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Simulating the Static and Dynamic Response of an Automotive Weatherstrip Component

机译:模拟汽车挡风玻璃组件的静态和动态响应

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Understanding the resonant behavior of vehicle closures such as doors, hoods, trunks, and rear lift gates can be critical to achieve structure-borne noise, vibration, and harshness (NVH) performance requirements, particularly below 100Hz. Nearly all closure systems have elastomer weatherstrip components that create a viscoelastic boundary condition along a continuous line around its perimeter and is capable of influencing the resonant behavior of the closure system. This paper outlines an approach to simulate the static and dynamic characteristics of a closed-cell Ethylene Propylene Diene Monomer (EPDM) foam rubber weatherstrip component that is first subjected to a large-strain quasi-static preload with a small-strain sinusoidal dynamic load superimposed. An outline of a theoretical approach using "phi-functions" as developed by K.N. Morman Jr., and J.C. Nagtegaal is introduced followed by a discussion of the material characterization that was done to construct a suitable elastomer material model for finite element analysis (FEA). Next, to validate the approach, the FEA and correlation of a simple extension specimen is presented followed by the analysis and correlation of a weatherstrip component with a complex cross sectional shape. It is observed that the static and/or dynamic response of the weatherstrip material and component can be dependent on several factors such as excitation frequency, large-strain preload, vibration amplitude, component geometry, and friction. Correlation between simulation and experimental results for dynamic stiffness and loss factor are in general agreement below 100Hz.
机译:了解车辆闭合的谐振行为,例如门,罩,树干和后升闸阀,对实现结构传播的噪声,振动和粗糙度(NVH)性能要求,特别是低于100Hz至关重要。几乎所有闭合系统都具有弹性体挡风雨条部件,其沿着周边的连续线产生粘弹性边界条件,并且能够影响封闭系统的共振行为。本文概述了模拟闭合细胞乙烯丙烯二烯单体(EPDM)泡沫橡胶挡风雨条螺纹部件的静态和动态特性的方法,该组分首先进行大规模静态静态预载荷叠加的小菌株正弦动态负荷。由K.N开发的“PHI-Function”的理论方法概述。麦克风Jr.和J.C.NAGTegaal接下来介绍了对构建有限元分析(FEA)构建合适弹性体材料模型的材料表征的讨论。接下来,为了验证方法,提出了简单延伸标本的FEA和相关性,然后通过具有复杂横截面形状的挡风玻璃部件的分析和相关性。观察到挡风雨条材料和部件的静态和/或动态响应可以取决于诸如激发频率,大应变预载荷,振动幅度,部件几何形状和摩擦的几个因素。仿真与动态刚度和损耗因子的实验结果之间的相关性在100Hz以下一般协议。

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