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Application Limits of the Complex Eigenvalue Analysis for Low-Frequency Vibrations of Disk Brake Systems

机译:磁盘制动系统低频振动复合特征值分析的应用限制

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Complex Eigenvalue Analysis (CEA) is widely established as a mid- to high-frequency squeal simulation tool for automobile brake development. As low-frequency phenomena like creep groan or moan become increasingly important and appropriate time-domain methods are presently immature and expensive, some related questions arise: Is it reasonable to apply a CEA method for low-frequency brake vibrations? Which conditions in general have to be fulfilled to evaluate a disk brake system’s noise, vibration and harshness (NVH) behavior by the use of CEA simulation methods? Therefore, a breakdown of the mathematical CEA basis is performed and its linear, quasi-static approach is analyzed. The mode coupling type of instability, a common explanation model for squeal, is compared with the expected real world behavior of creep groan and moan phenomena. Problems of the CEA regarding the context of stick-slip vibrations, non-linear stiffness and local damping behavior of elastomer bushings and joints are discussed. Their importance for low-frequency phenomena and evolving oscillation limit cycles is evaluated, leading to the statement of an application limit for disk brake related CEA usage in Finite Element (FE) environments. Especially the linearization of frictional forces in the brake disk/pad contact is identified as an important limitation. A FE-model of a vehicle’s front corner was used for low-frequency CEA simulations and parameter studies. Experiments with a corresponding setup have been performed on a drum-driven suspension and brake test rig in order to evaluate theoretical considerations as well as vibration characteristics of creep groan and moan. Both the simulative and experimental investigations show the importance of modelling parameters, linearization methods and physical limitations for the application of CEA methods on low-frequency vibration analyses of disk brake systems.
机译:复杂的特征值分析(CEA)被广泛建立为汽车制动开发的中高频尖叫模拟工具。由于蠕变呻吟或呻吟的低频现象变得越来越重要,并且适当的时域方法目前是不成熟和昂贵的,出现了一些相关问题:适用于用于低频制动振动的CEA方法是合理的吗?必须满足哪些条件,以评估CEA仿真方法的磁盘制动系统的噪音,振动和严格(NVH)行为?因此,进行了数学CEA的崩溃,分析了其线性,准静态方法。与尖锐呻吟和呻吟现象的预期真实世界行为进行比较,尖叫的常见解释模型的模式耦合类型。讨论了CEA关于粘滑振动的背景,弹性体衬套和关节的非线性刚度和局部阻尼行为的问题。他们对低频现象和不断发展的振荡极限周期进行了重要性,导致有限元(FE)环境中磁盘制动相关CEA使用情况的应用限制的陈述。特别是制动盘/焊盘接触中的摩擦力的线性化被识别为一个重要的限制。车辆前角的FE模型用于低频CEA模拟和参数研究。已经在鼓驱动悬架和制动试验台上执行了具有相应设置的实验,以评估理论考虑以及蠕变呻吟和呻吟的振动特性。模拟和实验研究既表明,在磁盘制动系统的低频振动分析中建模参数,线性化方法和物理限制的重要性。

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