Comparison of the theoretical and experimental coefficient of friction for the brake disc-brake pad system

Mrunal P. Kshirsagar, H. Khairnar
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Abstract

Contact between the automotive brake pad and the disc is mathematically modelled to estimate the coefficient of friction (COF). The mathematical model is proposed for the prognosis of the COF of brake pad material, by considering the contact mechanics between the interfacing surface and their material properties. The Greenwood-Williamson contact model is applied for rough contact surfaces for the estimation of the real contact radius. A MATLAB program has been formulated for generating the surface of brake pad material by considering its material properties which aid in the analytical evaluation of the COF. The proposed model is further validated with experimentation on pin-on-disc apparatus, as it is considered suitable for friction pad product testing according to previous research. The 25 pins were fabricated as per the ASTM G99 test for testing under varying loads and speeds. The obtained results showed that the range of COF has been between 0.2 and 0.4. The investigation presents an analytical approach for estimating COF and contact radius for brake disc and brake pad, which can be used to design an efficient automotive brake disc-brake pad system under the given load and rotational speed. The artificial neural network (ANN) is modelled for predicting the values of the COF for brake disc-brake pad systems, which can be further used for determining the tribological properties of new friction materials and their compatibility for efficient brake systems.
制动盘-刹车片系统摩擦系数的理论与实验比较
对汽车刹车片与制动盘之间的接触进行了数学建模,以估计摩擦系数。考虑接触面接触力学及其材料性能,建立了预测刹车片材料COF的数学模型。对于粗糙的接触面,采用Greenwood-Williamson接触模型估计实际接触半径。在考虑刹车片材料性能的基础上,编制了一个生成刹车片材料表面的MATLAB程序,为COF的分析评价提供了依据。通过在针盘式装置上的实验进一步验证了该模型的有效性,根据前人的研究认为该模型适用于摩擦垫产品的测试。25个销钉按照ASTM G99测试制造,用于在不同负载和速度下进行测试。结果表明,COF的取值范围在0.2 ~ 0.4之间。该研究提出了一种估算制动盘与刹车片COF和接触半径的解析方法,可用于在给定载荷和转速下设计高效的汽车制动盘-刹车片系统。建立了基于人工神经网络的制动盘-刹车片系统COF预测模型,为确定新型摩擦材料的摩擦学性能及其与高效制动系统的相容性提供了理论依据。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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