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Multidisciplinary hybrid hierarchical collaborative optimization of electric wheel vehicle chassis integrated system based on driver’s feel

机译:基于驾驶员感觉的电动轮车底盘集成系统多学科混合分层合作优化

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摘要

The optimization design of chassis integrated system mainly involves steering, suspension and brake subsystems, which is essentially a multidisciplinary design optimization. This paper mainly researches the multidisciplinary optimization of the chassis integrated system for the electric wheel vehicle, from the view of ensuring a favorable feel for the driver. The dynamic models of differential steering system, brake system, active suspension system and vehicle are established. Then, taking the coupling relationship of the chassis subsystems into account, this paper proposes an evaluating index of driver’s ride comfort ( Drc ), which is composed of the steering road feel, brake feel and suspension ride comfort. In order to determine the weight coefficient in the quantization formula of Drc , the technique for order preference by similarity to ideal solution (TOPSIS) method is used to overcome the subjectivity in the selection. Based on these, a multidisciplinary hybrid hierarchical collaborative optimization (HHCO) method is proposed on the basis of the collaborative optimization (CO), which consists of a system level coordinator and a coupling analyzer to solve the problem of poor convergence and the low efficiency of CO method. The optimization results show that the proposed HHCO method has excellent computational efficiency and better convergence compared with the CO method, which can further improve the steering road feel and the drive ride comfort, on the premise of ensuring the brake feel and suspension ride comfort.
机译:底盘集成系统的优化设计主要涉及转向,悬架和制动子系统,基本上是多学科设计优化。本文主要研究了电动轮车辆底盘集成系统的多学科优化,从确保驾驶员有利的感觉。建立了差动转向系统,制动系统,主动悬架系统和车辆的动态模型。然后,借助底盘子系统的耦合关系考虑,本文提出了一种评估驾驶员乘坐舒适性(DRC)的指标,由转向道路感觉,制动感和悬架舒适组成。为了确定DRC的量化公式中的权重系数,使用与理想解决方案(TOPSIS)方法相似的顺序优先技术来克服选择中的主观性。基于这些,基于协作优化(CO)的基础上提出了多学科混合分层协作优化(HHCO)方法,该协作优化(CO)包括系统级协调器和耦合分析仪,以解决收敛不良和低效率的问题CO方法。优化结果表明,与CO方法相比,该提议的HHCO方法具有优异的计算效率和更好的收敛,这可以进一步改善转向道感觉和驾驶速度舒适,在确保制动感和悬挂速度舒适的前提。

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