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Loss-Minimization Strategy of Nonsinusoidal Back EMF PMSM in Multiple Synchronous Reference Frames

机译:多种同步参考框架中非轴形反向EMF PMSM的损失 - 最小化策略

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摘要

Traditional loss-minimization strategies of model-based control, copper loss minimization (CLM), and finite-element-based control suffer from respective problems of iron loss mismatch with a physical view, pseudominimization and amounts of efforts when they are applied to permanent magnet synchronous motor with nonsinusoidal back electromotive force (NS-PMSM). This article combines theories of multiple synchronous reference frames and iron loss resistance to develop a new model of NS-PMSM, based on which the stator iron loss is evaluated to match well with the physical view. Then, a current strategy is proposed to minimize the total stator loss under constraints of ripple-free torque and finite dc supply. The optimal current solution is solved in closed form and implemented effortlessly. A good robustness to phase resistance variation is also achieved. Compared to CLM, the proposed strategy realizes a true minimization with the stator loss reduced by 9% and the motor efficiency enhanced by 0.7% at rated operation of a 3.8-kW NS-PMSM. Precision of the iron loss evaluation and performances of the strategy are validated experimentally on the 3.8-kW motor setup.
机译:基于模型的控制,铜损最小化(CLM)和有限元控制的传统损失 - 基于铜损最小化(CLM)的损失较大策略遭受了具有物理观点的铁损失配的各自存在的问题,并且当它们应用于永磁体时的努力具有非轴管背部电动势的同步电动机(NS-PMSM)。本文结合了多种同步参考帧和铁损阻的理论,以开发NS-PMSM的新模型,基于该新型NS-PMSM型号,基于该模型,对其进行了定子铁损耗与物理视图匹配。然后,提出了一种目前的策略,以最小化纹波 - 自由扭矩和有限直流电源的约束下的总定子损耗。最佳电流解决方案以封闭形式求解并毫不费力地实施。还实现了对相阻力变化的良好稳健性。与CLM相比,所提出的策略实现了真正的最小化,定子损耗降低了9%,电机效率增强了3.8kW NS-PMSM的额定操作时提高了0.7%。在3.8-kW电机设置上通过实验验证了铁损评估和策略性能的精确度。

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