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Sensitivity Analysis of Inverse Thermal Modeling to Determine Power Losses in Electrical Machines

机译:逆热模型确定电机功率损耗的灵敏度分析

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摘要

Inverse analysis is a known mathematical approach, which has been used to solve physical problems of a particular nature. Nevertheless, it has seldom been applied directly for loss reconstruction of electrical machines. This paper aims to verify the accuracy of an inverse methodology used in mapping power loss distribution in an induction motor. Conjugate gradient method is used to iteratively find the unique inverse solution when simulated temperature measurement data are available. Realistic measurement situations are considered and the measurement errors corresponding to thermographic measurements and temperature sensor measurements are used to generate simulated numerical measurement data. An accurate 2-D finite-element thermal model of a 37 kW cage induction motor serves as the forward solution. The inverse model's objective is to map the power loss density in the motor accurately from noisy temperature measurements made on the motor housing's outer surface. Furthermore, the sensitivity of the adopted inverse methodology to variations in the number of available measurements is also considered. Filtering the applied noise to acceptable ranges is shown to improve the inverse mapping results.
机译:逆分析是一种已知的数学方法,已用于解决特定性质的物理问题。然而,很少将其直接用于电机的损耗重建。本文旨在验证用于映射感应电动机功率损耗分布的逆方法的准确性。当可获得模拟温度测量数据时,使用共轭梯度法迭代找到唯一的逆解。考虑实际的测量情况,并使用与热成像测量和温度传感器测量相对应的测量误差来生成模拟的数字测量数据。正向解决方案是37 kW笼式感应电动机的精确二维有限元热模型。逆模型的目的是根据在电机外壳外表面上进行的噪声温度测量准确地绘制出电机中的功率损耗密度。此外,还考虑了所采用的逆方法对可用测量数量变化的敏感性。显示了将施加的噪声过滤到可接受的范围以改善逆映射结果。

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