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首页> 外文期刊>Transportation Electrification, IEEE Transactions on >FBG Thermal Sensing Ring Scheme for Stator Winding Condition Monitoring in PMSMs
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FBG Thermal Sensing Ring Scheme for Stator Winding Condition Monitoring in PMSMs

机译:永磁同步电机定子绕组状态监测的FBG热敏环方案

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摘要

This article proposes a random wound stator winding thermal monitoring scheme for permanent-magnet synchronous motors (PMSMs) utilizing an end-winding embedded, ring-shaped, fiber Bragg grating (FBG) thermal sensing array. The scheme enables in situ measurement of winding distributed thermal conditions, which is key to their effective health diagnosis and protection. It is designed to provide a thermal sensing point per each individual end-winding coil-end span and thus enable monitoring of the entire winding structure. This was achieved by utilizing FBG thermal sensing multiplexing in a ring-shaped sensor array inserted into the end-winding assembly to ensure desired in situ placement of separate sensing elements. The scheme was implemented on an inverter-driven PMSM and its performance examined in tests under healthy and faulted winding conditions. The results demonstrate the capability of effective monitoring of healthy windings distributed thermal status and that of unambiguous identification of localized overheating originating from winding fault, providing monitoring functionality that is largely unattainable by conventional thermal sensing techniques. Finally, the proposed scheme also enables straightforward advanced graphical visualization of the windings' thermal status and, hence, a more effective diagnostic interpretation of thermal data to extract knowledge on locations of increased thermal stress.
机译:本文提出了一种用于永磁同步电动机(PMSM)的随机缠绕定子绕组热监测方案,该方案使用端绕组嵌入的环形光纤布拉格光栅(FBG)热感测阵列。该方案可对绕组分布的热工况进行现场测量,这是对其进行有效的健康诊断和保护的关键。它的设计目的是为每个单独的端绕组线圈端跨度提供一个热感测点,从而可以监控整个绕组结构。这是通过在插入端部绕组组件的环形传感器阵列中利用FBG热感测多路复用来实现的,以确保单独的感测元件实现所需的原位放置。该方案是在逆变器驱动的PMSM上实施的,其性能在正常和故障绕组条件下的测试中得到了检验。结果表明,有效监控健康绕组分布的热状态的能力以及对绕组故障引起的局部过热的明确识别的能力,提供了传统热感测技术无法实现的监控功能。最后,所提出的方案还能够实现绕组热状态的直接高级图形可视化,因此,可以对热数据进行更有效的诊断解释,以提取有关热应力增加的位置的知识。

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