A novel analysis model for friction-induced vibration coupling microscopic contact characteristics and system structural parameters

IF 8.2 1区 工程技术 Q1 ENGINEERING, MECHANICAL
Hongyi Liao, Zaiyu Xiang, Guohong Liu, Anyu Wang, Xiaocui Wang, Deqiang He
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Abstract

The microscopic topography of friction surfaces and system structural parameters are both critical factors influencing the characteristics of friction-induced vibration (FIV). However, no existing analytical model for FIV has incorporated these factors. To address this issue, we developed a novel coupled model to explore the combined effects of surface microscopic topography and structural parameters on the FIV characteristics. Furthermore, we conducted two friction-induced vibration and noise (FIVN) simulation experiments to validate the conclusions derived from the numerical simulations. The results showed a strong correlation between the microscopic surface morphological parameters and the friction surface's contact properties. A higher fractal dimension increases contact stiffness, whereas a larger fractal scale factor reduces contact stiffness. The contact damping initially increases and then decreases with changes in the fractal dimension. The surface microscopic parameters significantly affect the modal coupling characteristics and FIV. In a certain range of fractal dimension, modal coupling takes place in the friction system, and with an increase in the fractal scale factor, the region of system instability also grows. FIVN simulation experiments showed that smoother friction surfaces tend to result in high-intensity FIVN. Regarding the structural parameters, when the contact interface has a large fractal dimension and scale factor, structural changes do not significantly affect the system's modal coupling. However, when these parameters decrease, structural parameters exert a more substantial influence on modal coupling. In particular, when both the fractal dimension and scale factor are small, a reduced block thickness does not affect system stability, and FIV also minimal. As the thickness increases, modal coupling and unstable vibrations emerge in the system. Thus, for new brake pads with large block thicknesses, such as those used in high-speed trains, increasing the fractal dimension and scale factor of the friction surface is recommended to reduce high-intensity FIVN in the saturation stage.

Abstract Image

一种摩擦激振耦合微观接触特性与系统结构参数的分析模型
摩擦表面的微观形貌和系统结构参数都是影响摩擦激振特性的关键因素。然而,现有的FIV分析模型没有纳入这些因素。为了解决这一问题,我们开发了一个新的耦合模型来探索表面微观形貌和结构参数对FIV特性的综合影响。此外,我们还进行了两次摩擦振动和噪声(FIVN)模拟实验来验证数值模拟的结论。结果表明,摩擦表面的微观形貌参数与摩擦表面的接触性能有很强的相关性。较高的分形维数会增加接触刚度,而较大的分形尺度因子会降低接触刚度。随着分形维数的变化,接触阻尼先增大后减小。表面微观参数对模态耦合特性和FIV有显著影响。在一定的分形维数范围内,摩擦系统发生模态耦合,随着分形尺度因子的增大,系统不稳定区域也随之增大。FIVN仿真实验表明,光滑的摩擦表面容易产生高强度的FIVN。在结构参数方面,当接触界面具有较大的分形维数和尺度因子时,结构变化对系统的模态耦合影响不显著。当这些参数减小时,结构参数对模态耦合的影响更大。特别是当分形维数和尺度因子均较小时,减小块厚不影响系统稳定性,且FIV也最小。随着厚度的增加,系统会出现模态耦合和不稳定振动。因此,对于新型大块厚刹车片,如高速列车使用的刹车片,建议增加摩擦面的分形维数和比例因子,以减少饱和阶段的高强度FIVN。
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来源期刊
Friction
Friction Engineering-Mechanical Engineering
CiteScore
12.90
自引率
13.20%
发文量
324
审稿时长
13 weeks
期刊介绍: Friction is a peer-reviewed international journal for the publication of theoretical and experimental research works related to the friction, lubrication and wear. Original, high quality research papers and review articles on all aspects of tribology are welcome, including, but are not limited to, a variety of topics, such as: Friction: Origin of friction, Friction theories, New phenomena of friction, Nano-friction, Ultra-low friction, Molecular friction, Ultra-high friction, Friction at high speed, Friction at high temperature or low temperature, Friction at solid/liquid interfaces, Bio-friction, Adhesion, etc. Lubrication: Superlubricity, Green lubricants, Nano-lubrication, Boundary lubrication, Thin film lubrication, Elastohydrodynamic lubrication, Mixed lubrication, New lubricants, New additives, Gas lubrication, Solid lubrication, etc. Wear: Wear materials, Wear mechanism, Wear models, Wear in severe conditions, Wear measurement, Wear monitoring, etc. Surface Engineering: Surface texturing, Molecular films, Surface coatings, Surface modification, Bionic surfaces, etc. Basic Sciences: Tribology system, Principles of tribology, Thermodynamics of tribo-systems, Micro-fluidics, Thermal stability of tribo-systems, etc. Friction is an open access journal. It is published quarterly by Tsinghua University Press and Springer, and sponsored by the State Key Laboratory of Tribology (TsinghuaUniversity) and the Tribology Institute of Chinese Mechanical Engineering Society.
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