An inverse dynamics method for railway vehicle systems

The wheel–rail action will obviously be increased during the vehicles in high-speed operation state. However, in many practical cases, direct measurement of the wheel–rail contact forces cannot be performed with traditional procedures and transducers. An inverse mathematical dynamic model for the e...

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Main Authors: Tao Zhu, Shoune Xiao, Guangwu Yang, Weihua Ma, Zhixin Zhang
Format: Article
Language:English
Published: Vilnius Gediminas Technical University 2014-03-01
Series:Transport
Subjects:
Online Access:https://journals.vgtu.lt/index.php/Transport/article/view/1779
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spelling doaj-7d48d0256ec449d6a66bb4aafca56fee2021-07-02T14:14:45ZengVilnius Gediminas Technical UniversityTransport1648-41421648-34802014-03-0129110.3846/16484142.2013.789979An inverse dynamics method for railway vehicle systemsTao Zhu0Shoune Xiao1Guangwu Yang2Weihua Ma3Zhixin Zhang4State Key Laboratory of Traction Power, Southwest Jiaotong University, 610031 Chengdu, ChinaState Key Laboratory of Traction Power, Southwest Jiaotong University, 610031 Chengdu, ChinaState Key Laboratory of Traction Power, Southwest Jiaotong University, 610031 Chengdu, ChinaState Key Laboratory of Traction Power, Southwest Jiaotong University, 610031 Chengdu, ChinaState Key Laboratory of Traction Power, Southwest Jiaotong University, 610031 Chengdu, China The wheel–rail action will obviously be increased during the vehicles in high-speed operation state. However, in many practical cases, direct measurement of the wheel–rail contact forces cannot be performed with traditional procedures and transducers. An inverse mathematical dynamic model for the estimation of wheel–rail contact forces from measured accelerations was developed. The inverse model is a non-iteration recurrence method to identify the time history of input excitation based on the dynamic programming equation. Furthermore, the method overcomes the weakness of large fluctuations which exist in current inverse techniques. Based on the inverse dynamic model, a high-speed vehicle multibody model with twenty-seven Degree of Freedoms (DOFs) is established. With the measured responses as input, the inverse vehicle model can not only identify the responses in other parts of vehicle, but also identify the vertical and lateral wheel–rail forces respectively. Results from the inverse model were compared with experiment data. In a more complex operating condition, the inverse model was also compared with results from simulations calculated by SIMPACK. First published online: 22 May 2013 https://journals.vgtu.lt/index.php/Transport/article/view/1779high-speed traininverse dynamic model wheel–rail interactioncontact forcesidentify responserailway
collection DOAJ
language English
format Article
sources DOAJ
author Tao Zhu
Shoune Xiao
Guangwu Yang
Weihua Ma
Zhixin Zhang
spellingShingle Tao Zhu
Shoune Xiao
Guangwu Yang
Weihua Ma
Zhixin Zhang
An inverse dynamics method for railway vehicle systems
Transport
high-speed train
inverse dynamic model wheel–rail interaction
contact forces
identify response
railway
author_facet Tao Zhu
Shoune Xiao
Guangwu Yang
Weihua Ma
Zhixin Zhang
author_sort Tao Zhu
title An inverse dynamics method for railway vehicle systems
title_short An inverse dynamics method for railway vehicle systems
title_full An inverse dynamics method for railway vehicle systems
title_fullStr An inverse dynamics method for railway vehicle systems
title_full_unstemmed An inverse dynamics method for railway vehicle systems
title_sort inverse dynamics method for railway vehicle systems
publisher Vilnius Gediminas Technical University
series Transport
issn 1648-4142
1648-3480
publishDate 2014-03-01
description The wheel–rail action will obviously be increased during the vehicles in high-speed operation state. However, in many practical cases, direct measurement of the wheel–rail contact forces cannot be performed with traditional procedures and transducers. An inverse mathematical dynamic model for the estimation of wheel–rail contact forces from measured accelerations was developed. The inverse model is a non-iteration recurrence method to identify the time history of input excitation based on the dynamic programming equation. Furthermore, the method overcomes the weakness of large fluctuations which exist in current inverse techniques. Based on the inverse dynamic model, a high-speed vehicle multibody model with twenty-seven Degree of Freedoms (DOFs) is established. With the measured responses as input, the inverse vehicle model can not only identify the responses in other parts of vehicle, but also identify the vertical and lateral wheel–rail forces respectively. Results from the inverse model were compared with experiment data. In a more complex operating condition, the inverse model was also compared with results from simulations calculated by SIMPACK. First published online: 22 May 2013
topic high-speed train
inverse dynamic model wheel–rail interaction
contact forces
identify response
railway
url https://journals.vgtu.lt/index.php/Transport/article/view/1779
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