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Deformation Diagnostic Methods for Transformer Winding through System Identification

机译:系统辨识的变压器绕组变形诊断方法

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Transformers play a critical role in the power system. Dynamics of the power system changes if the transformers are out of service for scheduled and unscheduled maintenance work under contingency situations. Faults, overloading, and mechanical abnormalities causes the incipient and critical damages to the transformer. The isolation of transformers leads to the voltage profile change, load curtailments, high compensation, economic loss, and many more problems. It is very important to know the problems occurred in the transformer parts to repair and restore it into the system to attain better stability, reliability, and economics. The transformer health monitoring system consisting of prediction, identification, and diagnostics in online as well as offline mode that will provide sufficient content to the managerial utility to take actions against the problem anticipated or occurred. The heuristic survey inks, the probability of damage in the transformer winding is more compared to the other parts. A novel method using system identification is proposed for the diagnosis of transformer winding. The location and extent of mechanical deformations can be ascertained along with specifically detecting radial and axial deformations in the transformer windings. A system identification approach in frequency and time domain were employed in the diagnostic algorithms for the sweep frequency response dataset. For both transfer function and state space model, a reference table called deformation information tableau has been synthesized for lumped parameter transformer model by varying series and shunt circuit elements systematically. The details of deformation are extracted from the tableau for actual frequency response data for a specified frequency range and winding type. The crosscorrelation of two-dimensional frequency response arrays, one being a signature array and other being deformation array, is used to represent relativity as a singleton. A toolbox is developed for the generation of heuristic deformation information tableau and to diagnose using the diagnostics algorithm developed. The proposed algorithms were verified and simulated for continuous disk type winding.
机译:变压器在电力系统中起着至关重要的作用。如果在紧急情况下变压器因计划内和计划外的维护工作而停运,则电力系统的动态会发生变化。故障,过载和机械异常会导致变压器的初期和严重损坏。变压器的隔离导致电压曲线变化,负载缩减,高补偿,经济损失以及更多问题。了解变压器零件中发生的问题以将其维修并恢复到系统中以获得更好的稳定性,可靠性和经济性非常重要。变压器运行状况监视系统包括在线和离线模式下的预测,标识和诊断,它将为管理公用事业提供足够的内容,以针对预期或发生的问题采取措施。启发式调查发现,与其他零件相比,变压器绕组损坏的可能性更大。提出了一种基于系统辨识的变压器绕组诊断方法。可以确定机械变形的位置和程度,以及专门检测变压器绕组中的径向和轴向变形。在扫描频率响应数据集的诊断算法中,采用了一种在频域和时域中的系统识别方法。对于传递函数和状态空间模型,通过系统地改变串联和并联电路元件,为集总参数变换器模型合成了一个称为变形信息表的参考表。从表格中提取变形的详细信息,以获得指定频率范围和绕组类型的实际频率响应数据。二维频率响应数组的互相关(一个是签名数组,另一个是变形数组)用于将相对性表示为单例。开发了一个工具箱,用于生成启发式变形信息表并使用开发的诊断算法进行诊断。对所提出的算法进行了验证,并针对连续盘式绕组进行了仿真。

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