首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers. Part K, Journal of Multi-body Dynamics >Investigation and performance comparison of ride comfort on the created human vehicle road integrated model adopting genetic algorithm optimized proportional integral derivative control technique
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Investigation and performance comparison of ride comfort on the created human vehicle road integrated model adopting genetic algorithm optimized proportional integral derivative control technique

机译:乘坐舒适对创建人工车道综合模型采用遗传算法的调查和性能比较优化成比例整体衍生控制技术

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This context exhaustively investigates the ride comfort performance index on the proposed active suspension vehicle system. Ride comfort in terms of occupants (includes driver and passenger) head acceleration, sprung mass vertical and pitching accelerations is considered. For this examination, a 14-degree-of-freedom human vehicle road integrated system model was extensively developed. Then, an active suspension system composed of a hydraulic actuator and proportional-integral-derivative controller is incorporated into the developed vehicle model to enhance the ride comfort. Besides, the designed controller needs to satisfy other vehicle performance indices like vehicle stability and ride safety. Accordingly, the controller parameters were optimally tunned with the help of genetic algorithm technique, on the basis of integral time absolute error criterion. The objective function was created on the basis of minimizing the integral time absolute error of sprung mass displacement, suspension working space and tire deflection responses. The entire response of human vehicle road integrated model, with the proposed active suspension system and passive suspension system on various random road surfaces (A, B, C, D and E with respect to ISO 8608) with five constant speeds (20, 40, 60, 80 and 100 kmph), was compared via surficial presentation. Furthermore, the comfort measures such as root mean square and vibration dose value from ISO 2631-1 were adopted to evaluate the severity between the occupants via head acceleration response. The simulation results showed that the suggested active suspension system significantly improved the ride comfort with guaranteed vehicle stability and ride safety.
机译:这种语境详尽地研究了所提出的主动悬架车辆系统的乘坐舒适性能指标。在乘客(包括驾驶员和乘客)头加速度方面,乘坐舒适度,考虑了簧上垂直和俯仰加速度。对于这次检查,广泛开发了14自由度的自由度的人机道路集成系统模型。然后,由液压致动器和比例 - 积分衍生物控制器组成的有源悬架系统被结合到开发的车辆模型中以增强乘坐舒适度。此外,设计的控制器需要满足车辆稳定性和乘坐安全性的其他车辆性能指标。因此,基于积分时间绝对误差标准,在遗传算法技术的帮助下,控制器参数最佳地调谐。基于最小化弹簧质量位移,悬架工作空间和轮胎偏转响应的积分时间绝对误差来创建目标函数。人类车辆道路集成模型的整个响应,在各种随机路面(A,B,C,D和E各种随机道路表面上的主动悬架系统和被动悬架系统,具有五个恒定速度(20,40,通过表格呈现比较60,80和100公里/mps)。此外,采用来自ISO 2631-1的抑制措施,例如来自ISO 2631-1的振动剂量值,以通过头部加速度响应评估乘员之间的严重程度。仿真结果表明,建议的主动悬架系统明显提高了乘坐舒适性,具有保证的车辆稳定性和乘坐安全性。

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