class='kwd-title'>Keywords: Nonlinear quarter ca'/> Optimization of nonlinear quarter car suspension–seat–driver model
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Optimization of nonlinear quarter car suspension–seat–driver model

机译:非线性四分之一汽车悬架-座椅-驾驶员模型的优化

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摘要

class="kwd-title">Keywords: Nonlinear quarter car, Genetic algorithm, Multi-objective optimization, MOSPO-CD, Quadratic tyre stiffness, Cubic stiffness in suspension spring class="head no_bottom_margin" id="ab010title">AbstractIn this paper a nonlinear quarter car suspension–seat–driver model was implemented for optimum design. A nonlinear quarter car model comprising of quadratic tyre stiffness and cubic stiffness in suspension spring, frame, and seat cushion with 4 degrees of freedom (DoF) driver model was presented for optimization and analysis. Suspension system was aimed to optimize the comfort and health criterion comprising of Vibration Dose Value (VDV) at head, frequency weighted RMS head acceleration, crest factor, amplitude ratio of head RMS acceleration to seat RMS acceleration and amplitude ratio of upper torso RMS acceleration to seat RMS acceleration along with stability criterion comprising of suspension space deflection and dynamic tyre force. ISO 2631-1 standard was adopted to assess ride and health criterions. Suspension spring stiffness and damping and seat cushion stiffness and damping are the design variables. Non-dominated Sort Genetic Algorithm (NSGA-II) and Multi-Objective Particle Swarm Optimization – Crowding Distance (MOPSO-CD) algorithm are implemented for optimization. Simulation result shows that optimum design improves ride comfort and health criterion over classical design variables.
机译:<!-fig ft0-> <!-fig @ position =“ position” anchor“ == f4-> <!-fig mode =” anchred“ f5-> <!-fig / graphic | fig / alternatives / graphic mode =“ anchored” m1-> class =“ kwd-title”>关键字:非线性四分之一车,遗传算法,多目标优化,MOSPO-CD,二次轮胎刚度,立方悬架弹簧的刚度 class =“ head no_bottom_margin” id =“ ab010title”>摘要本文针对最佳设计,采用了非线性四分之一汽车悬架-座椅-驾驶员模型。提出了一个非线性四分之一汽车模型,该模型包括悬架弹簧,车架和带有4自由度(DoF)驾驶员座垫的二次方轮胎刚度和立方刚度,以进行优化和分析。悬架系统旨在优化舒适度和健康标准,包括头部的振动剂量值(VDV),频率加权RMS头部加速度,波峰因数,头部RMS加速度与座椅RMS加速度的幅值比以及上身RMS加速度与座椅RMS加速度以及包括悬架空间偏斜和动态轮胎力在内的稳定性标准。通过ISO 2631-1标准来评估乘车和健康标准。悬架弹簧刚度和阻尼以及座垫刚度和阻尼是设计变量。实现了非支配排序遗传算法(NSGA-II)和多目标粒子群优化–拥挤距离(MOPSO-CD)算法。仿真结果表明,与经典设计变量相比,最优设计提高了乘坐舒适性和健康水平。

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