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Hot Resistance Estimation for Dry Type Transformer using Multiple Variable Regression,Multiple Polynomial Regression and Soft Computing Techniques

机译:基于多元回归,多项式回归和软计算技术的干式变压器热阻估算

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Problem statement: This study presents a novel method for the determination of average winding temperature rise of transformers under its predetermined field operating conditions. Rise in the winding temperature was determined from the estimated values of winding resistance during the heat run test conducted as per IEC standard. Approach: The estimation of hot resistance was modeled using Multiple Variable Regression (MVR), Multiple Polynomial Regression (MPR) and soft computing techniques such as Artificial Neural Network (ANN) and Adaptive Neuro Fuzzy Inference System (ANFIS). The modeled hot resistance will help to find the load losses at any load situation without using complicated measurement set up in transformers. Results: These techniques were applied for the hot resistance estimation for dry type transformer by using the input variables cold resistance, ambient temperature and temperature rise. The results are compared and they show a good agreement between measured and computed values. Conclusion: According to our experiments, the proposed methods are verified using experimental results, which have been obtained from temperature rise test performed on a 55 kVA dry-type transformer.
机译:问题陈述:这项研究提出了一种确定变压器在其预定现场运行条件下平均绕组温升的新颖方法。绕组温度的升高是根据按照IEC标准进行的热运行测试期间的绕组电阻估算值确定的。方法:使用多变量回归(MVR),多元多项式回归(MPR)以及诸如人工神经网络(ANN)和自适应神经模糊推理系统(ANFIS)的软计算技术对热阻的估算进行建模。建模的热阻将有助于查找任何负载情况下的负载损耗,而无需使用变压器中设置的复杂测量。结果:通过使用输入变量冷阻,环境温度和温升,将这些技术应用于干式变压器的热阻估算。将结果进行比较,它们显示出测量值和计算值之间的良好一致性。结论:根据我们的实验,通过对55 kVA干式变压器进行的温升测试获得的实验结果验证了所提出的方法。

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