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Central-Tapped Node Linked Modular Fault-Tolerance Topology for SRM Applications

机译:用于SRM应用程序的中央抽头节点链接模块化容错拓扑

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摘要

Electric vehicles (EVs) and hybrid electric vehicles (HEVs) can reduce greenhouse gas emissions while switched reluctance motor (SRM) is one of the promising motor for such applications. This paper presents a novel SRM fault-diagnosis and fault-tolerance operation solution. Based on the traditional asymmetric half-bridge topology for the SRM driving, the central tapped winding of the SRM in modular half-bridge configuration are introduced to provide fault-diagnosis and fault-tolerance functions, which are set idle in normal conditions. The fault diagnosis can be achieved by detecting the characteristic of the excitation and demagnetization currents. An SRM fault-tolerance operation strategy is also realized by the proposed topology, which compensates for the missing phase torque under the open-circuit fault, and reduces the unbalanced phase current under the short-circuit fault due to the uncontrolled faulty phase. Furthermore, the current sensor placement strategy is also discussed to give two placement methods for low cost or modular structure. Simulation results in MATLAB/Simulink and experiments on a 750-W SRM validate the effectiveness of the proposed strategy, which may have significant implications and improve the reliability of EVs/HEVs.
机译:电动汽车(EV)和混合电动汽车(HEV)可以减少温室气体排放,而开关磁阻电机(SRM)是此类应用中有希望的电机之一。本文提出了一种新颖的SRM故障诊断和容错操作解决方案。基于用于SRM驱动的传统非对称半桥拓扑,引入了模块化半桥配置中SRM的中央抽头绕组,以提供故障诊断和容错功能,这些功能在正常情况下处于空闲状态。通过检测励磁和退磁电流的特性可以实现故障诊断。通过提出的拓扑结构还实现了SRM容错操作策略,该策略可补偿开路故障下的缺相转矩,并减少由于故障相不受控制而导致的短路故障下的不平衡相电流。此外,还讨论了当前的传感器放置策略,以给出两种低成本或模块化结构的放置方法。在MATLAB / Simulink中进行的仿真结果以及在750 W SRM上进行的实验验证了所提出策略的有效性,这可能会产生重大影响并提高EV / HEV的可靠性。

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