With the increasing of the train load, the wheel-rail wear is worsening, the maintaining and replacing cycle is shortened enormously, the problem of replacing steel rail and wheel prematurely not only make the railway transportation cost increasing, but also affect the railway normal transportation. This paper proposes a novel type of active energy self-supply radial steering technology — the parallel interconnection hydraulic-electric energy-harvesting active radial steering bogie system. This system is a typical “machine – electric – hydraulic” coupling system, which includes parallel interconnection hydraulic-electric energy-harvesting suspension and active radial steering bogie, consisting of mechanical, electronic, hydraulic and control subsystems internally. In this system, the radial steering bogie is equipped with four HESA, and HESA can reuse the mechanical vibration energy which used to be transformed into waste heat by the shock absorber. In this system, the mechanical vibration energy is now used to drive power module of active radial steering bogie, so as to implement the train’s active radial steering without external power supply. This paper discusses the evolution of radial steering bogie in general, and introduces the structure and basic principle of the parallel interconnection electro-hydraulic energy-harvesting active radial steering bogie system. The system establishes a model of the parallel interconnection hydraulic-electric energy-harvesting shock absorber. The typical vertical irregularity of American track is established. In the paper, we research on the system’s damping performance and energy recovery performance through stimulation. Simulation results show that the maximum vertical acceleration of train body is reduced from 42.9% to 62.3%, and the average energy recovery power from the system increases from 217W to 1835W when the system works at the six levels of track irregularities.
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2017 Joint Rail Conference
April 4–7, 2017
Philadelphia, Pennsylvania, USA
Conference Sponsors:
- Rail Transportation Division
ISBN:
978-0-7918-5071-8
PROCEEDINGS PAPER
Design and Analysis of Parallel Interconnection Hydraulic-Electric Energy-Harvesting Active Radial Steering Bogie System
Lingshuai Meng,
Lingshuai Meng
Wuhan University of Technology, Wuhan, China
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Lin Xu,
Lin Xu
Wuhan University of Technology, Wuhan, China
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Junyi Zou,
Junyi Zou
Wuhan University of Technology, Wuhan, China
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Jia Mi,
Jia Mi
Wuhan University of Technology, Wuhan, China
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Sijing Guo
Sijing Guo
Wuhan University of Technology, Wuhan, China
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Lingshuai Meng
Wuhan University of Technology, Wuhan, China
Lin Xu
Wuhan University of Technology, Wuhan, China
Junyi Zou
Wuhan University of Technology, Wuhan, China
Jia Mi
Wuhan University of Technology, Wuhan, China
Sijing Guo
Wuhan University of Technology, Wuhan, China
Paper No:
JRC2017-2263, V001T07A005; 9 pages
Published Online:
July 19, 2017
Citation
Meng, L, Xu, L, Zou, J, Mi, J, & Guo, S. "Design and Analysis of Parallel Interconnection Hydraulic-Electric Energy-Harvesting Active Radial Steering Bogie System." Proceedings of the 2017 Joint Rail Conference. 2017 Joint Rail Conference. Philadelphia, Pennsylvania, USA. April 4–7, 2017. V001T07A005. ASME. https://doi.org/10.1115/JRC2017-2263
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