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首页> 外文期刊>Magnetics, IEEE Transactions on >A Computationally Efficient Algorithm for Rotor Design Optimization of Synchronous Reluctance Machines
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A Computationally Efficient Algorithm for Rotor Design Optimization of Synchronous Reluctance Machines

机译:同步磁阻电机转子设计优化的高效计算算法

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摘要

A generalizable algorithm is proposed for the design optimization of synchronous reluctance machine rotors. Single-barrier models are considered to reduce the algorithm’s computational complexity and provide a relative comparison for rotors with different slots-per-pole combinations. Two objective values per sampled design (average and ripple torques) are computed using 2-D finite-element analysis simulations. Non-linear regression or surrogate models are trained for the two objectives through a Bayesian regularization backpropagation neural network. A multi-objective genetic algorithm is used to find the validated Pareto front solutions. An analytical ellipse constraint is then suggested to encapsulate optimal solutions. Compared with a direct sampling approach, this restriction captures an optimal region within the double-barrier space for further torque ripple reduction.
机译:提出了一种用于同步磁阻电机转子设计优化的通用算法。单障碍模型被认为可以减少算法的计算复杂度,并为具有不同每极槽缝组合的转子提供相对的比较。每个采样设计的两个目标值(平均转矩和纹波转矩)使用2-D有限元分析模拟计算得出。非线性回归或替代模型通过贝叶斯正则化反向传播神经网络针对两个目标进行训练。使用多目标遗传算法找到经过验证的Pareto前沿解。然后建议使用解析椭圆约束来封装最优解。与直接采样方法相比,此限制捕获了双屏障空间内的最佳区域,以进一步减小转矩纹波。

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