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Design optimization of a steering and suspension integrated system based on dynamic constraint analytical target cascading method

机译:基于动态约束分析目标级联方法的转向悬架集成系统设计优化

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摘要

Steering system and suspension system are two important subsystems of automobile chassis, and they both influence the vehicle ride comfort, safety, and maneuverability. In order to improve overall performance of chassis system, a hierarchical dynamic constraint analytical target cascading (DCATC) optimization method is proposed and applied to optimize the integrated system. Moreover, DCATC enhances the information exchange between the subsystem and the total system, and improves the convergence and computation speed of the optimization. Based on the dynamic model of the steering and suspension-integrated system, the evaluation indexes of the integrated system are proposed and deduced, which involves steering energy consumption, steering road feel, steering sensitivity, ride comfort, and steering stability. Then the optimization mathematical model of the integrated system is established. The simulation results show that the proposed DCATC can improve the overall performance of the integrated system. The steering energy consumption and steering sensitivity are reduced, and the steering road feel and ride comfort are improved effectively.
机译:转向系统和悬架系统是汽车底盘的两个重要子系统,它们都影响车辆乘坐舒适,安全性和机动性。为了提高机箱系统的整体性能,提出了一种分层动态约束分析目标级联(DCATC)优化方法,并应用于优化集成系统。此外,DCATC增强了子系统和总系统之间的信息交换,并提高了优化的收敛性和计算速度。基于转向和悬架集成系统的动态模型,提出和推导了集成系统的评估指标,涉及转向能耗,转向道路感,转向敏感,乘坐舒适性和转向稳定性。然后建立了集成系统的优化数学模型。仿真结果表明,所提出的DCATC可以提高集成系统的整体性能。转向能耗和转向灵敏度减小,有效地提高了转向道路感觉和乘坐舒适性。

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