Numerical Study of the Effect of Rail Modelling Method on Train Aerodynamic Performance and Slipstream

The high-speed movement of trains generates train-induced wind, commonly referred to as slipstream, which presents a specific safety concern for passengers and personnel. Yet, the fastening system employed to secure ballastless tracks, characterised by its complex shape, substantial quantity, and de...

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Main Authors: Y. Ma, J. Zhang, J. Shi, Y. Cao
Format: Article
Language:English
Published: Isfahan University of Technology 2024-11-01
Series:Journal of Applied Fluid Mechanics
Subjects:
Online Access:https://www.jafmonline.net/article_2556_9fae984c5a78c671775e2b94a9dcef0c.pdf
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author Y. Ma
J. Zhang
J. Shi
Y. Cao
author_facet Y. Ma
J. Zhang
J. Shi
Y. Cao
author_sort Y. Ma
collection DOAJ
description The high-speed movement of trains generates train-induced wind, commonly referred to as slipstream, which presents a specific safety concern for passengers and personnel. Yet, the fastening system employed to secure ballastless tracks, characterised by its complex shape, substantial quantity, and dense arrangement, remains inadequately investigated regarding its influence on train aerodynamics. In the present study, a sliding mesh technique was employed to comparatively examine the impact of different track configurations—trackless, track-only, and track with a fastening system—on the aerodynamic characteristics, slipstream formation, and wake turbulence induced by trains. The results indicate that the tracks and the fastening system increased the drag force coefficient by 0.73% and 2.05%, respectively, compared with no track. Additionally, tracks and the fastening system had a significant impact on the slipstream velocity near the train and ground. Tracks notably altered the shape of the wake near the ground, and the fastening system exacerbated this phenomenon. Further, the fastening system further intensified the generation of secondary vortices at track and footstep locations.
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publisher Isfahan University of Technology
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spelling doaj-art-74742ba0da9e4e279a0d19a5ea8990f82024-11-10T06:28:18ZengIsfahan University of TechnologyJournal of Applied Fluid Mechanics1735-35721735-36452024-11-0118126027310.47176/jafm.18.1.26872556Numerical Study of the Effect of Rail Modelling Method on Train Aerodynamic Performance and SlipstreamY. Ma0J. Zhang1J. Shi2Y. Cao3State Key Laboratory of Rail Transit Vehicle System, Southwest Jiaotong University, Chengdu, Sichuan Province, 610031, ChinaState Key Laboratory of Rail Transit Vehicle System, Southwest Jiaotong University, Chengdu, Sichuan Province, 610031, ChinaState Key Laboratory of Rail Transit Vehicle System, Southwest Jiaotong University, Chengdu, Sichuan Province, 610031, ChinaState Key Laboratory of Rail Transit Vehicle System, Southwest Jiaotong University, Chengdu, Sichuan Province, 610031, ChinaThe high-speed movement of trains generates train-induced wind, commonly referred to as slipstream, which presents a specific safety concern for passengers and personnel. Yet, the fastening system employed to secure ballastless tracks, characterised by its complex shape, substantial quantity, and dense arrangement, remains inadequately investigated regarding its influence on train aerodynamics. In the present study, a sliding mesh technique was employed to comparatively examine the impact of different track configurations—trackless, track-only, and track with a fastening system—on the aerodynamic characteristics, slipstream formation, and wake turbulence induced by trains. The results indicate that the tracks and the fastening system increased the drag force coefficient by 0.73% and 2.05%, respectively, compared with no track. Additionally, tracks and the fastening system had a significant impact on the slipstream velocity near the train and ground. Tracks notably altered the shape of the wake near the ground, and the fastening system exacerbated this phenomenon. Further, the fastening system further intensified the generation of secondary vortices at track and footstep locations.https://www.jafmonline.net/article_2556_9fae984c5a78c671775e2b94a9dcef0c.pdfhigh-speed trainslipstreamtrackfastening systemaerodynamicwake
spellingShingle Y. Ma
J. Zhang
J. Shi
Y. Cao
Numerical Study of the Effect of Rail Modelling Method on Train Aerodynamic Performance and Slipstream
Journal of Applied Fluid Mechanics
high-speed train
slipstream
track
fastening system
aerodynamic
wake
title Numerical Study of the Effect of Rail Modelling Method on Train Aerodynamic Performance and Slipstream
title_full Numerical Study of the Effect of Rail Modelling Method on Train Aerodynamic Performance and Slipstream
title_fullStr Numerical Study of the Effect of Rail Modelling Method on Train Aerodynamic Performance and Slipstream
title_full_unstemmed Numerical Study of the Effect of Rail Modelling Method on Train Aerodynamic Performance and Slipstream
title_short Numerical Study of the Effect of Rail Modelling Method on Train Aerodynamic Performance and Slipstream
title_sort numerical study of the effect of rail modelling method on train aerodynamic performance and slipstream
topic high-speed train
slipstream
track
fastening system
aerodynamic
wake
url https://www.jafmonline.net/article_2556_9fae984c5a78c671775e2b94a9dcef0c.pdf
work_keys_str_mv AT yma numericalstudyoftheeffectofrailmodellingmethodontrainaerodynamicperformanceandslipstream
AT jzhang numericalstudyoftheeffectofrailmodellingmethodontrainaerodynamicperformanceandslipstream
AT jshi numericalstudyoftheeffectofrailmodellingmethodontrainaerodynamicperformanceandslipstream
AT ycao numericalstudyoftheeffectofrailmodellingmethodontrainaerodynamicperformanceandslipstream