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An optimization design method for a body mounting system of a heavy vehicle

机译:重型车辆车身安装系统的优化设计方法

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摘要

Noise, vibration, and harshness is one of the main issues of heavy vehicles since their working conditions are very complex and tough. However, most previous works were focused on the optimization design methods of the engine mounting system and few works were reported to study those of the body mounting system. In practice, the body mounting system can significantly affect the noise, vibration, and harshness performance of the vehicle. An inappropriate body mounting system can produce unacceptable noise, vibration, and harshness performance and even result in serious accidents. To overcome this issue, an optimization design method for a body mounting system of a heavy vehicle is proposed to investigate the effect of the body mounting system on the noise, vibration, and harshness performance. Based on the geometrics of the vehicle body, the initial material parameters, shapes, and sizes of the rubber absorber of the body mounting system are determined by the vibration transmissibility ratio and static deformation ratio from an analytical method in the literature. The von Mises stresses of the initial rubber absorber cases from a static finite element analysis are used to select the optimal rubber absorber cases. A multibody dynamic method is proposed to validate the noise, vibration, and harshness performance of the optimal rubber absorber cases. The results show that the presented optimization design method for the body mounting system can be used to optimize the noise, vibration, and harshness performance of the heavy vehicles.
机译:噪声,振动和苛刻性是重型车辆的主要问题之一,因为它们的工作条件非常复杂和艰苦。但是,以前的大多数工作都集中在发动机安装系统的优化设计方法上,据报道很少研究车身安装系统的优化设计方法。实际上,车身安装系统会显着影响车辆的噪音,振动和粗糙度性能。不合适的车身安装系统会产生不可接受的噪音,振动和恶劣的性能,甚至导致严重的事故。为了克服这个问题,提出了一种用于重型车辆的车身安装系统的优化设计方法,以研究车身安装系统对噪声,振动和粗糙度性能的影响。基于车身的几何形状,车身安装系统的橡胶吸收器的初始材料参数,形状和尺寸由文献中的分析方法通过振动传递率和静态变形率确定。通过静态有限元分析,从初始橡胶减震器外壳的von Mises应力中选择最佳的橡胶减震器外壳。提出了一种多体动力学方法来验证最佳橡胶减震器壳体的噪声,振动和粗糙度性能。结果表明,所提出的车身安装系统的优化设计方法可用于优化重型车辆的噪声,振动和粗糙度性能。

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