British Columbia]].]]
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Rail transport is considered one of the safest forms of travel. Nonetheless, there are various possibilities for accidents and breakdowns to occur. Trains are heavy, unable to deviate from the track, and require a great distance to stop. Accidents vary from [[derailment]]s to [[head-on collision]]s with other trains or collisions with road vehicles at [[level crossing]]s.
  
Railway [[rolling stock]], which is fitted with metal wheels, moves with low frictional resistance when compared to road vehicles. On the other hand, [[locomotive]]s and [[power car|powered cars]] normally rely on the point of contact of the wheel with the rail for traction and adhesion (the part of the transmitted axle load that makes the wheel "adhere" to the smooth rail). While this is usually sufficient under normal dry rail conditions, adhesion can be reduced or even lost through the presence of unwanted material on the rail surface, such as moisture, grease, ice, or dead leaves.
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== General background ==
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[[Image:Bombay4.jpg|thumb|250px|[[Chhatrapati Shivaji Terminus]] in [[Mumbai]], [[India]].]]
  
== General ==
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Typical rail tracks consist of two parallel [[Rail profile|rails]], normally made of [[steel]], secured to cross[[beam (structure)|beam]]s, termed ''[[railroad tie|sleepers]]'' (UK and Australian usage) or ''ties'' (North American usage). The sleepers maintain a constant distance between the two rails; a measure known as the "[[Rail gauge|gauge]]" of the track. To maintain the alignment of the track, it is either laid on a bed of [[track ballast|ballast]] or secured to a solid [[concrete]] foundation. The whole structure is referred to as the ''[[permanent way]]'' (UK and Australia) or ''[[right-of-way (transportation)|right-of-way]]'' (North America).
[[Image:Bombay4.jpg|thumb|[[Chhatrapati Shivaji Terminus]] in [[Mumbai]], [[India]]. [[Indian Railways]] carries 14 million passengers a day, making it one of the busiest railway networks in the world.<ref>[http://www.indianembassy.org/i_digest/2004/jan_31/indian_railways.htm India's poll-eve railway budget spares passengers.] www.indianembassy.org. Retrieved August 10, 2008.</ref>]]
 
Rail transport is an [[energy efficiency|energy-efficient]] <ref>[http://www.progressiverailroading.com/news/article.asp?id=16740 Railroad Fuel Efficiency Sets New Record.] American Association of Railroads. Retrieved August 10, 2008.</ref> and [[capital intensive|capital-intensive]] means of mechanised land transport and is a component of [[logistics]]. Along with various engineered components, rails constitute a large part of the permanent way. They provide smooth and hard surfaces on which the [[wheel]]s of the train can roll with a minimum of [[friction]]. As an example, a typical modern wagon can hold up to 125 [[ton]]s of freight on two four-wheel [[bogie|bogies/trucks]] (100 tons in UK). The contact area between each wheel and the rail is tiny, a strip no more than a few millimetres wide, which minimizes friction. In addition, the track distributes the weight of the train evenly, allowing significantly greater loads per [[axle]] / wheel than in [[road transport]], leading to less wear and tear on the permanent way. This can save energy compared with other forms of transportation, such as road transport, which depends on the friction between rubber tires and the road. Trains also have a small frontal area in relation to the load they are carrying, which cuts down on forward [[air resistance]] and thus energy usage, although this does not necessarily reduce the effects of side winds.  
 
  
[[Image:Stanhope Station Railway Lines.jpg|thumb|left|[[Railway tracks]] running through [[Stanhope, County Durham|Stanhope]] [[train station|railway station]] in [[North East England]], [[UK]]]]
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Railway [[rolling stock]], which is fitted with metal wheels, moves with low frictional resistance when compared to road vehicles. However, [[locomotive]]s and [[power car|powered cars]] normally rely on the point of contact of the wheel with the rail for traction and adhesion (the part of the transmitted axle load that makes the wheel "adhere" to the smooth rail). While this is usually sufficient under normal dry rail conditions, adhesion can be reduced or even lost through the presence of unwanted material on the rail surface, such as moisture, grease, ice, or dead leaves.
[[Image:Trainticket1.jpg|thumb|right|A railway ticket issued in the [[United Kingdom]]]]
 
Due to these various benefits, rail transport is a major form of [[public transport]] in many countries. In [[Asia]], for example, many millions use trains as regular transport in [[India]], [[China]], [[South Korea]] and [[Japan]]. It is also widespread in [[Europe]]an countries. By comparison, intercity rail transport in the [[United States]] is relatively scarce outside the [[Northeast Corridor]], although a number of major U.S. cities have  heavily-used, local rail-based passenger transport systems or [[light rail]] or [[commuter rail]] operations.<ref name="APTA stats">[http://www.apta.com/research/stats/ridership/ Public Transportation Ridership Statistics.] American Public Transportation Association. Retrieved August 10, 2008.</ref>
 
  
The vehicles travelling on the rails, collectively known as ''rolling stock'', are arranged in a linked series of vehicles called a [[train]], which can include a [[locomotive]] if the vehicles are not individually powered. A locomotive (or "engine") is a powered vehicle used to haul a train of unpowered vehicles. In the USA, individual unpowered vehicles are known generically as ''[[Railroad car|cars]]''. These may be passenger carrying or used for freight purposes. For passenger-carrying vehicles, the term ''[[coach (rail)|carriage or coach]]'' is used, while a freight-carrying vehicle is known as a ''freight car'' in the United States and a ''wagon'' or ''truck'' in Great Britain. An individually-powered passenger vehicle is known as a ''railcar'' or a ''power car''; when one or more as these are coupled to one or more unpowered ''trailer cars'' as an inseparable unit, this is called a ''railcar set'' or ''[[multiple unit]]''.
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Along with various engineered components, rails constitute a large part of the permanent way. They provide smooth and hard surfaces on which the [[wheel]]s of the train can roll with a minimum of [[friction]]. For example, a typical modern wagon can hold up to 125 [[ton]]s of freight on two four-wheel [[bogie|bogies/trucks]] (100 tons in UK). The contact area between each wheel and the rail is tiny, a strip no more than a few millimeters wide, which minimizes friction. In addition, the track distributes the weight of the train evenly, allowing significantly greater loads per [[axle]] / wheel than in [[road transport]], leading to less wear and tear on the permanent way. This can save energy compared with other forms of transportation, such as road transport, which depends on the friction between rubber tires and the road. Trains also have a small frontal area in relation to the load they are carrying, which cuts down on forward [[air resistance]] and thus energy usage, although this does not necessarily reduce the effects of side winds.  
  
== History ==
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[[Image:Stanhope Station Railway Lines.jpg|thumb|right|250px|[[Railway tracks]] running through [[Stanhope, County Durham|Stanhope]] [[train station|railway station]] in [[North East England]], [[UK]].]]
  
{{seealso|History of rail transport|Timeline of railway history|Rail profile}}
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Due to these various benefits, rail transport is a major form of [[public transport]] in many countries. In [[Asia]], for example, many millions use trains as regular transport in [[India]], [[China]], [[South Korea]] and [[Japan]]. It is also widespread in [[Europe]]an countries. By comparison, intercity rail transport in the [[United States]] is relatively scarce outside the [[Northeast Corridor]], although a number of major U.S. cities have heavily-used, local rail-based passenger transport systems or [[light rail]] or [[commuter rail]] operations.<ref name="APTA stats">[https://www.apta.com/resources/statistics/Pages/ridershipreport.aspx Ridership Report] ''American Public Transportation Association''. Retrieved August 30, 2018.</ref>
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The vehicles traveling on the rails, collectively known as ''rolling stock'', are arranged in a linked series of vehicles called a [[train]], which can include a [[locomotive]] if the vehicles are not individually powered. A locomotive (or "engine") is a powered vehicle used to haul a train of unpowered vehicles. In the USA, individual unpowered vehicles are known generically as ''[[Railroad car|cars]].'' These may be passenger carrying or used for freight purposes. For passenger-carrying vehicles, the term ''[[coach (rail)|carriage or coach]]'' is used, while a freight-carrying vehicle is known as a ''freight car'' in the United States and a ''wagon'' or ''truck'' in Great Britain. An individually-powered passenger vehicle is known as a ''railcar'' or a ''power car''; when one or more as these are coupled to one or more unpowered ''trailer cars'' as an inseparable unit, this is called a ''railcar set'' or ''[[multiple unit]].''
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== Development of rails ==
  
 
=== Stone rails ===
 
=== Stone rails ===
[[Image:050715 067 uk dev hay.jpg|right|thumb|Trackwork including a point on the [[Haytor Granite Tramway]]]]
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[[Image:050715 067 uk dev hay.jpg|right|thumb|250px|Trackwork including a point on the [[Haytor Granite Tramway]].]]
The earliest evidence of a railway found thus far was the {{convert|6|km|1|adj=on}} [[Diolkos]] [[wagonway]], which transported boats across the [[Corinth]] [[isthmus]] in [[Greece]] during the 6th century B.C.E. Trucks pushed by [[slaves]] ran in grooves in [[limestone]], which provided the track element, preventing the wagons from leaving the intended route. The Diolkos ran for over 1300&nbsp;years, until 900 C.E. {{Fact|date=June 2008}}  The first horse-drawn wagonways also appeared in [[ancient Greece]], with others to be found on [[Malta]] and various parts of the [[Roman Empire]], using cut-stone tracks. An example of stone track still exists on [[Dartmoor]], England, where the [[Haytor Granite Tramway]] was built in 1820 using grooved granite blocks.
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The earliest evidence of a railway found thus far was the {{convert|6|km|1|adj=on}} [[Diolkos]] [[wagonway]], which transported boats across the [[Corinth]] [[isthmus]] in [[Greece]] during the sixth century B.C.E. Trucks pushed by [[slavery|slaves]] ran in grooves in [[limestone]], which provided the track element, preventing the wagons from leaving the intended route. The Diolkos ran for over 1300&nbsp;years, until 900 C.E. The first horse-drawn wagon ways also appeared in [[ancient Greece]], with others to be found on [[Malta]] and various parts of the [[Roman Empire]], using cut-stone tracks. An example of stone track still exists on [[Dartmoor]], England, where the [[Haytor Granite Tramway]] was built in 1820 using grooved granite blocks.
  
 
=== Wooden rails ===
 
=== Wooden rails ===
Railways began reappearing in [[Europe]] after the [[Dark Ages]] following the collapse of the Roman Empire. The earliest known record of a railway in Europe from this period is a stained-glass window in the [[Freiburg Minster|Minster of Freiburg im Breisgau]] dating from around 1350.<ref name=GrandExperiment>Hylton, Stuart. 2007. ''The Grand Experiment: The Birth of the Railway Age 1820-1845.'' Hersham, UK: Ian Allan Publishing. ISBN 9780711031722.</ref> By 1550, [[narrow gauge railways]] operating with wooden rails were common in mines in Europe.<ref>Georgius Agricola, Herbert Clark Hoover, Lou Henry Hoover trans. 1912. ''De re metallica.'' London, UK: The Mining Magazine.</ref> The first railways in [[Great Britain]] (also known as [[wagonways]]) were constructed in the early 17th century, mainly for transporting [[coal]] from mines to [[canal]] [[wharf]]s where it could be transferred to a [[boat]] for onward shipment. The earliest recorded examples are the [[Wollaton Wagonway]] in [[Nottinghamshire]] and the [[Bourtreehill]] - [[Broomlands]] Wagonway in [[Irvine, Ayrshire]]. Other examples can be found in [[Broseley]] in [[Shropshire]], where wooden rails and [[flange]]d [[wheel]]s were utilised, as on a modern railway. However, the rails were prone to wear out under the pressure, and had to be replaced regularly.
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Railways began reappearing in [[Europe]] after the [[Dark Ages]] following the collapse of the Roman Empire. The earliest known record of a railway in Europe from this period is a stained-glass window in the [[Freiburg Minster|Minster of Freiburg im Breisgau]] dating from around 1350.<ref name=GrandExperiment>Stuart Hylton, ''The Grand Experiment: The Birth of the Railway Age 1820-1845'' (Hersham, UK: Ian Allan Publishing, 2007, ISBN 978-0711031722).</ref> By 1550, [[narrow gauge railways]] operating with wooden rails were common in mines in Europe.<ref>Georgius Agricola, Herbert Clark Hoover, Lou Henry Hoover (trans.), "De re metallica." London, UK: ''The Mining Magazine'', 1912.</ref> The first railways in [[Great Britain]] (also known as [[wagonways]]) were constructed in the early seventeenth century, mainly for transporting [[coal]] from mines to [[canal]] [[wharf]]s where it could be transferred to a [[boat]] for onward shipment. The earliest recorded examples are the [[Wollaton Wagonway]] in [[Nottinghamshire]] and the [[Bourtreehill]] - [[Broomlands]] Wagonway in [[Irvine, Ayrshire]]. Other examples can be found in [[Broseley]] in [[Shropshire]], where wooden rails and [[flange]]d [[wheel]]s were utilized, as on a modern railway. However, the rails were prone to wear out under the pressure, and had to be replaced regularly.
  
