Study on unsteady aerodynamic characteristics of two trains passing by each other in the open air

Based on three-dimensional, non-steady, compressive and unsteady control equations and k-ε turbulence model, the paper adopts the finite volume method and moving grid technologies to conduct a numerical simulation analysis on pressure waves and aerodynamic forces (force moments) of two meeting train...

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Main Authors: Ye-gang Chen, Qian Wu
Format: Article
Language:English
Published: JVE International 2018-03-01
Series:Journal of Vibroengineering
Subjects:
Online Access:https://www.jvejournals.com/article/18695
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spelling doaj-f3ec5b14f0fd4aa3ac58c373173e0a5a2020-11-24T21:19:53ZengJVE InternationalJournal of Vibroengineering1392-87162538-84602018-03-012021161117810.21595/jve.2018.1869518695Study on unsteady aerodynamic characteristics of two trains passing by each other in the open airYe-gang Chen0Qian Wu1School of Computer Engineering, Yangtze Normal University, Chongqing, ChinaSchool of Computer Engineering, Yangtze Normal University, Chongqing, ChinaBased on three-dimensional, non-steady, compressive and unsteady control equations and k-ε turbulence model, the paper adopts the finite volume method and moving grid technologies to conduct a numerical simulation analysis on pressure waves and aerodynamic forces (force moments) of two meeting trains in the open air. The simulation model has been validated by experimental test. Computational results show that during the meeting, the damage of the lateral window glass during the meeting is caused by that the window glass will be sucked out by negative pressures rather than be hit by positive pressures; both head wave pressure amplitude and tail wave pressure amplitude are in direct ratios to the square of the running speed; resistance values of the head and tail train experienced several changes, but the changing rules of the head train are opposed to those of the tail train; the lift force of the head train is downward all the time, the lift force is more than that of other train bodies, and lift force directions of the middle train and the tail train change alternately; the head train has the largest lateral force, the tail train ranks the second position, and the middle train ranks the last position; each train experiences 6 shaking force moment impacts including outward, inward, outward, inward, outward and inward impacts in succession; each train experiences 6 nodding force moment impacts, including downward, upward, downward, upward, downward and upward impacts, in succession.https://www.jvejournals.com/article/18695high-speed traincomputational fluid dynamicstwo trains passing by each otherunsteady aerodynamicsaerodynamic forceaerodynamic force moment
collection DOAJ
language English
format Article
sources DOAJ
author Ye-gang Chen
Qian Wu
spellingShingle Ye-gang Chen
Qian Wu
Study on unsteady aerodynamic characteristics of two trains passing by each other in the open air
Journal of Vibroengineering
high-speed train
computational fluid dynamics
two trains passing by each other
unsteady aerodynamics
aerodynamic force
aerodynamic force moment
author_facet Ye-gang Chen
Qian Wu
author_sort Ye-gang Chen
title Study on unsteady aerodynamic characteristics of two trains passing by each other in the open air
title_short Study on unsteady aerodynamic characteristics of two trains passing by each other in the open air
title_full Study on unsteady aerodynamic characteristics of two trains passing by each other in the open air
title_fullStr Study on unsteady aerodynamic characteristics of two trains passing by each other in the open air
title_full_unstemmed Study on unsteady aerodynamic characteristics of two trains passing by each other in the open air
title_sort study on unsteady aerodynamic characteristics of two trains passing by each other in the open air
publisher JVE International
series Journal of Vibroengineering
issn 1392-8716
2538-8460
publishDate 2018-03-01
description Based on three-dimensional, non-steady, compressive and unsteady control equations and k-ε turbulence model, the paper adopts the finite volume method and moving grid technologies to conduct a numerical simulation analysis on pressure waves and aerodynamic forces (force moments) of two meeting trains in the open air. The simulation model has been validated by experimental test. Computational results show that during the meeting, the damage of the lateral window glass during the meeting is caused by that the window glass will be sucked out by negative pressures rather than be hit by positive pressures; both head wave pressure amplitude and tail wave pressure amplitude are in direct ratios to the square of the running speed; resistance values of the head and tail train experienced several changes, but the changing rules of the head train are opposed to those of the tail train; the lift force of the head train is downward all the time, the lift force is more than that of other train bodies, and lift force directions of the middle train and the tail train change alternately; the head train has the largest lateral force, the tail train ranks the second position, and the middle train ranks the last position; each train experiences 6 shaking force moment impacts including outward, inward, outward, inward, outward and inward impacts in succession; each train experiences 6 nodding force moment impacts, including downward, upward, downward, upward, downward and upward impacts, in succession.
topic high-speed train
computational fluid dynamics
two trains passing by each other
unsteady aerodynamics
aerodynamic force
aerodynamic force moment
url https://www.jvejournals.com/article/18695
work_keys_str_mv AT yegangchen studyonunsteadyaerodynamiccharacteristicsoftwotrainspassingbyeachotherintheopenair
AT qianwu studyonunsteadyaerodynamiccharacteristicsoftwotrainspassingbyeachotherintheopenair
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