Railroads Electrification

Enlarge text Shrink text
  • Topic
| System number 987007560720105171

Information for Authority record

Name (Hebrew)
רכבות (מסילות ברזל) חשמול
Name (Latin)
Railroads Electrification
Name (Arabic)
السكك الحديدية الكهربة
Other forms of name
Electrification of railroads
Railroad electrification
See Also From tracing topical name
Electricity in transportation
Electrification
Electric locomotives
Electric railroads
MARC
MARC

Other Identifiers

Wikidata: Q388201
Library of congress: sh 85110955

Wikipedia description:

Railway electrification is the use of electric power for the propulsion of rail transport. Electric railways use either electric locomotives (hauling passenger or freight in separate cars), electric multiple units (passenger or freight cars with their own motors) or both. Electricity is typically generated in large and relatively efficient generating stations, transmitted to the railway network and distributed to the trains. Some electric railways have their own dedicated generating stations and transmission lines, but most purchase power from an electric utility. The railway usually provides its own distribution lines, switches, and transformers. Power is supplied to moving trains with a (nearly) continuous conductor running along the track that usually takes one of two forms: an overhead line, suspended from poles or towers along the track or from structure or tunnel ceilings and contacted by a pantograph, or a third rail mounted at track level and contacted by a sliding "pickup shoe". Both overhead wire and third-rail systems usually use the running rails as the return conductor, but some systems use a separate fourth rail for this purpose. In comparison to the principal alternative, the diesel engine, electric railways offer substantially better energy efficiency, lower emissions, and lower operating costs. Electric locomotives are also usually quieter, more powerful, and more responsive and reliable than diesel locomotives. They have no local emissions, an important advantage in tunnels and urban areas. Some electric traction systems provide regenerative braking that turns the train's kinetic energy back into electricity and returns it to the supply system to be used by other trains or the general utility grid. While diesel locomotives burn petroleum products, electricity can be generated from diverse sources, including renewable energy. Historically, concerns of resource independence have played a role in the decision to electrify railway lines. Landlocked Switzerland which almost completely lacks oil or coal deposits but has plentiful hydropower electrified its network in part in reaction to supply issues during both World Wars. Disadvantages of electric traction include high capital costs that may be uneconomic on lightly trafficked routes and a vulnerability to power interruptions. Electric traction is also less flexible than other power sources since electric trains need third rails or overhead wires. Electro-diesel locomotives and electro-diesel multiple units mitigate these problems somewhat as they are capable of running on diesel power during an outage or on non-electrified routes. Different regions may use different supply voltages and frequencies, complicating through service and requiring greater complexity of locomotive power. There used to be a historical concern for double-stack rail transport regarding clearances with overhead lines but it is no longer universally true as of 2022, with both Indian Railways and China Railway regularly operating electric double-stack cargo trains under overhead lines. Railway electrification has constantly increased in the past decades, and as of 2022, electrified tracks account for nearly one-third of total tracks globally.

Read more on Wikipedia >