Validation and Analysis on Numerical Response of Super-High-Speed Railway Pantograph-Catenary Interaction Based on Experimental Test
The numerical tools can be used to facilitate the design of the railway pantograph-catenary system. The validation of the current numerical results is mostly performed at a speed slower than 350 km/h. This paper aims at the validation and analysis of the numerical results at a super-high-speed. The...
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Hindawi Limited
2021-01-01
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Series: | Shock and Vibration |
Online Access: | http://dx.doi.org/10.1155/2021/9922404 |
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doaj-2809dcf8a25a4faebdaf7acd627577b12021-08-30T00:01:21ZengHindawi LimitedShock and Vibration1875-92032021-01-01202110.1155/2021/9922404Validation and Analysis on Numerical Response of Super-High-Speed Railway Pantograph-Catenary Interaction Based on Experimental TestJia Yang0Yang Song1Xiaobing Lu2Fuchuan Duan3Zhigang Liu4Ke Chen5National Rail Transit Electrification and Automation Engineering Technique Research CentreDepartment of Structural EngineeringChina Railway Eryuan Engineering Group CO. LTD.,National Rail Transit Electrification and Automation Engineering Technique Research CentreNational Rail Transit Electrification and Automation Engineering Technique Research CentreChina Railway Eryuan Engineering Group CO. LTD.,The numerical tools can be used to facilitate the design of the railway pantograph-catenary system. The validation of the current numerical results is mostly performed at a speed slower than 350 km/h. This paper aims at the validation and analysis of the numerical results at a super-high-speed. The catenary model is constructed based on a nonlinear finite element approach employing the absolute nodal coordinate formulation. A multibody dynamics model is adopted to represent the pantograph. The measurement data are collected by an inspection vehicle equipped with an instrumented pantograph operating at 378 km/h in Chengdu-Chongqing high-speed line. Comparing the numerical simulation and the field test shows that the present pantograph-catenary model can provide reliable numerical results at 378 km/h. The numerical analysis of pantograph-catenary interaction at super-high-speed shows that the trailing pantograph performance does not comply with the assessment standard at 378 km/h. The adjustment of double-pantograph interval and messenger wire tension can effectively improve the trailing pantograph performance.http://dx.doi.org/10.1155/2021/9922404 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Jia Yang Yang Song Xiaobing Lu Fuchuan Duan Zhigang Liu Ke Chen |
spellingShingle |
Jia Yang Yang Song Xiaobing Lu Fuchuan Duan Zhigang Liu Ke Chen Validation and Analysis on Numerical Response of Super-High-Speed Railway Pantograph-Catenary Interaction Based on Experimental Test Shock and Vibration |
author_facet |
Jia Yang Yang Song Xiaobing Lu Fuchuan Duan Zhigang Liu Ke Chen |
author_sort |
Jia Yang |
title |
Validation and Analysis on Numerical Response of Super-High-Speed Railway Pantograph-Catenary Interaction Based on Experimental Test |
title_short |
Validation and Analysis on Numerical Response of Super-High-Speed Railway Pantograph-Catenary Interaction Based on Experimental Test |
title_full |
Validation and Analysis on Numerical Response of Super-High-Speed Railway Pantograph-Catenary Interaction Based on Experimental Test |
title_fullStr |
Validation and Analysis on Numerical Response of Super-High-Speed Railway Pantograph-Catenary Interaction Based on Experimental Test |
title_full_unstemmed |
Validation and Analysis on Numerical Response of Super-High-Speed Railway Pantograph-Catenary Interaction Based on Experimental Test |
title_sort |
validation and analysis on numerical response of super-high-speed railway pantograph-catenary interaction based on experimental test |
publisher |
Hindawi Limited |
series |
Shock and Vibration |
issn |
1875-9203 |
publishDate |
2021-01-01 |
description |
The numerical tools can be used to facilitate the design of the railway pantograph-catenary system. The validation of the current numerical results is mostly performed at a speed slower than 350 km/h. This paper aims at the validation and analysis of the numerical results at a super-high-speed. The catenary model is constructed based on a nonlinear finite element approach employing the absolute nodal coordinate formulation. A multibody dynamics model is adopted to represent the pantograph. The measurement data are collected by an inspection vehicle equipped with an instrumented pantograph operating at 378 km/h in Chengdu-Chongqing high-speed line. Comparing the numerical simulation and the field test shows that the present pantograph-catenary model can provide reliable numerical results at 378 km/h. The numerical analysis of pantograph-catenary interaction at super-high-speed shows that the trailing pantograph performance does not comply with the assessment standard at 378 km/h. The adjustment of double-pantograph interval and messenger wire tension can effectively improve the trailing pantograph performance. |
url |
http://dx.doi.org/10.1155/2021/9922404 |
work_keys_str_mv |
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