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基于转向架振动响应分析的铁路车辆悬挂减振器状态监测

Condition Monitoring of the Dampers in the Railway Vehicle Suspension Based on the Vibrations Response Analysis of the Bogie.

机构信息

Department of Railway Vehicles, University Politehnica of Bucharest, 060042 București, Romania.

出版信息

Sensors (Basel). 2022 Apr 25;22(9):3290. doi: 10.3390/s22093290.

DOI:10.3390/s22093290
PMID:35590979
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC9100782/
Abstract

This paper investigates the possibility of developing a new method for fault detection of a damper in the primary suspension of the railway vehicle, based on the analysis of the vertical vibration's response of the bogie. To this purpose, experimental data are used, along with results from numerical simulations regarding the Root Mean Square (RMS) accelerations measured/simulated in four reference bogie points-two points on the chassis, against the suspension, and two points located against the axle boxes. The experimental data are utilized to define the normal area of operating and the damper failure area in the bogie primary suspension, as well as a basis for validating the results of numerical simulations. The numerical simulations are developed on the basis of two original models of the vehicle-track system, rigid-flexible coupled type, which take into account the elasticity of the vehicle carbody and the elasticity of the wheel-rail contact: a reference model with 15 degrees of freedom, for simulating the bogie response to vertical vibrations for the normal operating of the primary suspension dampers, and an extended model with 20 degrees of freedom, for simulating the bogie vibration response to the failure damper of a primary suspension. The presented results show that there are clear premises on the possibilities of developing a fault detection method of any of the four dampers of the primary suspension corresponding to a vehicle bogie, based on the RMS accelerations measured only in two reference points of the bogie.

摘要

本文基于转向架垂直振动响应分析,研究了在铁路车辆一系悬挂中开发一种新的减振器故障检测方法的可能性。为此,使用了实验数据以及数值模拟结果,其中包括在四个参考转向架点(底盘上的两个点、悬挂处的两个点)测量/模拟的均方根 (RMS) 加速度。实验数据用于定义转向架一系悬挂的正常工作区域和减振器故障区域,并为数值模拟结果提供验证基础。数值模拟基于两个原始的车辆-轨道系统刚柔耦合模型进行开发,考虑了车辆车体的弹性和轮轨接触的弹性:一个具有 15 个自由度的参考模型,用于模拟减振器正常工作时转向架对垂直振动的响应,以及一个具有 20 个自由度的扩展模型,用于模拟一系悬挂减振器失效时转向架的振动响应。结果表明,仅基于转向架两个参考点测量的 RMS 加速度,就有可能为车辆转向架的四个一系悬挂减振器中的任何一个开发故障检测方法。

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