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Thermal Accelerated Aging Methods for Magnet Wire: A Review

机译:电磁线的热加速老化方法:综述

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This paper focuses on accelerated aging methods for magnet wire. Reliability of electrical devices such as coils, motors, relays, solenoids and transformers is heavily dependent on the Electrical Insulation System (EIS). Accelerated aging methods are used to rapidly simulate the conditions in real life, which is typically years (20,000 hours) depending on the operating conditions. The purpose of accelerated aging is to bring lifetime of an EIS to hours, days or weeks. Shortening the lifetime of an EIS to such an extent, allows for the study of the insulation materials behavior as well as investigate ways to estimate the remaining useful life (RUL) for the purpose of predictive maintenance. Unexpected failures in operation processes, where redundancy is not present, can lead to high economical losses, machine downtime and often health and safety risks. Conditions, under which thermal aging methods are generally reported in the literature, typically neglect other factors, owing to the sheer complexity and interdependence of the multifaceted aging phenomena. This paper examines some existing thermal aging tests, which are currently used to obtain data for enamel degradation in order to try to better understand of how the thermal stresses degrade the EIS. Separation of these stresses, which the EIS operate under, can yield a better understanding of how each of the Thermal, the Electrical, the Ambient and the Mechanical (TEAM) stresses behave.
机译:本文重点介绍电磁线的加速老化方法。诸如线圈,电动机,继电器,螺线管和变压器之类的电气设备的可靠性在很大程度上取决于电气绝缘系统(EIS)。加速老化方法用于快速模拟现实生活中的条件,实际寿命通常为数年(20,000小时),具体取决于操作条件。加速老化的目的是使EIS的寿命达到数小时,数天或数周。将EIS的寿命缩短到这样的程度,可以研究绝缘材料的性能,并可以研究为进行预测性维护而估算剩余使用寿命(RUL)的方法。在没有冗余的情况下,操作过程中的意外故障会导致高昂的经济损失,机器停机时间以及健康和安全风险。由于多方面老化现象的绝对复杂性和相互依赖性,文献中通常报道了热老化方法的条件通常会忽略其他因素。本文研究了一些现有的热老化测试,这些测试目前用于获得搪瓷降解的数据,以试图更好地了解热应力如何使EIS降解。 EIS在这些应力的作用下进行分离,可以更好地理解热,电,环境和机械(TEAM)应力的行为。

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