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Estimation of automotive brake drum-shoe interface friction coefficient under varying conditions of longitudinal forces using Simulink

机译:使用Simulink估算在不同纵向力条件下的汽车制动鼓-蹄面摩擦系数

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Abstract The suitable brake torque at the shoe-drum interface is the prerequisite of the active safety control. Estimation of accurate brake torque under varying conditions is predominantly the function of friction coefficient at the shoe-drum interface. The extracted friction coefficient has been used in the antilock braking system (ABS) algorithm to plot the μ -slip curve. The longitudinal forces like Coulomb friction force, contact force and actuating forces at the shoe ends are resolved under the equilibrium condition. The computation of the friction coefficient is presented for the symmetric and asymmetric length of the drum shoes to track the variations in the longitudinal forces. The classical mechanics formulae considering friction are simulated using virtual environment in Matlab/Simulink for the distribution of the Coulomb force. The dual air braking system set up operated at the 8 bar pressure is used to acquire data for the input parameters like distance of Coulomb friction force, distance of pivot point, and contact force applied. The evolved estimation algorithm extracted the maximum friction coefficient of 0.7 for the normal force arrangement of the contact force at the symmetric shoe length, while friction coefficient in the range of 0.3–0.7 is obtained at the asymmetric shoe length.
机译:摘要蹄鼓接口处合适的制动扭矩是主动安全控制的前提。在不同条件下估算精确的制动扭矩主要是蹄鼓接触面的摩擦系数的函数。提取的摩擦系数已在防抱死制动系统(ABS)算法中用于绘制μ滑移曲线。在平衡条件下,纵向力如库仑摩擦力,接触力和靴端的致动力得以分解。给出了摩擦系数的计算方法,用于计算鼓靴的对称和非对称长度,以跟踪纵向力的变化。在Matlab / Simulink中使用虚拟环境模拟了考虑摩擦的经典力学公式以分配库仑力。设置在8 bar压力下运行的双空气制动系统用于获取输入参数的数据,例如库仑摩擦力的距离,枢轴点的距离和所施加的接触力。演化估计算法提取了在对称靴长处接触力的法向力布置的最大摩擦系数0.7,而在非对称靴长处获得的摩擦系数在0.3-0.7范围内。

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