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Investigation on the nonlinear thermal-electrical properties coupling performance of converter transformer

机译:转换器变压器非线性热电性能耦合性能的研究

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摘要

Thermal state and insulation ability of converter transformer are significant to evaluate condition, while the impacts of nonlinear thermal-electric coupling impact are often ignored in the design analysis, and might result in misestimating its actual performance. In this paper, a bilateral thermal-electric coupling method is proposed to investigate the thermal and insulation performance of converter transformer on basis of an actual size. In addition, the influence of non-uniform temperature on the overall winding losses and the nonlinear thermal electric coupling of insulation system are considered. Firstly, the thermal-electrical parameters coupling characteristics of insulation system in converter transformer are investigated based on the built experimental platform. Results indicate that temperature distribution would change the electrical performance all the time, while electrical-dependent characteristic of oil increases with electric field in U type curve. Then, the impact of non-uniform temperature is discussed based on the built bilateral thermal-electric coupling model, and it is proved that temperature would decrease obviously in considering the losses calculated by bilateral coupling. Finally, the nonlinear thermal-electric coupling performance of converter transformer is studied. It indicates that comprehensive factors of temperature dependence and electric filed dependence have great influences on the insulation properties. Significantly, the electric field of pressboard would decrease by 12.8% under hybrid voltage condition.
机译:转换器变压器的热状态和绝缘能力对评估条件很大,而在设计分析中通常忽略非线性热电耦合冲击的影响,可能导致其实际性能造成误导。本文提出了双边热电耦合方法,以研究转换器变压器在实际尺寸的基础上进行热和绝缘性能。另外,考虑了非均匀温度对整体绕组损耗的影响和绝缘系统的非线性热电联接。首先,基于建造的实验平台研究了转换器变压器中绝缘系统的热电参数耦合特性。结果表明,温度分布将一直改变电气性能,而在U型曲线中的电场依赖于电气依赖性。然后,基于内置的双侧热电耦合模型讨论了非均匀温度的影响,并证明了考虑通过双侧耦合计算的损失显然会降低温度。最后,研究了转换器变压器的非线性热电耦合性能。它表明,温度依赖性和电力归档依赖性的综合因素对绝缘性能产生了极大的影响。值得注意的是,在混合电压条件下,压板的电场将减小12.8%。

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