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Test characterization of a high performance fault tolerant permanenet magnet machine

机译:高性能容错永磁电机的测试特性

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It is well understood that an electric machine's output performance is limited by its losses and thermal behavior. For novel prototype machines, hardware testing processes are an important part of quantifying these parameters. For some machines, effective characterization may be accomplished using a series of static and simple prime-mover tests. The resulting data permits calibration of loss- and thermal-models. These can then be used to predict on-load performance. Fault-tolerant machines based on single layer winding arrangements are designed to minimize interaction between windings or module-groups. This paper demonstrates that, for such a machine, the losses measured during simple DC and primer-mover tests may be used to infer performance during both `healthy' and `faulted' operating modes. Under faulted conditions the total machine loss is expected to be a combination of module-specific and common losses, which can be directly deduced from hardware tests. This paper discusses the accuracy of loss superposition when applied to a 180 kW multi-channel, fault-tolerant aerospace machine. From observations following faulted and healthy dynamometry tests, there exists close correlation between full-load performance and estimates made from the superposition of losses under discrete operating modes.
机译:众所周知,电机的输出性能受到其损耗和热性能的限制。对于新颖的原型机,硬件测试过程是量化这些参数的重要组成部分。对于某些机器,可以使用一系列静态和简单的原动机测试来完成有效的表征。所得数据允许对损耗模型和热模型进行校准。然后可以将它们用于预测负载性能。基于单层绕组布置的容错电机旨在最大程度地减少绕组或模块组之间的相互作用。本文证明,对于这种机器,在简单的直流和引火线测试中测得的损耗可用于推断“健康”和“故障”运行模式下的性能。在出现故障的情况下,总的机器损耗预计将是特定于模块的损耗和常见损耗的总和,可以直接从硬件测试中得出。本文讨论了将损耗叠加应用于180 kW多通道,容错航空航天机器时的精度。从故障和健康的测功试验之后的观察结果来看,满载性能与离散运行模式下的损耗叠加得出的估计值之间存在密切的相关性。

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