基于跨座式单轨车辆导向轮侧向力控制的悬挂参数优化研究

Optimization of Suspension Parameters Based on Lateral Force Control of Straddle Monorail Vehicle Guide Wheels

  • 摘要:
    目的 跨座式单轨车辆运行过程中,导向轮侧向力过大或剧烈波动易引发导向轮胎肩开裂或扒胎现象,存在行车安全风险。为了改善车辆导向轮的侧向受力状态,有必要开展基于跨座式单轨车辆导向轮侧向力控制的悬挂参数优化研究。
    方法 基于UA(亚利桑那)轮胎模型,建立跨座式单轨车辆动力学模型,采用Sobol全局灵敏度方法对单轨车辆悬挂参数进行灵敏度分析,筛选出显著影响导向轮侧向力的车辆悬挂参数;基于ModeFRONTIER多学科优化平台,以显著影响导向轮侧向力的动力学参数作为优化变量,选取导向轮侧向力均值与均方根值作为优化目标,同时以导向轮最大径向力、走行轮轮重减载率等指标为约束条件,搭建联合仿真优化模型完成参数寻优,并对最优方案开展仿真验证。
    结果及结论 优化后的导向轮侧向力均值与均方根值较优化前分别下降了27.78%及32.29%,证明了通过优化车辆悬挂参数的方法可以降低导向轮侧向力过大与剧烈波动问题,能够解决由其导致的胎肩开裂或扒胎问题。

     

    Abstract:
    Objective During the operation of straddle monorail vehicles, excessive or violently fluctuating lateral forces on the guide wheels are prone to cause shoulder cracking or scraping of the guide tires, posing risks to train operational safety. To improve the lateral stress state of vehicle guide wheels, it is necessary to conduct research on suspension parameter optimization based on the lateral force control of straddle monorail vehicle guide wheels.
    Method Based on the UA (University of Arizona) tire model, a straddle monorail vehicle dynamics model is established. The Sobol global sensitivity method is employed to conduct a sensitivity analysis on the suspension parameters of the monorail vehicle, screening out the vehicle suspension parameters that significantly affect the lateral force of the guide wheels. Based on the ModeFRONTER multidisciplinary optimization platform, taking the dynamics parameters that significantly affect the lateral force of the guide wheels as optimization variables, and selecting the mean value and root mean square (RMS) value of the lateral force of the guide wheels as the optimization objectives, while simultaneously using indicators such as the maximum radial force of the guide wheels and the rate of wheel load reduction of the running wheels as constraint conditions, a co-simulation optimization model is constructed to complete parameter optimization. Furthermore, simulation verification is carried out on the optimal scheme.
    Result & Conclusion  The optimized mean value and RMS values of the lateral force of the guide wheels decrease by 27.78% and 32.29%, respectively, compared to those before optimization. This proves that the method of optimizing vehicle suspension parameters can mitigate the problems of excessive and violently fluctuating lateral forces on the guide wheels, effectively resolving the resulting issues of tire shoulder cracking or tire stripping.

     

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