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Study on Low-Speed Steering Resistance Torque of Vehicles Considering Friction between Tire and Pavement

机译:考虑轮胎与路面摩擦的车辆低速转向阻力扭矩研究

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Electric power steering (EPS) systems under existing vehicle power systems cannot provide enough power for heavy-duty commercial vehicles under pivot or low-speed steering conditions. To solve this problem, the paper proposes an EPS system that is based on the hybrid power system constituted by the vehicle power system and the supercapacitor in parallel. In order to provide a theoretical basis for the intervention and withdrawal mechanisms of a super-capacitor in the new EPS, the law of steering resistance torque at a low or extremely low vehicle speed should be explored. Firstly, the finite element model of tire/pavement was established to conduct the simulation and calculation of the low-speed steering friction force between the tire and pavement, and to obtain the fitting expression of the equivalent steering friction coefficient with the running speed of the tire. Secondly, the expression of the steering friction torque was deduced based on the calculus theory and mathematical model of the low-speed steering resistance torque, including the steering friction torque and aligning torques, established to conduct the simulation of the equivalent resistance torque applied on a steering column under low-speed condition. Subsequently, the real vehicle experiments were carried out and comparisons of the experimental results and simulation results was performed. The consistency indicated that the model of low-speed steering resistance torque had a high accuracy. Finally, the law of low-speed steering resistance torque with a vehicle speed and steering wheel angle were analyzed according to the 3D surface plot drawn from the simulation results.
机译:现有车辆动力系统下的电动助力转向(EPS)系统在枢轴或低速转向条件下无法为重型商用车提供足够的动力。为了解决这个问题,本文提出了一种EPS系统,该系统基于由车辆动力系统和超级电容器并联构成的混合动力系统。为了为新型EPS中超级电容器的干预和撤回机制提供理论依据,应探索低或极低车速下的转向阻力转矩定律。首先建立轮胎/路面的有限元模型,对轮胎与路面的低速转向摩擦力进行仿真计算,得到等效转向摩擦系数与轮胎行驶速度的拟合表达式。胎。其次,根据微积分理论和低速转向阻力扭矩的数学模型(包括转向摩擦扭矩和定位扭矩)推导了转向摩擦扭矩的表达式,建立了该模型进行了等效阻力扭矩仿真。低速条件下的转向柱。随后,进行了实际的车辆实验,并对实验结果和模拟结果进行了比较。一致性表明,低速转向阻力转矩模型具有较高的精度。最后,根据仿真结果绘制的3D表面图,分析了低速转向阻力转矩随车速和方向盘转角的规律。

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