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Optimal design methodology of magneto-rheological (MR) rotary brake for robotic ankle systems considering temperature effects

机译:考虑温度效应的机器人踝系统磁流变(MR)旋转制动器的最佳设计方法

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Rotary magneto-rheological (MR) brake applied in robotic ankle systems often works at higher temperature which will degrade the torque due to the harsh environment and self-heating. To ensure the brake satisfy the requirements about the torque and compensation ability, an optimal methodology is proposed. In the design process, an evaluation coefficient is proposed to assess whether the brake has the compensation ability. The maximum torque, dynamic range and mass are set as the optimal objectives. The multi-objective functions are solved by the nondominated sorting genetic algorithm II. To describe the nonlinear relationships between the torque and design variables, a mathematical prediction model is constructed based on the finite element method. The simulation results show that this design optimal methodology is efficient to improve the performance and the compensation ability of rotary MR brake.
机译:旋转磁化(MR)制动器在机器人踝系统中施加,通常在较高的温度下工作,这将降低由于恶劣环境和自加热而导致的扭矩。为了确保制动器满足关于扭矩和补偿能力的要求,提出了最佳方法。在设计过程中,提出了评估系数来评估制动器是否具有补偿能力。最大扭矩,动态范围和质量被设定为最佳目标。通过非目标函数通过NondoMinated分选遗传算法II解决。为了描述扭矩和设计变量之间的非线性关系,基于有限元方法构建数学预测模型。仿真结果表明,这种设计最佳方法是有效的,提高旋转MR制动器的性能和补偿能力。

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