=== Iron plate rail ===
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=== Iron plate rails ===
In 1768, the [[Coalbrookdale]] Iron Works laid [[cast iron]] plates on top of the wooden rails, providing a more durable load-bearing surface. These were later used by [[Benjamin Outram]] at his foundry in [[Ripley]], [[Derbyshire]], the first time standardised components were produced. It was these that led to the name "platelayer" for workers on the permanent way. The advantage was that a considerable variation in wheel spacing (gauge) could be accommodated. However, wheels would bind against the upright part of the plate, and mud and stones would accumulate. On the [[Little Eaton Gangway]] in 1799, where Outram used [[passing loop]]s on the single track, moveable plates were provided, called "pointers," which became shortened to "points".<ref>Vaughan, A. 1997. ''Railwaymen, Politics and Money.'' London, UK: John Murray. ISBN 9780719551505.</ref>
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In 1768, the [[Coalbrookdale]] Iron Works laid [[cast iron]] plates on top of the wooden rails, providing a more durable load-bearing surface. These were later used by [[Benjamin Outram]] at his foundry in [[Ripley]], [[Derbyshire]], the first time standardized components were produced. It was these that led to the name "platelayer" for workers on the permanent way. The advantage was that a considerable variation in wheel spacing (gauge) could be accommodated. However, wheels would bind against the upright part of the plate, and mud and stones would accumulate. On the [[Little Eaton Gangway]] in 1799, where Outram used [[passing loop]]s on the single track, moveable plates were provided, called "pointers," which became shortened to "points".<ref>A. Vaughan, ''Railwaymen, Politics and Money'' (London, UK: John Murray, 1997, ISBN 978-0719551505).</ref>
  
=== Edge rail ===
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=== Edge rails ===
 
[[Image:Chpr rail.jpg|thumb|300px|Lengths of "fishbelly" rail on stone support blocks]]
 
[[Image:Chpr rail.jpg|thumb|300px|Lengths of "fishbelly" rail on stone support blocks]]
From the late 18th century, iron "edge rails" began to appear. The British [[civil engineer]] [[William Jessop]] designed smooth iron [[wagonway#Edgeway, edge rails|edge rails]], which were used in conjunction with flanged iron wheels, introducing them on a route between [[Loughborough]] and [[Nanpantan]], [[Leicestershire]], as an adjunct to the [[Charnwood Forest Canal]], in 1793-4<ref name="Guiness Book of Rail Facts & Feats">Marshall, John. 1979. ''The Guiness Book of Rail Facts & Feats.'' Enfield, UK: Guinness Superlatives. ISBN 0900424567.</ref>. In 1803, Jessop opened the [[Surrey Iron Railway]] in south [[London]], arguably the world's first horse-drawn public railway.<ref>[http://www.stephensonloco.org.uk/early_railways.htm Surrey Iron Railway 200th - 26th July 2003.] Stephenson Locomotive Society. Retrieved August 10, 2008.</ref> Being of [[cast iron]] these rails were short, around three feet long, of a "fish-bellied" design. They had a foot at each end by means of which they were fastened to stone blocks in the ground.
 
  
=== Wrought iron and steel ===
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From the late eighteenth century, iron "edge rails" began to appear. The British [[civil engineer]] [[William Jessop]] designed smooth iron [[wagonway#Edgeway, edge rails|edge rails]], which were used in conjunction with flanged iron wheels, introducing them on a route between [[Loughborough]] and [[Nanpantan]], [[Leicestershire]], as an adjunct to the [[Charnwood Forest Canal]], in 1793-1794.<ref name="Guiness Book of Rail Facts & Feats">John Marshall, ''The Guinness Book of Rail Facts & Feats'' (Enfield, UK: Guinness Superlatives, 1979, ISBN 0900424567).</ref> In 1803, Jessop opened the [[Surrey Iron Railway]] in south [[London]], arguably the world's first horse-drawn public railway.<ref>[http://www.stephensonloco.org.uk/early_railways.htm The Surrey Iron Railway - 1803] ''Stephenson Locomotive Society''. Retrieved August 30, 2018.</ref> Being of [[cast iron]] these rails were short, around three feet long, of a "fish-bellied" design. They had a foot at each end by means of which they were fastened to stone blocks in the ground.
Cast iron is a brittle material and the short lengths meant that they soon became uneven. However, developments in the process of [[hot rolling]] iron meant that longer length rails could be produced. In 1805, the first [[wrought iron]] rails were produced at [[Bedlington Ironworks]] near [[Durham]]. The first steel rails were produced by [[Robert Forester Mushet]] and laid at [[Derby Midland railway station|Derby station]] in 1857<ref name="Guiness Book of Rail Facts & Feats"/>. Modern railways still use steel rails, but they are typically welded together to form lengths of ''[[continuous welded rail]]'' which removes the additional wear and tear on rolling stock caused by the tiny differences in rail surface height at the joint between adjacent rail sections.
 
  
==Motive power==
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=== Wrought iron and steel rails ===
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Cast [[iron]] is a brittle material and the short lengths meant that they soon became uneven. However, developments in the process of [[hot rolling]] iron meant that longer length rails could be produced. In 1805, the first [[wrought iron]] rails were produced at [[Bedlington Ironworks]] near [[Durham]]. The first steel rails were produced by [[Robert Forester Mushet]] and laid at [[Derby Midland railway station|Derby station]] in 1857,<ref name="Guiness Book of Rail Facts & Feats"/> Modern railways still use steel rails, but they are typically welded together to form lengths of ''[[continuous welded rail]]'' which removes the additional wear and tear on rolling stock caused by the tiny differences in rail surface height at the joint between adjacent rail sections.
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== Development of motive power ==
 
=== Steam locomotives ===
 
=== Steam locomotives ===
[[Image:Blucher engine.jpg|thumb|''[[Blücher (locomotive)|Blücher]]'', an early railway [[locomotive]] built in 1814 by [[George Stephenson]]]]
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[[Image:Blucher engine.jpg|thumb|250px|''[[Blücher (locomotive)|Blücher]],'' an early railway [[locomotive]] built in 1814 by [[George Stephenson]].]]
The first [[steam locomotive|locomotive]] to haul a train of wagons on rails was designed by Cornish engineer [[Richard Trevithick]], and was demonstrated in 1804 on a [[plateway]] at [[Merthyr Tydfil]], [[South Wales]].<ref name=Cannon>Chartres, J., Richard Trevithick, in Cannon, John ed. 1997. ''Oxford Companion to British History.'' Oxford, UK: Oxford University Press. ISBN 9780198661764. page 932.</ref> Although the locomotive successfully hauled the train, the rail design was not a success, partly because its weight broke a number of the brittle cast-iron plates. Despite this setback, another area of South Wales pioneered rail operations, when, in 1806, a horse-drawn railway was built between [[Swansea]] and [[Mumbles]]: the Swansea-Mumbles railway started carrying fare-paying passengers in 1807 – the first in the world to do so.<ref>[http://www.bbc.co.uk/wales/southwest/sites/swansea/pages/mumbles_trainanniv.shtml Early Days of Mumbles Railway.] [[BBC News]]. Retrieved August 10, 2008.</ref>
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The first [[steam locomotive|locomotive]] to haul a train of wagons on rails was designed by Cornish engineer [[Richard Trevithick]], and was demonstrated in 1804 on a [[plateway]] at [[Merthyr Tydfil]], [[South Wales]].<ref name=Cannon>J. Chartres, Richard Trevithick, in John Cannon, (ed.) ''Oxford Companion to British History'' (Oxford, UK: Oxford University Press, 1997, ISBN 978-0198661764), 932.</ref> Although the locomotive successfully hauled the train, the rail design was not a success, partly because its weight broke a number of the brittle cast-iron plates. Despite this setback, another area of South Wales pioneered rail operations, when, in 1806, a horse-drawn railway was built between [[Swansea]] and [[Mumbles]]: the Swansea-Mumbles railway started carrying fare-paying passengers in 1807 – the first in the world to do so.<ref>[https://mumblesrailway.wordpress.com/the-railway/a-brief-history-of-the-railway-2/ A Brief History Of The Railway] ''The Swansea & Mumbles Railway''. Retrieved August 30, 2018.</ref>
  
In 1811, [[John Blenkinsop]] designed the first successful and practical railway locomotive.<ref>[http://www.britannica.com/eb/article-9001800 John Blenkinsop.] Encyclopedia Brittanica. Retrieved August 10, 2008.</ref> He patented a system of moving coals by a [[rack railway]] worked by a steam locomotive (patent no. 3431), and a line was built connecting the Middleton Colliery to [[Leeds]]. The locomotive ''([[The Salamanca]])'' was built in 1812 by [[Matthew Murray]] of Fenton, Murray and Wood.<ref>Ellis, Hamilton. 1968. ''The Pictorial Encyclopedia of Railways.'' London, UK: The Hamlyn Publishing Group. page 20.</ref> The [[Middleton Railway]] was the first railway to successfully use steam locomotives on a commercial basis. It was also the first railway in Great Britain to be built under the terms laid out in an Act of Parliament. Blenkinsop's engine had double-acting cylinders and, unlike the Trevithick pattern, no flywheel. Due to previous experience with broken rails, the locomotive was made very light and this brought concerns about insufficient adhesion, so instead of driving the wheels directly, the cylinders drove a cogwheel through spur gears, the cogwheel providing traction by engaging with a rack cast into the side of the rail.
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In 1811, [[John Blenkinsop]] designed the first successful and practical railway locomotive. He patented a system of moving coals by a [[rack railway]] worked by a steam locomotive (patent no. 3431), and a line was built connecting the Middleton Colliery to [[Leeds]]. The locomotive ''([[The Salamanca]])'' was built in 1812 by [[Matthew Murray]] of Fenton, Murray and Wood.<ref>Hamilton Ellis, ''The Pictorial Encyclopedia of Railways'' (London, UK: The Hamlyn Publishing Group, 1968), 20.</ref> The [[Middleton Railway]] was the first railway to successfully use steam locomotives on a commercial basis. It was also the first railway in Great Britain to be built under the terms laid out in an Act of Parliament. Blenkinsop's engine had double-acting cylinders and, unlike the Trevithick pattern, no flywheel. Due to previous experience with broken rails, the locomotive was made very light and this brought concerns about insufficient adhesion, so instead of driving the wheels directly, the cylinders drove a cogwheel through spur gears, the cogwheel providing traction by engaging with a rack cast into the side of the rail.
  
[[Image:William Henry Jackson-Lahore railway station.jpg|thumb|right| Magic lantern image of [[Lahore Railway Station]], [[Lahore]] circa 1895]]
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[[Image:William Henry Jackson-Lahore railway station.jpg|thumb|right|250px| Magic lantern image of [[Lahore Railway Station]], [[Lahore]] circa 1895.]]
[[Image:Railwayneteurope1896.JPG|thumb|right|Density of the railway net in Europe 1896]]
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[[Image:Railwayneteurope1896.JPG|thumb|right|250px|Density of the European railway net in 1896.]]
In [[Scotland]], the Kilmarnock and Troon Railway was the first railway constructed, and was  authorised by [[Act of Parliament]] in 1808. The civil engineer leading the project was [[William Jessop]], and its 1811 construction meant that it was the first railway in Scotland to use a [[steam locomotive]], while it was the only line in Scotland for 14&nbsp;years. Its representation appeared in the [[Coat of Arms]] of the [[Burgh]] of [[Troon]]. The line was intended to carry [[coal]] for the [[William Bentinck, 4th Duke of Portland|Duke of Portland]]; and ran services between [[Kilmarnock]] and [[Troon (Harbour) railway station|Troon Harbour]]. The line began life as a 9.5 mile (16&nbsp;km), double track 4&nbsp;ft 0 in (1,219&nbsp;mm) gauge, horse-drawn waggonway. It was built using cast iron plate rails with an inner flange. A [[George Stephenson]]-built locomotive, his second one from [[Killingworth]] [[Colliery]], was tried on the main line in 1817, but the weight of the engine broke the cast iron plate rails. It worked better when wooden rails were used, and the locomotive remained in use until 1848.
 
