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Case study: Identification of brake squeal source mechanism through experimental and computational approaches

机译:案例研究:通过实验和计算方法识别制动尖端源机制

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In this case study, mechanism leading to squeal noise in an automotive disc brake system is investigated with focus on systematic laboratory experiments and associated computational models. First, experimental modal analyses are conducted on the brake corner assembly components, and the natural frequencies and corresponding mode shapes are obtained. Second, finite element models of same components are developed, updated and validated by comparing predicted modal characteristics with those measured. Third, a controlled laboratory experiment is designed, constructed and operated in a semi-anechoic room. Experiments are conducted at many operational disc speeds and brake line pressures, and acceleration on the caliper and sound pressure are measured. Squeal events at distinct frequencies are successfully identified in the experiments. Fourth, a comprehensive computational model of the brake corner assembly is constructed using validated component models, and squeal investigation is then conducted through complex eigenvalue analyses while mimicking the operational conditions of experiments. The system model yields unstable frequencies at several operational conditions. It is observed that experimentally detected squeal frequencies match well with predicted unstable frequencies. Finally, operational deflection shape measurements on the caliper are also carried out during squeal events, and the predictions are found to be similar to those measured. In conclusion, the squeal generation mechanism of the brake system is understood from the perspective of friction-induced modal coupling, and an experimentally validated computational model of the brake system is successfully developed that may be used to find solutions to mitigate squeal. (C) 2020 Institute of Noise Control Engineering.
机译:在这种情况下,通过专注于系统实验室实验和相关的计算模型,研究了导致汽车盘制动系统中尖叫噪声的机制。首先,在制动杆组件部件上进行实验模态分析,并且获得自然频率和相应的模式形状。其次,通过将预测的模态特性与测量值进行比较,开发,更新和验证了相同组件的有限元模型。第三,在半透道室中设计,构造和操作的受控实验室实验。实验在许多操作盘速度和制动管线压力下进行,并测量卡钳和声压的加速度。在实验中成功识别出不同频率的尖叫事件。第四,使用经过验证的组件模型构建制动角组件的综合计算模型,然后通过复杂的特征值分析进行尖叫性研究,同时模拟实验的操作条件。系统模型在若干操作条件下产生不稳定的频率。观察到,通过预测的不稳定频率匹配实验检测的尖端频率。最后,在尖叫事件期间还执行卡钳上的操作偏转形状测量,并且发现预测类似于测量的预测。总之,从摩擦诱导的模态耦合的角度理解制动系统的尖叫机构,并且成功地开发了制动系统的实验验证的计算模型,其可用于找到减轻尖叫的解决方案。 (c)2020噪声控制工程研究所。

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