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首页> 外文期刊>Quality Control, Transactions >Ride Comfort Analysis and Multivariable Co-Optimization of the Commercial Vehicle Based on an Improved Nonlinear Model
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Ride Comfort Analysis and Multivariable Co-Optimization of the Commercial Vehicle Based on an Improved Nonlinear Model

机译:基于改进的非线性模型乘坐商用车辆的舒适性分析和多变量共同优化

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摘要

The performance of a suspension system is affected by the behavior and posture of its components. However, published studies usually conduct this research using the based-equivalent model without considering the characteristic curves or postures. In this paper, an improved ride comfort model that considers three nonlinearities in suspensions is first developed, and this model is validated through experimental results and demonstrates good accuracy. Then, the dynamic response is presented to investigate the effects of multilevel suspension parameters and nonlinear factors on ride comfort, and it is concluded that the front chassis suspension is the most significant system for ride comfort. Next, a multivariable co-optimization method based on the improved model is proposed to obtain more accurate optimized results that are more suitable for automotive applications. Subsequently, a multiobjective genetic algorithm (MGA) is applied to obtain the Pareto solution set. Furthermore, comparing the RMS value before and after optimization shows an obvious reduction, with averages of 19.7%, 17.8%, and 12.0% for the weighted root mean square (RMS) of the driver seat acceleration and the RMS of the working spaces of the front chassis suspension and the rear chassis suspension, respectively. Finally, the results are also verified by experiments, indicating that the improved ride comfort model and the multivariable co-optimization method are feasible and practical.
机译:悬架系统的性能受其组件的行为和姿势的影响。然而,公布的研究通常使用基于等效的模型进行这项研究,而不考虑特征曲线或姿势。在本文中,首先开发了一种改进的乘坐舒适模型,其考虑了三种非线性的悬架中的一个非线性,通过实验结果验证了该模型,并展示了良好的准确性。然后,提出了动态响应,以研究多级悬架参数和非线性因素对乘坐舒适性的影响,并且得出结论,前底盘悬架是乘坐舒适性最重要的系统。接下来,提出了一种基于改进模型的多变量协作方法,以获得更准确的优化结果,更适合汽车应用。随后,施加多目标遗传算法(MGA)以获得Pareto解决方案集。此外,在优化之前和之后的RMS值比较驾驶员座椅加速度的加权根均线(RMS)的平均值为19.7%,17.8%和12.0%,以及工作空间的RMS前底盘悬架和后底盘悬浮液。最后,结果也通过实验验证,表明改善的乘坐舒适性模型和多变量的共同优化方法是可行和实用的。

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