  
The [[Stockton and Darlington Railway]] opened in northern [[England]] in 1825<ref>[http://homepage.ntlworld.com/johnmoore/1825/sept_27.htm September 27th 1825 - Opening of the Stockton and Darlington Railway.] The Stockton and Darlington Railway. Retrieved August 10, 2008.</ref> to be followed five years later by the [[Liverpool and Manchester Railway]],<ref>[http://www.spartacus.schoolnet.co.uk/RAliverpool.htm Liverpool and Manchester.] spartacus.schoolnet. Retrieved August 10, 2008.</ref> considered to be the world's first "Inter City" line. The [[rail gauge]] (the distance between the two rails of the track) was used for the early wagonways, and had been adopted for the Stockton and Darlington Railway. The {{RailGauge|ussg}} width became known as the international "[[standard gauge]]," used by about 60 percent of the world's railways. The Liverpool and Manchester Railway, on the other hand, proved the viability of rail transport when, after organising the [[Rainhill Trials]] of 1829, [[Stephenson's Rocket|Stephenson's ''Rocket'']] successfully hauled a load of 13 tons at an average speed of 12 miles per hour. The company took the step of working its trains from its opening entirely by steam traction. Railways then soon spread throughout the United Kingdom and the world, and became the dominant means of land transport for nearly a century, until the invention of [[aircraft]] and [[automobile]]s, which prompted a gradual decline in railways.
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In [[Scotland]], the Kilmarnock and Troon Railway was the first railway constructed, and was authorized by [[Act of Parliament]] in 1808. The civil engineer leading the project was [[William Jessop]], and its 1811 construction meant that it was the first railway in Scotland to use a [[steam locomotive]], while it was the only line in Scotland for 14&nbsp;years. Its representation appeared in the [[Coat of Arms]] of the [[Burgh]] of [[Troon]]. The line was intended to carry [[coal]] for the [[William Bentinck, 4th Duke of Portland|Duke of Portland]]; and ran services between [[Kilmarnock]] and [[Troon (Harbour) railway station|Troon Harbour]]. The line began life as a 9.5 mile (16&nbsp;km), double track 4&nbsp;ft 0 in (1,219&nbsp;mm) gauge, horse-drawn wagonway. It was built using cast iron plate rails with an inner flange. A [[George Stephenson]]-built locomotive, his second one from [[Killingworth]] [[Colliery]], was tried on the main line in 1817, but the weight of the engine broke the cast iron plate rails. It worked better when wooden rails were used, and the locomotive remained in use until 1848.
  
The first railroad in the [[United States]] may have been a [[gravity railroad]] in [[Lewiston, New York]] in 1764. The 1810 [[Leiper Railroad]] in [[Pennsylvania]] was intended as the first permanent railroad,<ref>Morlok, Edward K. 2005. [http://www.seas.upenn.edu/~morlok/morlokpage/transp_data.html First permanent railroad in the U.S. and its connection to the University of Pennsylvania.] University of Pennsylvania. Retrieved August 10, 2008.</ref> and the 1826 [[Granite Railway]] in [[Massachusetts]] was the first commercial railroad to evolve through continuous operations into a [[common carrier]]. The [[Baltimore and Ohio]], opened in 1830, was the first to evolve into a major system. In 1867, the first elevated railroad was built in New York. In 1869, the symbolically important [[First Transcontinental Railroad|transcontinental railroad]] was completed in the United States with the driving of a golden spike at [[Promontory, Utah]].<ref>Ambrose, Stephen E. 2000. ''Nothing Like It In The World; The men who built the Transcontinental Railroad 1863-1869.'' New York, NY: Simon & Schuster. ISBN 0684846098.</ref> The development of the railroad in the United States helped reduce transportation time and cost, which allowed migration towards the west. Railroads increased the accessibility of goods to consumers, thus allowing individuals and capital to flow westward. Railroads created national markets characterized by the 'law of one price' by lowering difference in price charged for commodity between suppliers and demanders. Railroads increased [[social savings]], and were the largest contributors of any innovation before 1900.
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The [[Stockton and Darlington Railway]] opened in northern [[England]] in 1825<ref>[http://spartacus-educational.com/RAstockton.htm Stockton and Darlington Railway] ''Spartacus Educational''. Retrieved August 30, 2018.</ref> to be followed five years later by the [[Liverpool and Manchester Railway]],<ref>[http://spartacus-educational.com/RAliverpool.htm Liverpool and Manchester Railway] ''Spartacus Educational''. Retrieved August 30, 2018.</ref> considered to be the world's first "Inter City" line. The [[rail gauge]] (the distance between the two rails of the track) was used for the early wagonways, and had been adopted for the Stockton and Darlington Railway. The {{RailGauge|ussg}} width became known as the international "[[standard gauge]]," used by about 60 percent of the world's railways. The Liverpool and Manchester Railway, on the other hand, proved the viability of rail transport when, after organizing the [[Rainhill Trials]] of 1829, [[Stephenson's Rocket|Stephenson's ''Rocket'']] successfully hauled a load of 13 tons at an average speed of 12 miles per hour. The company took the step of working its trains from its opening entirely by steam traction. Railways then soon spread throughout the United Kingdom and the world, and became the dominant means of land transport for nearly a century, until the invention of [[aircraft]] and [[automobile]]s, which prompted a gradual decline in railways.
  
The South American experience regarding railways was first achieved in 1854, when a line was laid between the Chilean towns of Caldera and Copiapo. However, the first concerted trans-Andine attempt between Argentina and Chile did not occur until the 1870s, due to the financial risks involved in such a project. It was not until 1887 that the Argentinians began to construct their part of the enterprise, with the Chileans beginning construction in 1889, though by 1893, work had ceased due to financial constraints. In 1896, the [[Transandine Railway]] Company was created in London to purchase the existing railways and construct a continuous line between Argentina and Chile that would improve transport and communication links in South America. This was finally completed in 1908, when the Argentine and Chilean stretches of track were joined.
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The first railroad in the [[United States]] may have been a [[gravity railroad]] in [[Lewiston, New York]] in 1764. The 1809 [[Leiper Railroad]] in [[Pennsylvania]] was intended as the first permanent railroad,<ref>Greg Harrison, [http://www.abandonedrails.com/Leiper_Railroad The Leiper Railroad] ''AbandonedRails''. Retrieved August 30, 2018.</ref> and the 1826 [[Granite Railway]] in [[Massachusetts]] was the first commercial railroad to evolve through continuous operations into a [[common carrier]]. The [[Baltimore and Ohio]], opened in 1830, was the first to evolve into a major system. In 1867, the first elevated railroad was built in New York. In 1869, the symbolically important [[First Transcontinental Railroad|transcontinental railroad]] was completed in the United States with the driving of a golden spike at [[Promontory, Utah]].<ref>Stephen E. Ambrose, ''Nothing Like It In The World; The men who built the Transcontinental Railroad 1863-1869'' (New York, NY: Simon & Schuster, 2000, ISBN 0684846098).</ref> The development of the railroad in the United States helped reduce transportation time and cost, which allowed migration towards the west. Railroads increased the accessibility of goods to consumers, thus allowing individuals and capital to flow westward. Railroads created national markets characterized by the 'law of one price' by lowering difference in price charged for commodity between suppliers and demanders. Railroads increased [[social savings]], and were the largest contributors of any innovation before 1900.
  
=== Dieselisation ===
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The [[South America]]n experience regarding railways was first achieved in 1854, when a line was laid between the [[Chile|Chilean]] towns of Caldera and Copiapo. However, the first concerted [[Andes|trans-Andine]] attempt between [[Argentina]] and Chile did not occur until the 1870s, due to the financial risks involved in such a project. It was not until 1887 that the Argentineans began to construct their part of the enterprise, with the Chileans beginning construction in 1889, though by 1893, work had ceased due to financial constraints. In 1896, the [[Transandine Railway]] Company was created in [[London]] to purchase the existing railways and construct a continuous line between Argentina and Chile that would improve transport and communication links in South America. This was finally completed in 1908, when the Argentine and Chilean stretches of track were joined.
[[Image:UP Diesel.jpg|thumb|right|Two [[EMD SD70M|SD70M]] diesel locomotives of the Union Pacific refuelling at [[Dunsmuir, California]]]]
 
  
{{main|Dieselisation}}
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=== Dieselization ===
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[[Image:UP Diesel.jpg|thumb|right|250px|Two [[EMD SD70M|SD70M]] [[diesel]] locomotives of the Union Pacific refueling at [[Dunsmuir, California]].]]
  
Dieselisation was the replacement of the [[steam locomotive]] with the [[diesel-electric]] locomotive (often referred to as a "[[diesel locomotive]]"), a process which began in the 1930s and is now substantially complete worldwide.  
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Dieselization was the replacement of the [[steam locomotive]] with the [[diesel-electric]] locomotive (often referred to as a "[[diesel locomotive]]"), a process which began in the 1930s and is now substantially complete worldwide.  
  
Dieselisation took place largely because of the reduction in operating costs it allowed. Steam locomotives require large pools of labour to clean, load, maintain and run. They also require extensive service, coaling and watering facilities. Diesel locomotives require significantly less time and labour to operate and maintain.
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Dieselization took place largely because of the reduction in operating costs it allowed. Steam locomotives require large pools of labor to clean, load, maintain and run. They also require extensive service, [[coal]]ing and watering facilities. Diesel locomotives require significantly less time and labor to operate and maintain.
  
After [[World War II]], dramatically increased labour costs in the Western World made steam an increasingly costly form of motive power. At the same time, the war had forced improvements in internal combustion engine technology that made diesel locomotives cheaper and more powerful. The post war world also re-aligned the business and financial markets, as did world geo-politics as in the [[Cold War (1947-1953)]].
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After [[World War II]], dramatically increased labor costs in the Western World made [[steam]] an increasingly costly form of motive power. At the same time, the war had forced improvements in [[internal combustion engine]] technology that made diesel locomotives cheaper and more powerful. The post war world also re-aligned the business and financial markets, as did world geo-politics as in the [[Cold War]] (1947-1953).
  
 
===Electrification===
 
===Electrification===
{{main|Railway electrification system}}
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[[Image:Post245.jpg|thumb|250px|Postcard showing electric streetcars in [[Richmond, Virginia]], where [[Frank J. Sprague]] successfully demonstrated his new system on the hills in 1888.]]
 
 
[[Image:Post245.jpg|thumb|Postcard showing electric streetcars in [[Richmond, Virginia]], where [[Frank J. Sprague]] successfully demonstrated his new system on the hills in 1888]]
 
[[Image:Mountfujijapan.jpg|thumb|Japanese [[Shinkansen]] train passing [[Mount Fuji]]]]
 
  
[[Robert Davidson]] started to experiment with an electrical railway car in [[Scotland]] in 1838. By 1839 he had completed and presented a 4.8 m long carriage that weighed six tons, including batteries. It reached a maximum speed of 6.4 kilometres per hour.
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[[Robert Davidson]] started to [[experiment]] with an electrical railway car in [[Scotland]] in 1838. By 1839 he had completed and presented a 4.8 m long carriage that weighed six tons, including batteries. It reached a maximum speed of 6.4 kilometers per hour.
  
 
[[Magnus Volk]] opened his electric railway in [[Brighton]] in 1883.
 
[[Magnus Volk]] opened his electric railway in [[Brighton]] in 1883.
  
