The Numerical Study for the Effect of Stiffness Matching on Wheel–Rail Curve Squeal Noise

Author:

Gao Yanxin1,Zhang Gongde2,Yuan Miaomiao3,Ji Jianyi4ORCID,Cui Nannan5,Huang Shiping2ORCID

Affiliation:

1. Tianjin Municipal Engineering Design & Research Institute, Tianjin 300392, China

2. School of Civil Engineering and Transportation, South China University of Technology, Guangzhou 510640, China

3. School of Civil Engineering, Guangzhou City University of Technology, Guangzhou 510800, China

4. China-Singapore International Joint Research Institute, Guangzhou 511363, China

5. School of Transportation Engineering, Shandong Jianzhu University, Jinan 250101, China

Abstract

This study delves into the phenomenon of high-frequency squeal noise occurring as trains traverse small-radius curved tracks and investigates the factors influencing wheel–rail curve squeal noise, particularly focusing on stiffness matching. To achieve this, we initially construct a finite element model of the wheel–rail friction system using finite element software ABAQUS 2022, validating its accuracy against Coulomb’s friction law. Subsequently, we employ complex eigenvalue analysis to extract the complex eigenvalues and vibration modes of the wheel–rail system, enabling us to study the positions and vibrational patterns associated with squeal noise by analyzing the amplitudes of unstable modes. Finally, we assess the impact of wheel–rail stiffness matching on curve squeal noise, using wheel–rail material stiffness and rail support stiffness as key variables. The outcomes of this study reveal the following insights: (1) Unstable modes closely align with the resonant frequency and mode shape of the wheel and rail. (2) Curve squeal noise primarily emanates from vibrations at the rim, railhead, and rail foot. (3) Wheel and rail stiffness significantly affect squeal noise, with a significant deviation in the elastic modulus between rail and wheel increasing the likelihood of squeal noise, while an optimal ratio of about 1.2 is observed. (4) Rail support stiffness plays a discernible role in controlling curve squeal noise. Theoretically, maintaining an appropriate support stiffness level can minimize the negative damping ratio of unstable modes, providing a viable avenue for curve squeal noise control.

Funder

Fundamental Research Funds for the Central Universities

Shandong Provincial Natural Fund Project

Science and Technology Planning Project of Guangdong Province

Publisher

MDPI AG

Subject

Fluid Flow and Transfer Processes,Computer Science Applications,Process Chemistry and Technology,General Engineering,Instrumentation,General Materials Science

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