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Transformer Parameters Estimation From Nameplate Data Using Evolutionary Programming Techniques

机译:使用进化编程技术从铭牌数据估计变压器参数

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This paper proposes a simple and effective evolutionary computation-based technique to estimate the equivalent circuit parameters of a single-phase transformer from its nameplate data without the need to conduct any experimental measurements. Two techniques, namely: particle swarm optimization and genetic algorithm are employed to track nameplate data by minimizing certain objective functions. The effectiveness of the proposed technique is examined through its application for three single-phase transformers of different ratings. The results show that evolutionary computation techniques can precisely identify transformer equivalent circuit parameters. The proposed technique can be extended to estimate the parameters of a three-phase power transformer from its nameplate data without taking the transformer out of service to carry out any experimental testing.
机译:本文提出了一种简单有效的基于进化计算的技术,无需进行任何实验测量即可从其铭牌数据估算单相变压器的等效电路参数。通过最小化某些目标函数,采用了粒子群优化和遗传算法这两种技术来跟踪铭牌数据。通过对三种不同额定值的单相变压器的应用,检验了所提出技术的有效性。结果表明,进化计算技术可以精确识别变压器的等效电路参数。该技术可以扩展为根据铭牌数据估算三相电力变压器的参数,而无需使变压器停运进行任何实验测试。

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