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Large-Scale Optimization of Synchronous Reluctance Machines Using CE-FEA and Differential Evolution

机译:基于CE-FEA和差分进化的同步磁阻电机大规模优化

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摘要

A novel automated design optimization procedure based on the application of an ultrafast computationally efficient finite-element analysis (CE-FEA) for current-regulated synchronous reluctance machines supplied from power electronic converters is proposed. The CE-FEA uses only a minimum number of magnetostatic solutions in order to comprehensively evaluate performance, including ripple torque and core losses. The optimization algorithm is based on differential evolution, and uses as independent variables the torque angle and ratios for a generic rotor topology with four flux barriers. Two problems, one with two and the other with three objectives, are studied and results are compared. Global performance indices and objectives incorporate the effect of average torque output, losses, torque ripple, and power factor at fixed cost. It is shown that through optimal studies with more than 5000 candidate designs, high output power, high efficiency, and low torque ripple can be achieved, while the relatively low power factor remains an inherent limitation of synchronous reluctance technology. Simulations are validated versus tests from a 10-hp 1800-r/min prototype.
机译:提出了一种基于超快速计算效率有限元分析(CE-FEA)的新型自动化设计优化程序,该方法适用于由电力电子转换器提供的电流调节同步磁阻电机。 CE-FEA仅使用最少数量的静磁解决方案,以便全面评估性能,包括纹波转矩和铁芯损耗。该优化算法基于微分演化,并使用具有四个磁通屏障的通用转子拓扑的转矩角和比率作为自变量。研究了两个问题,一个有两个目标,另一个有三个目标,并比较了结果。全球性能指标和目标综合考虑了平均转矩输出,损耗,转矩脉动和功率因数的固定影响。结果表明,通过对超过5000种候选设计的优化研究,可以实现高输出功率,高效率和低转矩纹波,而相对较低的功率因数仍然是同步磁阻技术的固有局限性。相对于10 hp 1800 r / min原型的测试,仿真得到了验证。

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