The use of [[Overhead line equipment|overhead wires]] conducting electricity, invented by [[Granville Woods|Granville T. Woods]] in 1888, among several other improvements, led to the development of electrified railways, the first of which in the United States was operated at [[Coney Island]] in 1892. [[Richmond, Virginia]] had the first successful electrically-powered [[tram|trolley]] system in the United States. Designed by electric power pioneer [[Frank J. Sprague]], the trolley system opened its first line in January, 1888. Richmond's hills, long a transportation obstacle, were considered an ideal proving ground. The new technology soon replaced horse-powered [[streetcars]].
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The use of [[Overhead line equipment|overhead wires]] conducting [[electricity]], invented by [[Granville Woods|Granville T. Woods]] in 1888, among several other improvements, led to the development of electrified railways, the first of which in the United States was operated at [[Coney Island]] in 1892. [[Richmond, Virginia]] had the first successful electrically-powered [[tram|trolley]] system in the United States. Designed by electric power pioneer [[Frank J. Sprague]], the trolley system opened its first line in January, 1888. Richmond's hills, long a transportation obstacle, were considered an ideal proving ground. The new technology soon replaced [[horse]]-powered [[streetcars]].
  
 
[[Sweden]] got the perhaps first fully electrified developed railway that efficiently transported commuters as well as goods, in 1895. At the time it ran from close to central [[Stockholm]] to Rimbo, located in the countryside [[Roslagen]]. It is still in use to commuters today but runs only about a third of its biggest extent, much due to it not using the [[standard gauge]] but 3ft (891mm).
 
[[Sweden]] got the perhaps first fully electrified developed railway that efficiently transported commuters as well as goods, in 1895. At the time it ran from close to central [[Stockholm]] to Rimbo, located in the countryside [[Roslagen]]. It is still in use to commuters today but runs only about a third of its biggest extent, much due to it not using the [[standard gauge]] but 3ft (891mm).
  
In the [[USSR]] the phenomenon of [[children's railway]]s was developed in the 1930s (the world's first one was opened on 24 July 1935). Fully operated by children, they were extracurricular educational institutions, where teenagers learned railway professions. A lot of them are functioning in post-Soviet states and Eastern European countries.
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In the [[USSR]], [[children's railway]]s were developed in the 1930s. (The world's first one was opened on July 24, 1935.) Fully operated by children, they were extracurricular educational institutions where teenagers learned railway professions. Many of them are functioning in post-Soviet states and Eastern European countries.
  
Many countries since the 1960s have adopted [[high-speed rail]]ways. On 3 April 2007, the [[France|French]] [[TGV]] set a new [[Land speed record for railed vehicles|train speed record]]. The train, with a modified engine and wheels, reached 574.8&nbsp;[[kilometres per hour|km/h]] (357.2&nbsp;[[miles per hour|mph]]). The record attempt took place on the new [[LGV Est]] line between [[Paris]] and [[Strasbourg]] using a specially equipped TGV Duplex train. The [[overhead lines]] had also been modified for the attempt to carry 31,000&nbsp;[[volt|V]] rather than the line's normal 25,000&nbsp;V.<ref>Fouquet, Helene and Gregory Viscousi. 2007. [http://www.bloomberg.com/apps/news?pid=20601085&sid=aW23Aw20niIo&refer=europe French TGV Sets Record, Reaching 357 Miles an Hour (Update2).] Bloomberg. Retrieved August 10, 2008.</ref> On 24 August 2005, the [[Qingzang railway]] became the highest railway line in the world, when track was laid through the [[Tanggula Mountain Pass]] at {{m to ft|5072}} above sea level in the [[Tanggula Mountains]], [[Tibet]].<ref>[http://news.xinhuanet.com/english/2005-08/24/content_3397297.htm New height of world's railway born in Tibet.] Xinhua. Retrieved August 10, 2008.</ref>
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Many countries since the 1960s have adopted [[high-speed rail]]ways. On April 3, 2007, the [[France|French]] [[TGV]] set a new [[Land speed record for railed vehicles|train speed record]]. The train, with a modified engine and wheels, reached 574.8&nbsp;[[kilometers per hour|km/h]] (357.2&nbsp;[[miles per hour|mph]]). The record attempt took place on the new [[LGV Est]] line between [[Paris]] and [[Strasbourg]] using a specially equipped TGV Duplex train. The [[overhead lines]] had also been modified for the attempt to carry 31,000&nbsp;[[volt|V]] rather than the line's normal 25,000&nbsp;V.<ref>Ariane Bernard, [https://www.nytimes.com/2007/04/03/world/europe/03iht-train.4.5130569.html French TGV Sets Record, Reaching 357 Miles an Hour] ''The New York Times'', April 3, 2007. Retrieved August 30, 2018.</ref> On August 24, 2005, the [[Qingzang railway]] became the highest railway line in the world, when track was laid through the [[Tanggula Mountain Pass]] at {{m to ft|5072}} above sea level in the [[Tanggula Mountains]], [[Tibet]].<ref>[https://www.tibettravel.org/qinghai-tibet-railway/ Qinghai Tibet Railway] ''Tibet Vista''. Retrieved August 30, 2018.</ref>
  
 
== Operations ==
 
== Operations ==
 
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[[Image:British Rail Class 143 trains.jpg|thumb|right|250px|Two [[British Rail Class 143]] [[Diesel multiple unit|DMUs]] at Cardiff Queen Street station in the United Kingdom.]]
{{main|Rail transport operations}}
 
 
 
A railway can be broken down into two major components. Firstly, there are the items which "move," also referred to as the [[rolling stock]], which include [[locomotives]], [[Passenger car (rail)|passenger carrying vehicles]] (or coaches), [[freight car|freight carrying vehicles]] (or goods wagons). Secondly are the  "fixed" components, usually referred to as the railway's [[infrastructure]], including the [[permanent way]] and ancillary buildings that are necessary for a railway to function.
 
  
 
=== Rolling stock ===
 
=== Rolling stock ===
[[Image:British Rail Class 143 trains.jpg|thumb|right|Two [[British Rail Class 143]] [[Diesel multiple unit|DMUs]] at Cardiff Queen Street station in the United Kingdom]]
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A [[locomotive]] is the [[vehicle]] that provides the motive [[power]] for a [[train]]. A locomotive has no payload capacity of its own, and its sole purpose is to move the train along the tracks. Traditionally, locomotives pull trains from the front.
{{main|Locomotive|Railroad car}}
 
A [[locomotive]] is the [[vehicle]] that provides the motive power for a [[train]]. A locomotive has no payload capacity of its own, and its sole purpose is to move the train along the tracks. Traditionally, locomotives pull trains from the front.
 
  
A [[railroad car]] is a vehicle used for the haulage of either passengers or freight. Most cars carry a "revenue" load, although "non-revenue" cars exist for the railroad's own use, such as for maintenance-of-way purposes.
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A [[railroad car]] is a vehicle used for the haulage of either passengers or freight. Most cars carry a "revenue" load, although "non-revenue" cars are run for the railroad's own use, such as for maintenance-of-way purposes.
  
=== Signalling ===
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=== Signaling ===
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[[Image:Rail-semaphore-signal-Dave-F.jpg|right|thumb|[[Great Western Railway|GWR]] semaphore-type signal.]]
  
{{main|Railway signalling}}
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Railway [[signaling]] is a system used to control railway traffic safely to prevent trains from [[collision|colliding]]. Being guided by fixed [[rail tracks|rails]], trains are uniquely susceptible to collision since they frequently operate at speeds that do not enable them to stop quickly or, in some cases, within the driver's sighting distance.
[[Image:Rail-semaphore-signal-Dave-F.jpg|right|thumb|[[Great Western Railway|GWR]] semaphore-type signal]]
 
Railway signalling is a system used to control railway traffic safely to prevent trains from [[collision|colliding]]. Being guided by fixed [[rail tracks|rails]], trains are uniquely susceptible to collision since they frequently operate at speeds that do not enable them to stop quickly or, in some cases, within the driver's sighting distance.
 
  
Most forms of train control involve movement authority being passed from those responsible for each section of a rail network (e.g., a [[signalman (rail)|signalman]] or [[stationmaster]]) to the train crew. The set of rules and the physical equipment used to accomplish this control determine what is known as the ''method of working'' (UK), ''method of operation'' (US) or ''[[safeworking]]'' (Aus.). Not all methods require the use of signals, and some systems are specific to [[single track (rail)|single track]] railways. The signalling process is traditionally carried out in a [[signal box]] or [[interlocking tower]], a small building that houses the [[lever frame]]s required for the signalman to operate switches and signal equipment. These are placed at various intervals along the route of a railway, controlling specified sections of track. More recent technological developments have made such operational doctrine superfluous, with the centralization of signalling operations to regional control rooms. This has been facilitated by the increased use of computers, allowing vast sections of track to be monitored from a single location.
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Most forms of train control involve movement authority being passed from those responsible for each section of a rail network (e.g., a [[signalman (rail)|signalman]] or [[stationmaster]]) to the train crew. The set of rules and the physical equipment used to accomplish this control determine what is known as the ''method of working'' (UK), ''method of operation'' (US) or ''[[safeworking]]'' (Aus.). Not all methods require the use of [[signal]]s, and some systems are specific to [[single track (rail)|single track]] railways. The signaling process is traditionally carried out in a [[signal box]] or [[interlocking tower]], a small building that houses the [[lever frame]]s required for the signalman to operate switches and signal equipment. These are placed at various intervals along the route of a railway, controlling specified sections of track. More recent technological developments have made such operational doctrine superfluous, with the centralization of signaling operations to regional control rooms. This has been facilitated by the increased use of computers, allowing vast sections of track to be monitored from a single location.
  
 
=== Right of way ===
 
=== Right of way ===
{{main|Right-of-way (transportation)|l1=Right-of-way}}
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Railway tracks are laid upon land owned or leased by the railway. Owing to the requirements for large radius turns and modest grades, rails will often be laid in circuitous routes. Public carrier railways are typically granted limited rights of [[eminent domain]] (UK:compulsory purchase). In many cases in the nineteenth century, railways were given additional incentives in the form of grants of public land. Route length and grade requirements can be reduced by the use of alternating earthen cut and fill, [[bridge]]s, and [[tunnel]]s, all of which can greatly increase the capital expenditures required to develop a right of way, while significantly reducing operating costs and allowing higher speeds on longer radius curves. In densely urbanized areas such as [[Manhattan]], railways are sometimes laid out in tunnels to minimize the effects on existing properties.
 
 
Railway tracks are laid upon land owned or leased by the railway. Owing to the requirements for large radius turns and modest grades, rails will often be laid in circuitous routes. Public carrier railways are typically granted limited rights of [[eminent domain]] (UK:compulsory purchase). In many cases in the 19th century, railways were given additional incentives in the form of grants of public land. Route length and grade requirements can be reduced by the use of alternating earthen cut and fill, bridges, and tunnels, all of which can greatly increase the capital expenditures required to develop a right of way, while significantly reducing operating costs and allowing higher speeds on longer radius curves. In densely urbanized areas such as [[Manhattan]], railways are sometimes laid out in tunnels to minimize the effects on existing properties (see [[condemnation]]).
 
  
 
=== Safety and railway disasters ===
 
=== Safety and railway disasters ===
[[Image:Train Wreck of 1907, Canaan, NH.jpg|thumb|Train wreck, 1907, in [[Canaan, New Hampshire]]]]
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[[Image:Train Wreck of 1907, Canaan, NH.jpg|thumb|250px|Train wreck, 1907, in Canaan, [[New Hampshire]].]]
{{main|List of rail accidents}}
 
  
Trains can travel at very high speed; however, they are heavy, are unable to deviate from the track and require a great distance to stop. Although rail transport is considered one of the safest forms of travel, there are many possibilities for accidents to take place. These can vary from the minor [[derailment]] (jumping the track), a [[head-on collision]] with another train and collision with an automobile or other vehicle at a [[level crossing|level crossing/grade crossing]]. [[Level crossing collision]]s are relatively common in the [[United States]] where there are several thousand each year killing about 500 people (the comparable figures in the [[United Kingdom]] are 30 collisions and 12 casualties). For information regarding major accidents, see [[List of rail accidents]].  
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Trains can travel at very high speeds. However, they are heavy, unable to deviate from the track, and require a great distance to stop. Although rail transport is considered one of the safest forms of travel, there are many possibilities for accidents to take place. These can vary from the minor [[derailment]] (jumping the track) to a [[head-on collision]] with another train or collision with an automobile or other vehicle at a [[level crossing|level crossing/grade crossing]].
  
