DocumentCode :
154499
Title :
Regenerative braking energy utilization by multi train cooperation
Author :
Xubin Sun ; Hu Cai ; Xiaowei Hou ; Mengyang Zhang ; Hairong Dong
Author_Institution :
Sch. of Electron. & Inf. Eng., Beijing Jiaotong Univ., Beijing, China
fYear :
2014
fDate :
8-11 Oct. 2014
Firstpage :
139
Lastpage :
144
Abstract :
Regenerative braking system is widely used on subway trains, which will transmit kinetic energy of the trains to electricity. When the braking speed of a train is comparatively high, regenerative braking is prior to the mechanical braking. However, if the regenerative braking energy can not be absorbed by other trains in the same power supply section, the regenerative braking energy may lead to the voltage rising, even have to use dissipative resistance to absorb the surplus energy. The expected situation is that the regenerative braking energy is absorbed by other trains in the same power supply section as much as possible. Multi-train cooperation method is given in this paper, where the speed profile of the trains, selected to absorb the regenerative braking energy, will be partly adjusted. Typically, part of the original speed profile will be replaced by coast-accelerate-coast strategy, the objective is to make the train run as far as possible by only using the distributed regenerative energy. A case is studied based on Beijing Yizhuang Subway line, where speed profiles of two trains are adjusted to absorb the regenerative braking energy generated by a braking train at the same power supply section.
Keywords :
power consumption; railways; regenerative braking; traction power supplies; Beijing Yizhuang Subway line; coast-accelerate-coast strategy; dissipative resistance; distributed regenerative energy; kinetic energy transmission; mechanical braking; multitrain cooperation method; power supply section; regenerative braking energy utilization; subway train; surplus energy absorption; traction power supply system; train braking speed; voltage rising; Acceleration; Energy consumption; Numerical models; Optimization; Power supplies; Substations; Synchronization; multi-train cooperation; regenerative braking energy; train speed profile;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Intelligent Transportation Systems (ITSC), 2014 IEEE 17th International Conference on
Conference_Location :
Qingdao
Type :
conf
DOI :
10.1109/ITSC.2014.6957680
Filename :
6957680
Link To Document :
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