将统计汇总数应用于旋转机械 PD 数据,以便非专业人员识别多种老化机制

M. Fenger, G. Stone
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引用次数: 0

摘要

过去,偏度和峰度等统计汇总数被应用于局部放电数据,以帮助建立诊断框架,识别局部放电源的类型、性质或位置,并评估绝缘健康状况。本文讨论了将模式、平均值、标准偏差、偏斜和峰度(高级汇总数,简称 ASN)应用于在线局部放电 (PD) 数据的框架,以便从作用于一组定子绕组的多个放电机制中识别出单独的局部放电机制。研究表明,对这些高级汇总数字进行简单的趋势分析有助于确定单个放电机制的相对增长,从而确定哪些局部放电源构成了局部放电活动的主要增长(通过正常的 NQN 或 Qm 趋势进行评估)。最后,还将介绍 ASN 的实际应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Application of statistical summary numbers to rotating machine PD Data for nonexpert identification of multiple aging mechanisms
In the past, statistical summary numbers such as skew and kurtosis have been applied to PD data to help establish a diagnostic framework for identifying the type, nature or location of a PD source as well as assessing the insulation health. This paper discusses a framework for applying the mode, mean, standard deviation, skew and kurtosis (advanced summary numbers or ASN for short) to on-line partial discharge (PD) data for the identification of individual PD mechanisms out of a group of multiple discharge mechanisms acting on a set of stator windings. The study shows how simple trending of these advanced summary numbers can help establish relative increases in the individual discharge mechanisms and consequently establish which PD sources constitute the predominant increase in partial discharge activity as evaluated via a normal NQN or Qm trend. Finally, a practical application on the application of ASN will be given.
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