The most important safety measures are [[railway signalling]] and gates at level/grade crossings. [[Train whistle]]s warn of the presence of a train, while trackside signals maintain the distances between trains. In the United Kingdom, [[vandalism]] or [[negligence]] is thought responsible for about half of rail accidents.{{Fact|date=June 2007}} Railway lines are zoned or divided into blocks guarded by combinations of block signals, operating rules, and automatic-control devices so that one train, at most, may be in a block at any time.  
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The most important safety measures are [[railway signaling]] and gates at level/grade crossings. [[Train whistle]]s warn of the presence of a train, while trackside signals maintain the distances between trains. In the United Kingdom, [[vandalism]] and [[negligence]] are thought responsible for many rail accidents. Railway lines are zoned or divided into blocks guarded by combinations of block signals, operating rules, and automatic-control devices so that one train, at most, may be in a block at any time.  
  
Compared with road travel, railways remain relatively safe. Annual death rates on roads are over 40,000 in the United States, about 3,000 in the United Kingdom and 900 in Australia, compared with 1,000 rail-related fatalities in the United States,under 20 in the UK and 10 in Australia.<ref>[http://hazmat.dot.gov/riskmgmt/riskcompare.htm A Comparison of Risk:  Accidental Deaths - United States - 1999-2003.] Office of Hazardous Materials Safety. Retrieved August 10, 2008.</ref><ref>[http://www.rail-reg.gov.uk/ Office of Rail Regulation.] UK Health & Safety Executive. Retrieved August 10, 2008.</ref> (These figures do not account for differences in passenger-miles traveled by mode; see e.g. [[Transportation safety in the United States]].)
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Compared with road travel, railways remain relatively safe.<ref>Bart Jansen, [https://www.usatoday.com/story/news/2016/04/04/trains-safer-than-cars-buses-passengers-experts-say/82613144/ Trains safer than cars, buses for passengers, experts say] ''USA Today'', April 4, 2016. Retrieved August 30, 2018.</ref>
  
 
== Trackage ==
 
== Trackage ==
[[Image:08 tory railtrack ubt.jpeg|thumb|Concrete ties (sleepers)]]
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[[Image:08 tory railtrack ubt.jpeg|250px|thumb|Concrete ties (sleepers)]]
[[Image:AlhambraTrestle.jpg|thumb|[[Trestle|Trestle bridge]]]]
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[[Image:AlhambraTrestle.jpg|thumb|250px|[[Trestle|Trestle bridge]]]]
[[Image:Rail join.jpg|thumb|right|Bolted rail connection and tie-down. Also known as a fishplate.]]
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[[Image:Rail join.jpg|thumb|right|250px|Bolted rail connection and tie-down. Also known as a fishplate.]]
  
{{main|Rail tracks}}
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As noted earlier, a typical railroad [[Rail tracks|track]] consists of two parallel [[steel]] (or, in older networks, [[iron]]) [[Rail tracks#Railway rail|rails]], generally anchored [[perpendicular]] to [[beam (structure)|beam]]s (sleepers or ties) of [[wood|timber]], [[concrete]], or steel to maintain a constant distance (gauge). The rails and perpendicular beams are usually then placed on a foundation made of concrete or compressed [[soil|earth]] and [[gravel]] in a bed of [[track ballast|ballast]] to prevent the track from [[buckling]] (bending out of its original configuration) as the ground settles over time under the weight of the [[vehicle]]s passing above.
<!--The following paragraph was shunted (!) here at the time of a major rewrite to the lead section (11 Sept 07). Certain detail facts were not retained in the lead, so the unmodified text was placed here ready for a later edit on this section, where most of it belongs. When this edit takes place, this comment may be deleted. [EdJogg]—>
 
  
A typical railway/railroad [[Rail tracks|track]] consists of two parallel [[steel]] (or in older networks, [[iron]]) [[Rail tracks#Railway rail|rails]], generally anchored [[perpendicular]] to [[beam (structure)|beam]]s, termed [[railroad tie|sleepers or ties]], of [[timber]], [[concrete]], or steel to maintain a consistent distance apart, or [[Rail gauge|gauge]]. The rails and perpendicular beams are usually then placed on a foundation made of concrete or compressed [[soil|earth]] and [[gravel]] in a bed of [[track ballast|ballast]] to prevent the track from [[buckling]] (bending out of its original configuration) as the ground settles over time under the weight of the [[vehicle]]s passing above. The vehicles traveling on the rails are arranged in a [[train]]; a series of individual powered or unpowered linked vehicles, displaying markers. These vehicles (referred to, in general, as ''[[Railroad car|cars'', ''carriages'' or ''wagons]]'') move with much less friction than do vehicles riding on rubber tires on a paved road, and the [[locomotive]] that pulls the train tends to use energy far more efficiently as a result. {{Fact|date=March 2007}}
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Trackage, consisting of the ties and rails, may be prefabricated or assembled in place. Rails are usually composed of segments welded or bolted together. The length of each segment may be comparable to that of a railcar or two, or it may be hundreds of feet long.
  
Trackage, consisting of [[Railroad tie|sleepers]]/ties and rails, may be prefabricated or assembled in place. Rails may be composed of segments welded or bolted, and may be of a length comparable to that of a railcar or two or may be many hundreds of feet long.
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The surface of the ballast is sloped around curves to reduce lateral forces. This is called superelevation or cant. This reduces the forces tending to displace the track and makes for a more comfortable ride for passengers and livestock. This is effective over a limited range of speeds, however.
  
The surface of the ballast is sloped around curves to reduce lateral forces. This is called superelevation or cant. This reduces the forces tending to displace the track and makes for a more comfortable ride for standing livestock and standing or seated passengers. This will be effective at a limited range of speeds, however.
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=== Track components ===
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The first component of a railway is the route, which is planned to provide the least resistance in terms of gradient and engineering works. As such, the track bed is heavily engineered to provide, where possible, a level surface. As such, [[Embankment (transportation)|embankment]]s are constructed to support the track and to provide a compromise in terms of the route's average elevation. With this in mind, various structures such as bridges and viaducts are constructed in an attempt to maintain the railway's elevation, and gradients are kept within manageable limits. In hilly terrain, to avoid a long detour, a [[tunnel]] may be bored through the hill.
  
=== Track components ===
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Once these engineering works needed for the route are completed, a bed of stone ([[Track ballast|ballast]]) is laid over the compacted track bed to enhance drainage around the ties and evenly distribute pressure over a wider area, locking the track-work in place. Crushed stone is firmly tamped to prevent further settling and to lock the stones. Minor water courses are channeled through pipes ([[culvert]]s) before the grade is raised.
Railways are highly complex feats of engineering, with many hours of planning and forethought required for a successful outcome. The first component of a railway is the route, which is planned to provide the least resistance in terms of gradient and engineering works. As such, the track bed is heavily engineered to provide, where possible, a level surface. As such, [[Embankment (transportation)|embankment]]s are constructed to support the track and to provide a compromise in terms of the route's average elevation. With this in mind, sundry structures such as bridges and viaducts are constructed in an attempt to maintain the railway's elevation, and gradients are kept within manageable constraints. Where such structures are not always justified, such as in hilly terrain where routes may require long detours to avoid such features, a [[cutting (transportation)|cutting]] or [[tunnel]] is dug or bored through the obstacle. <!--This needs a complete rewrite [User:John of Paris]—>  Once the sundry engineering works are completed, a bed of stone ([[Track ballast|ballast]]) is laid over the compacted track bed to enhance drainage around the ties and evenly distribute pressure over a wider area, locking the track-work in place. Crushed stone is firmly tamped to prevent further settling and to lock the stones. Minor water courses are channeled through pipes ([[culvert]]s) before the grade is raised
 
  
The base of the trackage consists of treated wood, concrete or steel "[[Railroad tie|ties]]," also known as "sleepers." These ensure the proper distance between the rails (known as "gauge"). Traditional US practice with wood sleepers is to anchor the rail structure to the road bed through the use of baseplates. These are attached to the top of the ties to provide a secure housing for the flat bottomed rails. After placement of the rail atop the plate, [[Rail spike|spikes]] are driven through holes in the plate and into the tie where they are held by friction. The top of the spike has a head that clamps the rail. As an alternative, [[Screw|lag bolts]] can be used to retain the clamps, which is preferred since screws are less likely to loosen. Traditional practice in the UK was to screw cast iron 'chairs' to wooden sleepers. These chairs loosely hold bullhead rail which is then secured by a wood or steel 'key' wedged between the side of the rail and the chair. With concrete or steel sleepers fixings are built into the sleeper to which flat bottom rail is attached with sprung steel clips.
+
The base of the trackage consists of treated wood, concrete, or steel ties. Traditional US practice with wood sleepers is to anchor the rail structure to the road bed through the use of baseplates. These are attached to the top of the ties to provide a secure housing for the flat bottomed rails. After placement of the rail atop the plate, [[Rail spike|spikes]] are driven through holes in the plate and into the tie where they are held by friction. The top of the spike has a head that clamps the rail. As an alternative, [[Screw|lag bolts]] can be used to retain the clamps, which is preferred since screws are less likely to loosen. Traditional practice in the UK was to screw cast iron 'chairs' to wooden sleepers. These chairs loosely hold bullhead rail which is then secured by a wood or steel 'key' wedged between the side of the rail and the chair. With concrete or steel sleepers, fixings are built into the sleeper to which flat bottom rail is attached with sprung steel clips.
  
 
The space between and surrounding the ties is filled with additional ballast to stabilize the rail assembly.
 
The space between and surrounding the ties is filled with additional ballast to stabilize the rail assembly.
  
 
=== Points (Turnouts or Switches) ===
 
=== Points (Turnouts or Switches) ===
[[Image:Railroad-Gyula-b.jpg|thumb|Railway turnouts]]
+
[[Image:Railroad-Gyula-b.jpg|thumb|250px|Turnouts]]
{{main|Railroad switch}}
 
  
Points (UK) or switches (US), technically known as turnouts, are the means of directing a train onto a diverging section of track, for example, a siding, a [[branch line]], or a parallel running line. Laid similar to normal track, a point typically consists of a [[Railroad switch#Frog (common crossing)|frog]] (common crossing), check rails and two switch rails. The switch rails may be moved left or right, under the control of the signalling system, to determine which path the train will follow.
+
Points (UK) or switches (US), technically known as turnouts, are the means of directing a train onto a diverging section of track, for example, a siding, a [[branch line]], or a parallel running line. Laid similar to normal track, a point typically consists of a [[Railroad switch#Frog (common crossing)|frog]] (common crossing), check rails and two switch rails. The switch rails may be moved left or right, under the control of the signaling system, to determine which path the train will follow.
  
=== Maintenance ===
+
=== Maintenance ===
{{main|Rail tracks#Track maintenance|l1=Track maintenance|Maintenance of way}}
+
Spikes in wooden ties can loosen over time, while split and rotten ties may be individually replaced with a concrete substitute. Should the rails settle due to soil subsidence, they can be lifted by specialized machinery and additional ballast tamped down to form a level bed. Periodically, ballast must be removed and replaced with clean ballast to ensure adequate drainage, especially if wooden ties are used. Culverts and other passages for water must be kept clear lest water is impounded by the trackbed, causing landslips. Where trackbeds are placed along rivers, additional protection is usually placed to prevent erosion during times of high water. [[Bridge]]s are another important component requiring inspection and maintenance.
 
 
Spikes in wooden ties can loosen over time, while split and rotten ties may be individually replaced with a concrete substitute. Should the rails settle due to soil subsidence, they can be lifted by specialized machinery and additional ballast tamped down to form a level bed. Periodically, ballast must be removed and replaced with clean ballast to ensure adequate drainage, especially if wooden ties are used. Culverts and other passages for water must be kept clear lest water is impounded by the trackbed, causing landslips. Where trackbeds are placed along rivers, additional protection is usually placed to prevent erosion during times of high water, while [[bridge]]s are another important item requiring inspection and maintenance.
 
  
 
== Terminology ==
 
== Terminology ==
 +
[[Image:Three rail tracks 350.jpg|thumb|250px|right|[[Rail tracks]].]]
  
