Research on Structural Parameters Optimization of Reluctance Resolver Based on Multi-objective Particle Swarm Optimization

Zhike Xu, Long Du, Feng Mao, Long Jin
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引用次数: 1

Abstract

Variable reluctance (VR) resolvers are mainly used in the servo control system to obtain the rotor position and speed feedback information of the motor. In order to further improve the accuracy, this paper takes the reluctance resolver as the research object and utilizes Ansoft to establish its finite element (FE) analysis model. The optimized parameters are the slot-opening width of stator, the rotor sine coefficient, and the minimum air-gap length. The total harmonic distortion and zero-position voltages of the output signals are selected as objective functions. The mathematical model based on support vector regression machine is established by the simulation samples. The improved multi-objective particle swarm optimization algorithm is applied to optimize the model to get the optimal parameters. The final optimal design is selected from the Pareto front using the TOPSIS method. The simulation of the design and experimental results verify the feasibility of the method.
基于多目标粒子群算法的磁阻分解器结构参数优化研究
在伺服控制系统中,可变磁阻(VR)传感器主要用于获取电机的转子位置和转速反馈信息。为了进一步提高精度,本文以磁阻分解器为研究对象,利用Ansoft软件建立了其有限元分析模型。优化后的参数为定子开槽宽度、转子正弦系数和最小气隙长度。选择输出信号的总谐波失真和零位电压作为目标函数。通过仿真样本建立了基于支持向量回归机的数学模型。采用改进的多目标粒子群优化算法对模型进行优化,得到最优参数。利用TOPSIS法从Pareto front中选取最终的最优设计方案。设计的仿真和实验结果验证了该方法的可行性。
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