Aerodynamic Performance of a High-Speed Train Passing through Three Standard Tunnel Junctions under Crosswinds
The aerodynamic performance of a high-speed train passing through tunnel junctions under severe crosswind condition was numerically investigated using improved delayed detached-eddy simulations (IDDES). Three ground scenarios connected with entrances and exits of tunnels were considered. In particul...
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doaj-c974e31a617742f78ef9ab5e2fef99842020-11-25T03:02:13ZengMDPI AGApplied Sciences2076-34172020-05-01103664366410.3390/app10113664Aerodynamic Performance of a High-Speed Train Passing through Three Standard Tunnel Junctions under CrosswindsXiujuan Miao0Kan He1Guglielmo Minelli2Jie Zhang3Guangjun Gao4Hongliang Wei5Maosheng He6Sinisa Krajnovic7College of Automobile and Machinery Engineering, Changsha University of Science and Technology, Changsha 410076, ChinaKey Laboratory of Traffic Safety on Track of Ministry of Education, School of Traffic & Transportation Engineering, Central South University, Changsha 410075, ChinaDivision of Fluid Dynamics, Department of Mechanics and Maritime Sciences, Chalmers University of Technology, 41296 Gothenburg, SwedenKey Laboratory of Traffic Safety on Track of Ministry of Education, School of Traffic & Transportation Engineering, Central South University, Changsha 410075, ChinaKey Laboratory of Traffic Safety on Track of Ministry of Education, School of Traffic & Transportation Engineering, Central South University, Changsha 410075, ChinaCRRC Qiqihar Railway Rolling Stock Co., Ltd., Dalian 116000, ChinaCRRC Qiqihar Railway Rolling Stock Co., Ltd., Dalian 116000, ChinaDivision of Fluid Dynamics, Department of Mechanics and Maritime Sciences, Chalmers University of Technology, 41296 Gothenburg, SwedenThe aerodynamic performance of a high-speed train passing through tunnel junctions under severe crosswind condition was numerically investigated using improved delayed detached-eddy simulations (IDDES). Three ground scenarios connected with entrances and exits of tunnels were considered. In particular a flat ground, an embankment, and a bridge configuration were used. The numerical method was first validated against experimental data, showing good agreement. The results show that the ground scenario has a large effect on the train’s aerodynamic performance. The bridge case resulted in generally smaller drag and lift, as well as a lower pressure coefficient on both the train body and the inner tunnel wall, as compared to the tunnel junctions with flat ground and embankment. Furthermore, the bridge configuration contributed to the smallest pressure variation in time in the tunnel. Overall, the study gives important insights on complicated tunnel junction scenarios coupled with severe flow conditions, that, to the knowledge of the authors, were not studied before. Beside this, the results can be used for further improvements in the design of tunnels where such crosswind conditions may occur.https://www.mdpi.com/2076-3417/10/11/3664IDDEShigh-speed traintunnel junctioncrosswindnumerical simulation |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Xiujuan Miao Kan He Guglielmo Minelli Jie Zhang Guangjun Gao Hongliang Wei Maosheng He Sinisa Krajnovic |
spellingShingle |
Xiujuan Miao Kan He Guglielmo Minelli Jie Zhang Guangjun Gao Hongliang Wei Maosheng He Sinisa Krajnovic Aerodynamic Performance of a High-Speed Train Passing through Three Standard Tunnel Junctions under Crosswinds Applied Sciences IDDES high-speed train tunnel junction crosswind numerical simulation |
author_facet |
Xiujuan Miao Kan He Guglielmo Minelli Jie Zhang Guangjun Gao Hongliang Wei Maosheng He Sinisa Krajnovic |
author_sort |
Xiujuan Miao |
title |
Aerodynamic Performance of a High-Speed Train Passing through Three Standard Tunnel Junctions under Crosswinds |
title_short |
Aerodynamic Performance of a High-Speed Train Passing through Three Standard Tunnel Junctions under Crosswinds |
title_full |
Aerodynamic Performance of a High-Speed Train Passing through Three Standard Tunnel Junctions under Crosswinds |
title_fullStr |
Aerodynamic Performance of a High-Speed Train Passing through Three Standard Tunnel Junctions under Crosswinds |
title_full_unstemmed |
Aerodynamic Performance of a High-Speed Train Passing through Three Standard Tunnel Junctions under Crosswinds |
title_sort |
aerodynamic performance of a high-speed train passing through three standard tunnel junctions under crosswinds |
publisher |
MDPI AG |
series |
Applied Sciences |
issn |
2076-3417 |
publishDate |
2020-05-01 |
description |
The aerodynamic performance of a high-speed train passing through tunnel junctions under severe crosswind condition was numerically investigated using improved delayed detached-eddy simulations (IDDES). Three ground scenarios connected with entrances and exits of tunnels were considered. In particular a flat ground, an embankment, and a bridge configuration were used. The numerical method was first validated against experimental data, showing good agreement. The results show that the ground scenario has a large effect on the train’s aerodynamic performance. The bridge case resulted in generally smaller drag and lift, as well as a lower pressure coefficient on both the train body and the inner tunnel wall, as compared to the tunnel junctions with flat ground and embankment. Furthermore, the bridge configuration contributed to the smallest pressure variation in time in the tunnel. Overall, the study gives important insights on complicated tunnel junction scenarios coupled with severe flow conditions, that, to the knowledge of the authors, were not studied before. Beside this, the results can be used for further improvements in the design of tunnels where such crosswind conditions may occur. |
topic |
IDDES high-speed train tunnel junction crosswind numerical simulation |
url |
https://www.mdpi.com/2076-3417/10/11/3664 |
work_keys_str_mv |
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