[[Image:Three rail tracks 350.jpg|thumb|right|[[Rail tracks]]]]
+
In the [[United Kingdom]] and most other members of the [[Commonwealth of Nations]], the term ''railway'' is used in preference to the United States term, ''railroad.'' In Canada, ''railway'' and ''railroad'' are used interchangeably, although in law ''railway'' is the usual term. ''Railroad'' was used in the United Kingdom concurrently with ''railway'' until the 1850s, when ''railway'' became the established term. Several American companies have ''railway'' in their names instead of ''railroad,'' the [[BNSF Railway]] being the pre-eminent modern example.
 
 
{{main|Rail terminology}}
 
{{further|[[Usage of the terms railroad and railway]]}}
 
 
 
In the United Kingdom and most other [[Commonwealth of Nations]] countries, the term ''railway'' is used in preference to the United States term, ''railroad.'' In Canadian speech, ''railway'' and ''railroad'' are interchangeable, although in law ''railway'' is the usual term. ''Railroad'' was used in the United Kingdom concurrently with ''railway'' until the 1850s when ''railway'' became the established term. Several American companies have ''railway'' in their names instead of ''railroad'', the [[BNSF Railway]] being the pre-eminent modern example.
 
 
 
In the United Kingdom, the term ''railway'' often refers to the whole organization of tracks, [[train]]s, [[Train station|stations]], [[Railway signalling|signalling]], [[timetable]]s and the operating companies that collectively make up a coordinated railway system, while ''[[Permanent Way|permanent way]]'' or ''p/way'' refers to the tracks alone; however this terminology is generally not commonplace outside of the railway industry or those who take a keen interest in it.
 
 
 
[[Subway (rail)|Subways]], [[metro]]s, [[elevated railway|elevated lines]], [[tram|trolley lines]], and [[London Underground|undergrounds]] are all specialized railways.
 
  
== Rail transport by country ==
+
In the United Kingdom, the term ''railway'' often refers to the whole organization of tracks, [[train]]s, [[Train station|stations]], [[Railway signalling|signaling]], [[timetable]]s, and the operating companies that collectively make up a coordinated railway system, while ''[[permanent Way|permanent way]]'' or ''p/way'' refers to the tracks alone. However this terminology is generally not commonplace outside of the industry or those who take a keen interest in it.
{{main|Rail transport by country}}
 
{{seealso|Rail usage statistics by country|List of countries by rail transport network size}}
 
  
Of 236 countries and dependencies, 143 have rail transport (including several with very little), of which about 90 have passenger services.
+
[[Subway (rail)|Subways]], [[metro]]s, [[elevated railway|elevated lines]], [[tram|trolley lines]], and [[London Underground|undergrounds]] are all specialized forms of rail transportation.
  
 
== See also ==  
 
== See also ==  
{{portalpar|Trains}}
 
{{Trainstopics}}
 
[[Image:Eastbound over SCB.jpg|thumb|Long freight train crossing the Stoney Creek viaduct on the Canadian Pacific Railway in Southern [[British Columbia]].]]
 
  
* [[List of rail transport topics]]
+
* [[Locomotive]]
* [[Economy of Earth#Transport|Economy of Earth]] (Transportation section)
 
* [[High-speed rail]]
 
* [[Hillclimbing (railway)]]
 
** [[Rack railway]] (Cog railway or Rack and pinion railway)
 
** [[Funicular]]
 
** [[Gravity railroad]]
 
** [[Spiral (railway)]]
 
** [[Zig Zag (railway)]]
 
* [[Industrial railway]]
 
* [[Intermodal freight transport]]
 
* [[Intermodal passenger transport]]
 
* [[Land speed record for railed vehicles]]
 
* [[List of heritage railways]]
 
* [[List of named passenger trains]]
 
* [[List of railway companies]]
 
* [[List of railway companies in Switzerland]]
 
* [[List of suburban and commuter rail systems]]
 
 
* [[Maglev train]]
 
* [[Maglev train]]
* [[Plateway]]
+
* [[Train]]
* [[Private railroad]]
+
* [[Transport]]
* [[Private transport]]
 
* [[Public transport]]
 
* [[Rail adhesion]]
 
* [[Railcar]]  (self propelled transport)
 
* [[Rail gauge]]
 
* [[Rail Inspection]]
 
* [[Rail tracks]]
 
* [[Rail transport in fiction]]
 
* [[Rail transport modelling]]
 
* [[Railroad ecology]]
 
* [[Railroad police]]
 
* [[Railroad-related periodicals]]
 
* [[Railway car]]
 
* [[Railway electrification system]]
 
* [[Railway ferry]]
 
* [[Railway Mail Service]]
 
* [[Railway signal]]
 
* [[Railway signalling]]
 
* [[Rapid transit]]
 
* [[List of people associated with rail transport]]
 
  
 
== Notes ==
 
== Notes ==
Line 224: Line 165:
  
 
== References ==
 
== References ==
 
+
* Ambrose, Stephen E. ''Nothing Like It In The World; The men who built the Transcontinental Railroad 1863-1869.'' New York, NY: Simon & Schuster, 2000. ISBN 0684846098.
* Cannon, John (Ed.): ''Oxford Companion to British History'' (Oxford: Oxford University Press, 2002) ISBN 0198608721
+
* Armstrong, John H. ''Railroad: What It Is, What It Does,'' 4th Ed. Omaha, NE: Simmons-Boardman Books, 1998. ISBN 978-0911382044.
 
+
* Cannon, John (ed.) ''Oxford Companion to British History.'' Oxford, UK: Oxford University Press, 1997. ISBN 978-0198661764.
== Further reading ==
+
* Ellis, Hamilton. ''The Pictorial Encyclopedia of Railways''. London, UK: The Hamlyn Publishing Group, 1968.
 
+
* Ely, James W. Jr. ''Railroads & American Law.'' Lawrence, KS: University Press of Kansas, 2002. ISBN 978-0700611447.
[[Image:End of the line.JPG|thumb|End of the single track, unelectrified line at [[Bad Radkersburg]], [[Styria (state)|Styria]], [[Austria]], near the [[Slovenia]]n border.]]
+
* Fremdling, Rainer. Railways and German Economic Growth: A Leading Sector Analysis with a Comparison to the United States and Great Britain. ''The Journal of Economic History.'' 37(3) (1977):583-604.
 
+
* Guy, A. and J. Rees (eds.). ''Early Railways. A Selection of Papers from the First International Early Railways Conference.'' London, UK: Newcomen Society, 2001. ISBN 978-0904685084.  
* John H. Armstrong. ''Railroad: What It Is, What It Does'' 4th Edition (1998)
+
* Hylton, Stuart. ''The Grand Experiment: The Birth of the Railway Age 1820-1845.'' Hersham, UK: Ian Allan Publishing, 2007. ISBN 978-0711031722.  
* Rainer Fremdling, "Railways and German Economic Growth: A Leading Sector Analysis with a Comparison to the United States and Great Britain," ''The Journal of Economic History'', Vol. 37, No. 3. (Sep., 1977), pp. 583-604.
+
* Jenks, Leland H. Railroads as an Economic Force in American Development. ''The Journal of Economic History.'' 4(1) (1944): 1-20.
* Leland H. Jenks, "Railroads as an Economic Force in American Development," ''The Journal of Economic History'', Vol. 4, No. 1 (May, 1944), 1-20.
+
* Marshall, John. ''The Guinness Book of Rail Facts & Feats.'' Enfield, UK: Guinness Superlatives, 1979. ISBN 0900424567.
* Lewis, M. J. T., [http://www.sciencenews.gr/docs/diolkos.pdf "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'' (2001), pp. 8–19 (10-15)
+
* Nock, O.S. (ed.). ''Encyclopedia of Railways.'' London, UK: Octopus Books, 1977. ISBN 978-0706406047.
* O . S. Nock, ed. ''Encyclopedia of Railways'' (London, 1977), worldwide coverage, heavily illustrated
+
* O’Brien, Patrick. ''Railways and the Economic Development of Western Europe, 1830-1914.'' New York, NY: St. Martin's Press, 1983. ISBN 978-0312662776.
* Frederick Smeeton Williams, Our Iron Roads: Their History, Construction and Social Influences (1852) (available through [http://books.google.com/books?id=IHkPnlxTPL8C google books]).
+
* Simmons, Jack and Gordon Biddle (eds.). ''The Oxford Companion to British Railway History: From 1603 to the 1990s.'' New York, NY: Oxford University Press, 1999. ISBN 978-0198662389.
* Patrick O’Brien. ''Railways and the Economic Development of Western Europe, 1830-1914'' (1983)
+
* Skelton, Oscar D. ''The Railway Builders.'' Toronto, CA: Glasgow, Brook, & Company, Toronto, 1916.
* Jack Simmons and Gordon Biddle, (editors). ''The Oxford Companion to British Railway History: From 1603 to the 1990s'' (2nd ed 1999)
+
* Stover, John. ''American Railroads.'' Chicago, IL: University of Chicago Press, 1997. ISBN 978-0226776583.
* {{cite book|author=Skelton, Oscar D.|title=The Railway Builders|publisher=Glasgow, Brook, & Company, Toronto|year=1916|id=}}
+
* Vaughan, A. ''Railwaymen, Politics and Money.'' London, UK: John Murray, 1997. ISBN 978-0719551505.
* John Stover, ''American Railroads'' (2nd ed 1997)
+
* Williams, Frederick Smeeton. ''Our Iron Roads: Their History, Construction and Social Influences''. Forgotten Books, 2018. ISBN 978-0265516133
*James W. Ely Jr "Railroads & American Law" (2001) University Press of Kansas
 
  
 
[[Category:Physical sciences]]
 
[[Category:Physical sciences]]

Latest revision as of 19:30, 30 August 2018

"Railroad" and "Railway" redirect here.
German InterCityExpress.

Rail transport is the conveyance of passengers and goods by means of wheeled vehicles specially designed to run along railways or railroads. It is a rapid, energy-efficient, but capital-intensive means of mechanized land transport. It is part of the logistics chain that facilitates international trade and economic growth in most countries.

A railway system is a highly complex feat of engineering, with many hours of planning and forethought required for a successful outcome. Each system has two major types of components: those that move and those that are fixed. The components that move, called the rolling stock, include locomotives, passenger carrying vehicles (or coaches), and freight carrying vehicles (or goods wagons). The fixed components include the rail tracks (with their supporting structures) and ancillary buildings.

BNSF Railway freight service in the United States.
A long freight train crosses the Stoney Creek viaduct on the Canadian Pacific Railway in Southern British Columbia.

Rail transport is considered one of the safest forms of travel. Nonetheless, there are various possibilities for accidents and breakdowns to occur. Trains are heavy, unable to deviate from the track, and require a great distance to stop. Accidents vary from derailments to head-on collisions with other trains or collisions with road vehicles at level crossings.

General background

Chhatrapati Shivaji Terminus in Mumbai, India.

Typical rail tracks consist of two parallel rails, normally made of steel, secured to crossbeams, termed sleepers (UK and Australian usage) or ties (North American usage). The sleepers maintain a constant distance between the two rails; a measure known as the "gauge" of the track. To maintain the alignment of the track, it is either laid on a bed of ballast or secured to a solid concrete foundation. The whole structure is referred to as the permanent way (UK and Australia) or right-of-way (North America).

Railway rolling stock, which is fitted with metal wheels, moves with low frictional resistance when compared to road vehicles. However, locomotives and powered cars normally rely on the point of contact of the wheel with the rail for traction and adhesion (the part of the transmitted axle load that makes the wheel "adhere" to the smooth rail). While this is usually sufficient under normal dry rail conditions, adhesion can be reduced or even lost through the presence of unwanted material on the rail surface, such as moisture, grease, ice, or dead leaves.

Along with various engineered components, rails constitute a large part of the permanent way. They provide smooth and hard surfaces on which the wheels of the train can roll with a minimum of friction. For example, a typical modern wagon can hold up to 125 tons of freight on two four-wheel bogies/trucks (100 tons in UK). The contact area between each wheel and the rail is tiny, a strip no more than a few millimeters wide, which minimizes friction. In addition, the track distributes the weight of the train evenly, allowing significantly greater loads per axle / wheel than in road transport, leading to less wear and tear on the permanent way. This can save energy compared with other forms of transportation, such as road transport, which depends on the friction between rubber tires and the road. Trains also have a small frontal area in relation to the load they are carrying, which cuts down on forward air resistance and thus energy usage, although this does not necessarily reduce the effects of side winds.

