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Development of Hardware-In-the-Loop Simulation System for Steering Evaluation Using Multibody Kinematic Analysis

机译:多体运动学分析的转向过程半实物仿真系统开发

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摘要

The adoption of the electronic controlled steering systems with new technologies has been extended in recent years. They have interactions with other complex vehicle subsystems and it is a hard task for the vehicle developer to find the best solution from huge number of the combination of parameter settings with track tests. In order to improve the efficiency of the steering system development, the authors had developed a steering bench test method for steering system using a Hardware-In-the-Loop Simulation (HILS). In the steering HILS system, vehicle dynamics simulation and the tie rod axial force calculation are required at the same time in the real-time simulation environment. The accuracy of the tie rod axial force calculation is one of the key factors to reproduce the vehicle driving condition. But the calculation cannot be realized by a commercial software for the vehicle dynamics simulation. A multibody kinematics model of strut suspension was developed for the tie rod axial force calculation. In this study, a new kinematics model of a double wishbone suspension system was developed for the tie rod axial force calculation. The evaluation of developed kinematics model was carried out by comparing the results of a kinematic analysis and the tie rod axial force calculation to those of ADAMS. Then the evaluation of the reproducibility of the vehicle driving condition in the steering HILS system was carried out by comparing the calculated vehicle behavior, measured tie rod axial force and measured steering torque to those of a track test using a prototype vehicle.
机译:近年来,采用新技术的电子控制转向系统的使用已得到扩展。它们与其他复杂的车辆子系统具有交互作用,对于车辆开发人员来说,要从大量的参数设置和轨道测试组合中找到最佳解决方案是一项艰巨的任务。为了提高转向系统开发的效率,作者开发了一种使用在环仿真(HILS)的转向系统的转向台测试方法。在转向HILS系统中,实时仿真环境中需要同时进行车辆动力学仿真和拉杆轴向力计算。拉杆轴向力的计算精度是再现车辆行驶状况的关键因素之一。但是该计算不能通过用于车辆动力学仿真的商业软件来实现。建立了用于悬架拉杆轴向力计算的多杆支撑悬架运动学模型。在这项研究中,双横臂悬架系统的新运动学模型被开发用于拉杆轴向力的计算。通过将运动分析结果和拉杆轴向力计算结果与ADAMS的结果进行比较,对开发的运动学模型进行评估。然后,通过将计算出的车辆性能,测得的拉杆轴向力和测得的转向扭矩与使用原型车进行的轨道测试的性能进行比较,对转向HILS系统中车辆行驶状况的可重复性进行评估。

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