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A Conceptual Design Method of Disc Brake Systems for Reducing Brake Squeal Considering Pressure Distribution Variations

机译:考虑压力分布变化的减小碟刹的碟刹系统概念设计方法

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摘要

This paper proposes a design optimization method for disc brake systems that specifically aims to reduce brake squeal, with robustness against changes on contact surface pressure distribution, based on the concept of First Order Analysis. First, a simplified analysis model is constructed in which a pressure distribution parameter is introduced, and the relationships between the occurrence of brake squeal and the characteristics of various components is then clarified, using the simplified model. Next, a new design performance measure that takes pressure distribution changes over the contact surfaces into account is proposed for evaluating brake squeal performance, and an optimization problem is formulated in which this performance measure is used as a constraint condition, with maximization of the brake-pad contact area as the objective function. The optimization problem is solved using a genetic algorithm. The proposed method is then applied to design problems and a disc brake system is constructed based on an optimal solution. Finally, experimental studies are conducted to confirm that the proposed method can yield optimal designs that minimize brake squeal and are robust against pressure distribution changes.
机译:本文基于一阶分析的概念,提出了一种针对盘式制动系统的设计优化方法,该方法旨在减少制动尖叫声,并具有抵御接触表面压力分布变化的鲁棒性。首先,构建简化的分析模型,在其中引入压力分布参数,然后使用简化的模型阐明制动尖叫声的发生与各个组件的特性之间的关系。接下来,提出了一种新的设计性能度量,该度量将接触面上的压力分布变化考虑在内,以评估制动器的尖叫性能,并提出了一个优化问题,其中将该性能度量用作约束条件,从而最大程度地提高了制动性能垫接触面积作为目标函数。使用遗传算法解决了优化问题。然后将所提出的方法应用于设计问题,并基于最佳解决方案构造了盘式制动系统。最后,进行实验研究以确认所提出的方法可以产生使制动尖叫最小化并且对压力分布变化具有鲁棒性的最佳设计。

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