Railway tracks running through Stanhope railway station in North East England, UK.

Due to these various benefits, rail transport is a major form of public transport in many countries. In Asia, for example, many millions use trains as regular transport in India, China, South Korea and Japan. It is also widespread in European countries. By comparison, intercity rail transport in the United States is relatively scarce outside the Northeast Corridor, although a number of major U.S. cities have heavily-used, local rail-based passenger transport systems or light rail or commuter rail operations.[1]

The vehicles traveling on the rails, collectively known as rolling stock, are arranged in a linked series of vehicles called a train, which can include a locomotive if the vehicles are not individually powered. A locomotive (or "engine") is a powered vehicle used to haul a train of unpowered vehicles. In the USA, individual unpowered vehicles are known generically as cars. These may be passenger carrying or used for freight purposes. For passenger-carrying vehicles, the term carriage or coach is used, while a freight-carrying vehicle is known as a freight car in the United States and a wagon or truck in Great Britain. An individually-powered passenger vehicle is known as a railcar or a power car; when one or more as these are coupled to one or more unpowered trailer cars as an inseparable unit, this is called a railcar set or multiple unit.

Development of rails

Stone rails

Trackwork including a point on the Haytor Granite Tramway.

The earliest evidence of a railway found thus far was the 6-kilometer (3.7 mi) Diolkos wagonway, which transported boats across the Corinth isthmus in Greece during the sixth century B.C.E. Trucks pushed by slaves ran in grooves in limestone, which provided the track element, preventing the wagons from leaving the intended route. The Diolkos ran for over 1300 years, until 900 C.E. The first horse-drawn wagon ways also appeared in ancient Greece, with others to be found on Malta and various parts of the Roman Empire, using cut-stone tracks. An example of stone track still exists on Dartmoor, England, where the Haytor Granite Tramway was built in 1820 using grooved granite blocks.

Wooden rails

Railways began reappearing in Europe after the Dark Ages following the collapse of the Roman Empire. The earliest known record of a railway in Europe from this period is a stained-glass window in the Minster of Freiburg im Breisgau dating from around 1350.[2] By 1550, narrow gauge railways operating with wooden rails were common in mines in Europe.[3] The first railways in Great Britain (also known as wagonways) were constructed in the early seventeenth century, mainly for transporting coal from mines to canal wharfs where it could be transferred to a boat for onward shipment. The earliest recorded examples are the Wollaton Wagonway in Nottinghamshire and the Bourtreehill - Broomlands Wagonway in Irvine, Ayrshire. Other examples can be found in Broseley in Shropshire, where wooden rails and flanged wheels were utilized, as on a modern railway. However, the rails were prone to wear out under the pressure, and had to be replaced regularly.

Iron plate rails

In 1768, the Coalbrookdale Iron Works laid cast iron plates on top of the wooden rails, providing a more durable load-bearing surface. These were later used by Benjamin Outram at his foundry in Ripley, Derbyshire, the first time standardized components were produced. It was these that led to the name "platelayer" for workers on the permanent way. The advantage was that a considerable variation in wheel spacing (gauge) could be accommodated. However, wheels would bind against the upright part of the plate, and mud and stones would accumulate. On the Little Eaton Gangway in 1799, where Outram used passing loops on the single track, moveable plates were provided, called "pointers," which became shortened to "points".[4]

Edge rails

Lengths of "fishbelly" rail on stone support blocks

From the late eighteenth century, iron "edge rails" began to appear. The British civil engineer William Jessop designed smooth iron edge rails, which were used in conjunction with flanged iron wheels, introducing them on a route between Loughborough and Nanpantan, Leicestershire, as an adjunct to the Charnwood Forest Canal, in 1793-1794.[5] In 1803, Jessop opened the Surrey Iron Railway in south London, arguably the world's first horse-drawn public railway.[6] Being of cast iron these rails were short, around three feet long, of a "fish-bellied" design. They had a foot at each end by means of which they were fastened to stone blocks in the ground.

Wrought iron and steel rails

Cast iron is a brittle material and the short lengths meant that they soon became uneven. However, developments in the process of hot rolling iron meant that longer length rails could be produced. In 1805, the first wrought iron rails were produced at Bedlington Ironworks near Durham. The first steel rails were produced by Robert Forester Mushet and laid at Derby station in 1857,[5] Modern railways still use steel rails, but they are typically welded together to form lengths of continuous welded rail which removes the additional wear and tear on rolling stock caused by the tiny differences in rail surface height at the joint between adjacent rail sections.

Development of motive power

Steam locomotives

Blücher, an early railway locomotive built in 1814 by George Stephenson.

The first locomotive to haul a train of wagons on rails was designed by Cornish engineer Richard Trevithick, and was demonstrated in 1804 on a plateway at Merthyr Tydfil, South Wales.[7] Although the locomotive successfully hauled the train, the rail design was not a success, partly because its weight broke a number of the brittle cast-iron plates. Despite this setback, another area of South Wales pioneered rail operations, when, in 1806, a horse-drawn railway was built between Swansea and Mumbles: the Swansea-Mumbles railway started carrying fare-paying passengers in 1807 – the first in the world to do so.[8]

In 1811, John Blenkinsop designed the first successful and practical railway locomotive. He patented a system of moving coals by a rack railway worked by a steam locomotive (patent no. 3431), and a line was built connecting the Middleton Colliery to Leeds. The locomotive (The Salamanca) was built in 1812 by Matthew Murray of Fenton, Murray and Wood.[9] The Middleton Railway was the first railway to successfully use steam locomotives on a commercial basis. It was also the first railway in Great Britain to be built under the terms laid out in an Act of Parliament. Blenkinsop's engine had double-acting cylinders and, unlike the Trevithick pattern, no flywheel. Due to previous experience with broken rails, the locomotive was made very light and this brought concerns about insufficient adhesion, so instead of driving the wheels directly, the cylinders drove a cogwheel through spur gears, the cogwheel providing traction by engaging with a rack cast into the side of the rail.

Magic lantern image of Lahore Railway Station, Lahore circa 1895.
Density of the European railway net in 1896.

In Scotland, the Kilmarnock and Troon Railway was the first railway constructed, and was authorized by Act of Parliament in 1808. The civil engineer leading the project was William Jessop, and its 1811 construction meant that it was the first railway in Scotland to use a steam locomotive, while it was the only line in Scotland for 14 years. Its representation appeared in the Coat of Arms of the Burgh of Troon. The line was intended to carry coal for the Duke of Portland; and ran services between Kilmarnock and Troon Harbour. The line began life as a 9.5 mile (16 km), double track 4 ft 0 in (1,219 mm) gauge, horse-drawn wagonway. It was built using cast iron plate rails with an inner flange. A George Stephenson-built locomotive, his second one from Killingworth Colliery, was tried on the main line in 1817, but the weight of the engine broke the cast iron plate rails. It worked better when wooden rails were used, and the locomotive remained in use until 1848.

The Stockton and Darlington Railway opened in northern England in 1825[10] to be followed five years later by the Liverpool and Manchester Railway,[11] considered to be the world's first "Inter City" line. The rail gauge (the distance between the two rails of the track) was used for the early wagonways, and had been adopted for the Stockton and Darlington Railway. The 4 ft 8½ in (1,435 mm) width became known as the international "standard gauge," used by about 60 percent of the world's railways. The Liverpool and Manchester Railway, on the other hand, proved the viability of rail transport when, after organizing the Rainhill Trials of 1829, Stephenson's Rocket successfully hauled a load of 13 tons at an average speed of 12 miles per hour. The company took the step of working its trains from its opening entirely by steam traction. Railways then soon spread throughout the United Kingdom and the world, and became the dominant means of land transport for nearly a century, until the invention of aircraft and automobiles, which prompted a gradual decline in railways.

The first railroad in the United States may have been a gravity railroad in Lewiston, New York in 1764. The 1809 Leiper Railroad in Pennsylvania was intended as the first permanent railroad,[12] and the 1826 Granite Railway in Massachusetts was the first commercial railroad to evolve through continuous operations into a common carrier. The Baltimore and Ohio, opened in 1830, was the first to evolve into a major system. In 1867, the first elevated railroad was built in New York. In 1869, the symbolically important transcontinental railroad was completed in the United States with the driving of a golden spike at Promontory, Utah.[13] The development of the railroad in the United States helped reduce transportation time and cost, which allowed migration towards the west. Railroads increased the accessibility of goods to consumers, thus allowing individuals and capital to flow westward. Railroads created national markets characterized by the 'law of one price' by lowering difference in price charged for commodity between suppliers and demanders. Railroads increased social savings, and were the largest contributors of any innovation before 1900.

The South American experience regarding railways was first achieved in 1854, when a line was laid between the Chilean towns of Caldera and Copiapo. However, the first concerted trans-Andine attempt between Argentina and Chile did not occur until the 1870s, due to the financial risks involved in such a project. It was not until 1887 that the Argentineans began to construct their part of the enterprise, with the Chileans beginning construction in 1889, though by 1893, work had ceased due to financial constraints. In 1896, the Transandine Railway Company was created in London to purchase the existing railways and construct a continuous line between Argentina and Chile that would improve transport and communication links in South America. This was finally completed in 1908, when the Argentine and Chilean stretches of track were joined.

Dieselization

Two SD70M diesel locomotives of the Union Pacific refueling at Dunsmuir, California.

Dieselization was the replacement of the steam locomotive with the diesel-electric locomotive (often referred to as a "diesel locomotive"), a process which began in the 1930s and is now substantially complete worldwide.

Dieselization took place largely because of the reduction in operating costs it allowed. Steam locomotives require large pools of labor to clean, load, maintain and run. They also require extensive service, coaling and watering facilities. Diesel locomotives require significantly less time and labor to operate and maintain.

After World War II, dramatically increased labor costs in the Western World made steam an increasingly costly form of motive power. At the same time, the war had forced improvements in internal combustion engine technology that made diesel locomotives cheaper and more powerful. The post war world also re-aligned the business and financial markets, as did world geo-politics as in the Cold War (1947-1953).

Electrification

Postcard showing electric streetcars in Richmond, Virginia, where Frank J. Sprague successfully demonstrated his new system on the hills in 1888.

Robert Davidson started to experiment with an electrical railway car in Scotland in 1838. By 1839 he had completed and presented a 4.8 m long carriage that weighed six tons, including batteries. It reached a maximum speed of 6.4 kilometers per hour.

Magnus Volk opened his electric railway in Brighton in 1883.

The use of overhead wires conducting electricity, invented by Granville T. Woods in 1888, among several other improvements, led to the development of electrified railways, the first of which in the United States was operated at Coney Island in 1892. Richmond, Virginia had the first successful electrically-powered trolley system in the United States. Designed by electric power pioneer Frank J. Sprague, the trolley system opened its first line in January, 1888. Richmond's hills, long a transportation obstacle, were considered an ideal proving ground. The new technology soon replaced horse-powered streetcars.

Sweden got the perhaps first fully electrified developed railway that efficiently transported commuters as well as goods, in 1895. At the time it ran from close to central Stockholm to Rimbo, located in the countryside Roslagen. It is still in use to commuters today but runs only about a third of its biggest extent, much due to it not using the standard gauge but 3ft (891mm).

In the USSR, children's railways were developed in the 1930s. (The world's first one was opened on July 24, 1935.) Fully operated by children, they were extracurricular educational institutions where teenagers learned railway professions. Many of them are functioning in post-Soviet states and Eastern European countries.

Many countries since the 1960s have adopted high-speed railways. On April 3, 2007, the French TGV set a new train speed record. The train, with a modified engine and wheels, reached 574.8 km/h (357.2 mph). The record attempt took place on the new LGV Est line between Paris and Strasbourg using a specially equipped TGV Duplex train. The overhead lines had also been modified for the attempt to carry 31,000 V rather than the line's normal 25,000 V.[14] On August 24, 2005, the Qingzang railway became the highest railway line in the world, when track was laid through the Tanggula Mountain Pass at 5,072 meters (16,640.4 ft) above sea level in the Tanggula Mountains, Tibet.[15]

Operations

Two British Rail Class 143 DMUs at Cardiff Queen Street station in the United Kingdom.

