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Multiphysics finite element model for the computation of the electro-mechanical dynamics of a hybrid reluctance actuator

机译:混合磁阻执行器的电力动力学计算的多体学有限元模型

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In hybrid reluctance actuators, the achievable closed-loop system bandwidth is affected by the eddy currents and hysteresis in the ferromagnetic components and the mechanical resonance modes. Such effects must be accurately predicted to achieve high performance via feedback control. Therefore, a multiphysics electro-mechanical finite element model is proposed in this paper to compute the dynamics of a 2-DoF hybrid reluctance actuator. An electromagnetic simulation is adopted to compute the electromagnetic dynamics and the actuation torque, which is employed as input for a structural dynamic simulation computing the electro-mechanical frequency response function. For model validation, the simulated and measured frequency response plots are compared for two actuators with solid and laminated outer yoke, respectively. In both cases, the model accurately predicts the measurement results, with a maximum relative phase error of 1.7% between the first resonance frequency and 1 kHz and a relative error of 1.5% for the second resonance frequency..
机译:在混合磁阻执行器中,可实现的闭环系统带宽受到铁磁部件和机械共振模式中的涡流和滞后的影响。必须准确地预测这些效果,以通过反馈控制实现高性能。因此,本文提出了一种多体电机电有限元模型,以计算2-DOF混合磁阻执行器的动态。采用电磁模拟来计算电磁动力学和致动扭矩,该致动扭矩被用作计算机电频率响应函数的结构动态仿真的输入。对于模型验证,将模拟和测量的频率响应图与两个具有固体和层压外轭的致动器进行比较。在这两种情况下,模型准确地预测了测量结果,在第一谐振频率和1 kHz之间的最大相对相位误差为1.7%,而第二谐振频率为1.5%的相对误差。

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