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SIMULATION OF THE STRUCTURAL MODIFICATIONS OF A DISC BRAKE SYSTEM TO REDUCE BRAKE SQUEAL

机译:盘式制动系统的结构修改模拟以减小制动尖叫

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摘要

The noise and vibration generated by the braking system in passenger cars are important technical and economic problems in the automotive industry. In recent years, the finite element (FE) method has been found to be a useful tool in predicting the occurrence of noise in a particular brake system during the design stage. This paper presents a more refined FE model of the disc brake corner that includes the wheel hub and steering knuckle. The model is an extension of earlier FE disc brake models. Experimental modal analysis of the disc brake system is initially used to validate the FE model. The unstable frequencies were then predicted by applying a complex eigenvalue analysis to the FE model. Finally, a number of structural modifications are made and simulated to evaluate brake squeal at the design stage. From the predicted results, it is found that the most significant improvements in brake squeal performance could be achieved by using an aluminium metal matrix composite brake rotor, steel calliper, and steel bracket. It is also found that a stiffer friction material with a diagonal slot could reduce the propensity for brake squeal.
机译:乘用车制动系统产生的噪音和振动是汽车工业中的重要技术和经济问题。近年来,已经发现有限元(FE)方法是在设计阶段预测特定制动系统中噪声发生的有用工具。本文提出了一种更完善的盘式制动角有限元模型,其中包括轮毂和转向节。该模型是早期FE盘式制动器模型的扩展。盘式制动器系统的实验模态分析最初用于验证FE模型。然后通过对FE模型应用复杂特征值分析来预测不稳定频率。最后,在设计阶段进行了许多结构上的修改并进行了仿真,以评估制动器的尖叫声。从预测结果可以发现,通过使用铝金属基复合材料制动转子,钢制卡钳和钢制支架,可以最大程度地提高制动啸叫性能。还发现具有对角线槽的较硬的摩擦材料可降低制动尖叫的可能性。

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