Rolling stock

A locomotive is the vehicle that provides the motive power for a train. A locomotive has no payload capacity of its own, and its sole purpose is to move the train along the tracks. Traditionally, locomotives pull trains from the front.

A railroad car is a vehicle used for the haulage of either passengers or freight. Most cars carry a "revenue" load, although "non-revenue" cars are run for the railroad's own use, such as for maintenance-of-way purposes.

Signaling

GWR semaphore-type signal.

Railway signaling is a system used to control railway traffic safely to prevent trains from colliding. Being guided by fixed rails, trains are uniquely susceptible to collision since they frequently operate at speeds that do not enable them to stop quickly or, in some cases, within the driver's sighting distance.

Most forms of train control involve movement authority being passed from those responsible for each section of a rail network (e.g., a signalman or stationmaster) to the train crew. The set of rules and the physical equipment used to accomplish this control determine what is known as the method of working (UK), method of operation (US) or safeworking (Aus.). Not all methods require the use of signals, and some systems are specific to single track railways. The signaling process is traditionally carried out in a signal box or interlocking tower, a small building that houses the lever frames required for the signalman to operate switches and signal equipment. These are placed at various intervals along the route of a railway, controlling specified sections of track. More recent technological developments have made such operational doctrine superfluous, with the centralization of signaling operations to regional control rooms. This has been facilitated by the increased use of computers, allowing vast sections of track to be monitored from a single location.

Right of way

Railway tracks are laid upon land owned or leased by the railway. Owing to the requirements for large radius turns and modest grades, rails will often be laid in circuitous routes. Public carrier railways are typically granted limited rights of eminent domain (UK:compulsory purchase). In many cases in the nineteenth century, railways were given additional incentives in the form of grants of public land. Route length and grade requirements can be reduced by the use of alternating earthen cut and fill, bridges, and tunnels, all of which can greatly increase the capital expenditures required to develop a right of way, while significantly reducing operating costs and allowing higher speeds on longer radius curves. In densely urbanized areas such as Manhattan, railways are sometimes laid out in tunnels to minimize the effects on existing properties.

Safety and railway disasters

Train wreck, 1907, in Canaan, New Hampshire.

Trains can travel at very high speeds. However, they are heavy, unable to deviate from the track, and require a great distance to stop. Although rail transport is considered one of the safest forms of travel, there are many possibilities for accidents to take place. These can vary from the minor derailment (jumping the track) to a head-on collision with another train or collision with an automobile or other vehicle at a level crossing/grade crossing.

The most important safety measures are railway signaling and gates at level/grade crossings. Train whistles warn of the presence of a train, while trackside signals maintain the distances between trains. In the United Kingdom, vandalism and negligence are thought responsible for many rail accidents. Railway lines are zoned or divided into blocks guarded by combinations of block signals, operating rules, and automatic-control devices so that one train, at most, may be in a block at any time.

Compared with road travel, railways remain relatively safe.[16]

Trackage

Concrete ties (sleepers)
Trestle bridge
Bolted rail connection and tie-down. Also known as a fishplate.

As noted earlier, a typical railroad track consists of two parallel steel (or, in older networks, iron) rails, generally anchored perpendicular to beams (sleepers or ties) of timber, concrete, or steel to maintain a constant distance (gauge). The rails and perpendicular beams are usually then placed on a foundation made of concrete or compressed earth and gravel in a bed of ballast to prevent the track from buckling (bending out of its original configuration) as the ground settles over time under the weight of the vehicles passing above.

Trackage, consisting of the ties and rails, may be prefabricated or assembled in place. Rails are usually composed of segments welded or bolted together. The length of each segment may be comparable to that of a railcar or two, or it may be hundreds of feet long.

The surface of the ballast is sloped around curves to reduce lateral forces. This is called superelevation or cant. This reduces the forces tending to displace the track and makes for a more comfortable ride for passengers and livestock. This is effective over a limited range of speeds, however.

Track components

The first component of a railway is the route, which is planned to provide the least resistance in terms of gradient and engineering works. As such, the track bed is heavily engineered to provide, where possible, a level surface. As such, embankments are constructed to support the track and to provide a compromise in terms of the route's average elevation. With this in mind, various structures such as bridges and viaducts are constructed in an attempt to maintain the railway's elevation, and gradients are kept within manageable limits. In hilly terrain, to avoid a long detour, a tunnel may be bored through the hill.

Once these engineering works needed for the route are completed, a bed of stone (ballast) is laid over the compacted track bed to enhance drainage around the ties and evenly distribute pressure over a wider area, locking the track-work in place. Crushed stone is firmly tamped to prevent further settling and to lock the stones. Minor water courses are channeled through pipes (culverts) before the grade is raised.

The base of the trackage consists of treated wood, concrete, or steel ties. Traditional US practice with wood sleepers is to anchor the rail structure to the road bed through the use of baseplates. These are attached to the top of the ties to provide a secure housing for the flat bottomed rails. After placement of the rail atop the plate, spikes are driven through holes in the plate and into the tie where they are held by friction. The top of the spike has a head that clamps the rail. As an alternative, lag bolts can be used to retain the clamps, which is preferred since screws are less likely to loosen. Traditional practice in the UK was to screw cast iron 'chairs' to wooden sleepers. These chairs loosely hold bullhead rail which is then secured by a wood or steel 'key' wedged between the side of the rail and the chair. With concrete or steel sleepers, fixings are built into the sleeper to which flat bottom rail is attached with sprung steel clips.

The space between and surrounding the ties is filled with additional ballast to stabilize the rail assembly.

Points (Turnouts or Switches)

Turnouts

Points (UK) or switches (US), technically known as turnouts, are the means of directing a train onto a diverging section of track, for example, a siding, a branch line, or a parallel running line. Laid similar to normal track, a point typically consists of a frog (common crossing), check rails and two switch rails. The switch rails may be moved left or right, under the control of the signaling system, to determine which path the train will follow.

Maintenance

Spikes in wooden ties can loosen over time, while split and rotten ties may be individually replaced with a concrete substitute. Should the rails settle due to soil subsidence, they can be lifted by specialized machinery and additional ballast tamped down to form a level bed. Periodically, ballast must be removed and replaced with clean ballast to ensure adequate drainage, especially if wooden ties are used. Culverts and other passages for water must be kept clear lest water is impounded by the trackbed, causing landslips. Where trackbeds are placed along rivers, additional protection is usually placed to prevent erosion during times of high water. Bridges are another important component requiring inspection and maintenance.

Terminology

Rail tracks.

In the United Kingdom and most other members of the Commonwealth of Nations, the term railway is used in preference to the United States term, railroad. In Canada, railway and railroad are used interchangeably, although in law railway is the usual term. Railroad was used in the United Kingdom concurrently with railway until the 1850s, when railway became the established term. Several American companies have railway in their names instead of railroad, the BNSF Railway being the pre-eminent modern example.

In the United Kingdom, the term railway often refers to the whole organization of tracks, trains, stations, signaling, timetables, and the operating companies that collectively make up a coordinated railway system, while permanent way or p/way refers to the tracks alone. However this terminology is generally not commonplace outside of the industry or those who take a keen interest in it.

Subways, metros, elevated lines, trolley lines, and undergrounds are all specialized forms of rail transportation.

See also

Notes

  1. Ridership Report American Public Transportation Association. Retrieved August 30, 2018.
  2. Stuart Hylton, The Grand Experiment: The Birth of the Railway Age 1820-1845 (Hersham, UK: Ian Allan Publishing, 2007, ISBN 978-0711031722).
  3. Georgius Agricola, Herbert Clark Hoover, Lou Henry Hoover (trans.), "De re metallica." London, UK: The Mining Magazine, 1912.
  4. A. Vaughan, Railwaymen, Politics and Money (London, UK: John Murray, 1997, ISBN 978-0719551505).
  5. 5.0 5.1 John Marshall, The Guinness Book of Rail Facts & Feats (Enfield, UK: Guinness Superlatives, 1979, ISBN 0900424567).
  6. The Surrey Iron Railway - 1803 Stephenson Locomotive Society. Retrieved August 30, 2018.
  7. J. Chartres, Richard Trevithick, in John Cannon, (ed.) Oxford Companion to British History (Oxford, UK: Oxford University Press, 1997, ISBN 978-0198661764), 932.
  8. A Brief History Of The Railway The Swansea & Mumbles Railway. Retrieved August 30, 2018.
  9. Hamilton Ellis, The Pictorial Encyclopedia of Railways (London, UK: The Hamlyn Publishing Group, 1968), 20.
  10. Stockton and Darlington Railway Spartacus Educational. Retrieved August 30, 2018.
  11. Liverpool and Manchester Railway Spartacus Educational. Retrieved August 30, 2018.
  12. Greg Harrison, The Leiper Railroad AbandonedRails. Retrieved August 30, 2018.
  13. Stephen E. Ambrose, Nothing Like It In The World; The men who built the Transcontinental Railroad 1863-1869 (New York, NY: Simon & Schuster, 2000, ISBN 0684846098).
  14. Ariane Bernard, French TGV Sets Record, Reaching 357 Miles an Hour The New York Times, April 3, 2007. Retrieved August 30, 2018.
  15. Qinghai Tibet Railway Tibet Vista. Retrieved August 30, 2018.
  16. Bart Jansen, Trains safer than cars, buses for passengers, experts say USA Today, April 4, 2016. Retrieved August 30, 2018.

References
ISBN links support NWE through referral fees

  • Ambrose, Stephen E. Nothing Like It In The World; The men who built the Transcontinental Railroad 1863-1869. New York, NY: Simon & Schuster, 2000. ISBN 0684846098.
  • Armstrong, John H. Railroad: What It Is, What It Does, 4th Ed. Omaha, NE: Simmons-Boardman Books, 1998. ISBN 978-0911382044.
  • Cannon, John (ed.) Oxford Companion to British History. Oxford, UK: Oxford University Press, 1997. ISBN 978-0198661764.
  • Ellis, Hamilton. The Pictorial Encyclopedia of Railways. London, UK: The Hamlyn Publishing Group, 1968.
  • Ely, James W. Jr. Railroads & American Law. Lawrence, KS: University Press of Kansas, 2002. ISBN 978-0700611447.
  • Fremdling, Rainer. Railways and German Economic Growth: A Leading Sector Analysis with a Comparison to the United States and Great Britain. The Journal of Economic History. 37(3) (1977):583-604.
  • Guy, A. and J. Rees (eds.). Early Railways. A Selection of Papers from the First International Early Railways Conference. London, UK: Newcomen Society, 2001. ISBN 978-0904685084.
  • Hylton, Stuart. The Grand Experiment: The Birth of the Railway Age 1820-1845. Hersham, UK: Ian Allan Publishing, 2007. ISBN 978-0711031722.
  • Jenks, Leland H. Railroads as an Economic Force in American Development. The Journal of Economic History. 4(1) (1944): 1-20.
  • Marshall, John. The Guinness Book of Rail Facts & Feats. Enfield, UK: Guinness Superlatives, 1979. ISBN 0900424567.
  • Nock, O.S. (ed.). Encyclopedia of Railways. London, UK: Octopus Books, 1977. ISBN 978-0706406047.
  • O’Brien, Patrick. Railways and the Economic Development of Western Europe, 1830-1914. New York, NY: St. Martin's Press, 1983. ISBN 978-0312662776.
  • Simmons, Jack and Gordon Biddle (eds.). The Oxford Companion to British Railway History: From 1603 to the 1990s. New York, NY: Oxford University Press, 1999. ISBN 978-0198662389.
  • Skelton, Oscar D. The Railway Builders. Toronto, CA: Glasgow, Brook, & Company, Toronto, 1916.
  • Stover, John. American Railroads. Chicago, IL: University of Chicago Press, 1997. ISBN 978-0226776583.
  • Vaughan, A. Railwaymen, Politics and Money. London, UK: John Murray, 1997. ISBN 978-0719551505.
  • Williams, Frederick Smeeton. Our Iron Roads: Their History, Construction and Social Influences. Forgotten Books, 2018. ISBN 978-0265516133

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