Development of a Dual-temperature Test Cell for Laboratory Ageing Experiment of Transformer Insulation Systems

Berihu Mebrahtom, S. Matharage, Qiang Liu, C. Krause, A. Gyore, Luke van der Zel
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Abstract

As accelerated ageing tests in full-size transformers are impractical, laboratory ageing experiments are often used to understand the ageing process of transformer insulation systems. Three main types of ageing experiment set-up can be identified in literature: a functional life test model, a dual-temperature test cell and a single temperature test cell. A functional life test model is a scaled-down representation of transformer operation, but it is very expensive to run. A single temperature test cell is the simplest and most widely used laboratory test set-up but it cannot reflect the different temperature profiles and gradients found inside a real transformer. The dual-temperature test cell is less complicated and less costly than the transformer model and still has the ability to simulate the different temperatures experienced by transformer insulation. In a dual temperature cell the solid and liquid insulation temperatures are independently controlled, thereby overcoming the main disadvantage of the single temperature test cell method. In this paper, the design and construction of a dual-temperature test system based on the IEC TS 62332-1 technical specification is described and test results are provided to show that the test system fulfils the desired functions with stable conductor and liquid temperatures.
变压器绝缘系统实验室老化试验用双温试验箱的研制
由于在全尺寸变压器中进行加速老化试验是不切实际的,因此通常采用实验室老化试验来了解变压器绝缘系统的老化过程。在文献中可以确定三种主要类型的老化实验设置:功能寿命测试模型,双温度测试单元和单温度测试单元。功能寿命测试模型是变压器运行的按比例缩小的表示,但运行起来非常昂贵。单个温度测试单元是最简单和最广泛使用的实验室测试装置,但它不能反映真实变压器内部的不同温度分布和梯度。与变压器模型相比,双温度测试单元更简单,成本更低,并且仍然能够模拟变压器绝缘所经历的不同温度。在双温度电池中,固体和液体绝缘温度是独立控制的,从而克服了单温度测试电池方法的主要缺点。本文介绍了基于IEC TS 62332-1技术规范的双温测试系统的设计和构建,并给出了测试结果,表明该测试系统具有稳定的导体和液体温度,达到了预期的功能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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