Global monitoring approach in a large autotransformer through PD, DDF and DGA analysis: PD source location and maintenance action planning

M. Tozzi, A. Cavallini, G. Montanari, V. Iuliani, C. Serafino
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引用次数: 3

Abstract

Feasibility and effectiveness of a Global Monitoring approach on a 250 MVA autotransformer are illustrated in this paper. The on-line Global Monitoring System (GMS) is constituted by a Partial Discharge Monitoring (PDM) system, a bushings Dielectric Dissipation Factor Monitoring (DDFM) system and a Dissolved Gas Analysis (DGA) on-line monitoring unit. Combining the results obtained from the three systems, it was possible to detect, identify and locate two different PD sources producing a critical level of hydrogen. The first PD activity, ascribable to presence of gas bubbles in the oil, disappeared after oil treatment. The second one, due to wrong constructional arrangement at the winding connections to the bushings, did not extinguish after the oil treatment and started again to produce a large and critical amount of hydrogen. The trend of the PD activity was analyzed for six months, resorting to statistical indexes, such as the amplitude and repetition rate, in order to help the maintenance manager to plan proper actions. This successful example highlights how predictive monitoring systems can reduce the maintenance costs in critical assets as large power transformers, stressing the importance of analyzing various diagnostics marker together in a global monitoring approach [1–3].
通过 PD、DDF 和 DGA 分析,对大型自耦变压器进行全局监测:PD 源定位和维护行动规划
本文阐述了在一台 250 MVA 自耦变压器上采用全球监测方法的可行性和有效性。在线全球监测系统 (GMS) 由局部放电监测 (PDM) 系统、套管介质损耗因数监测 (DDFM) 系统和溶解气体分析 (DGA) 在线监测装置组成。综合这三个系统的监测结果,可以检测、识别和定位产生临界氢含量的两个不同的放电源。第一种 PD 活动可归因于油中气泡的存在,在油处理后消失了。第二个 PD 源是由于绕组与轴套连接处的结构安排错误造成的,在油处理后并未消失,而是再次开始产生大量临界氢气。通过使用振幅和重复率等统计指标,对六个月的 PD 活动趋势进行了分析,以帮助维护经理计划适当的行动。这一成功案例强调了预测性监控系统如何降低大型电力变压器等关键资产的维护成本,同时强调了在全局监控方法中对各种诊断标记进行综合分析的重要性 [1-3]。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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