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Optimal brake distribution for electronic stability control using weighted least square allocation method

机译:加权最小二乘分配法用于电子稳定性控制的最佳制动分配

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Electronic stability control (ESC) system is well known as a method to assist the driver in recovering from unintended situations, such as understeering and oversteering behaviors. One of issues of this ESC is precise distribution of the brake force for generation of the vehicle yaw moment. In this paper, a new design of ESC systems is proposed. First, the model based controller with vehicle bicycle model computes the correction yaw moment, which makes the vehicle follow the desired yaw rate. Then, weighted least squares (WLS) allocation method minimizing the user-defined cost function with equality constraints is implemented for generation of the brake pressures of individual wheels. In addition, taking both weight shifting caused by pitching motion of the vehicle body and minimum disturbance of longitudinal dynamics into account, the limits of brake pressures are managed in real time. The performances of the proposed algorithm are verified in the simulation environments using Carsim and Matlab/Simulink.
机译:电子稳定控制(ESC)系统是一种帮助驾驶员从意想不到的情况中恢复的方法,例如转向不足和转向过度的行为。这种ESC的问题之一是用于产生车辆偏航力矩的制动力的精确分配。本文提出了一种新的电调系统设计。首先,具有自行车模型的基于模型的控制器计算校正偏航力矩,使车辆遵循所需的偏航率。然后,实施最小化具有相等约束的用户定义成本函数的加权最小二乘(WLS)分配方法,以生成各个车轮的制动压力。另外,考虑到由于车身的俯仰运动引起的重量转移和纵向动力的最小扰动,制动压力的极限被实时地管理。使用Carsim和Matlab / Simulink在仿真环境中验证了所提出算法的性能。

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