Transition to Online Cable Insulation Condition Monitoring

S. Glass, L. Fifield, Mychal P. Spencer
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引用次数: 1

Abstract

Nuclear power plant cables were originally qualified for 40 year life and generally have not required specific test verification to assure service availability through the initial plant qualification period. However, license renewals to 60 and 80 years of operation require a cable aging management program that depends on some form of test and verification to assure fitness for service. Environmental stress (temperature, radiation, chemicals, water, and mechanical) varies dramatically within a nuclear power plant and, in some cases, cables have degraded and required repair or replacement before their qualified end-of-life period. In other cases, cable conditions have been mild and dependable cable performance confirmed to extend well beyond the initial qualified life. Most offline performance-based testing requires cables to be decoupled and de-energized for specially trained technicians to perform testing. These offline tests constitute an expensive operational burden that limits the economic viability of nuclear power plants. Although initial investment may be higher, new online test practices are emerging as options or complements to offline testing that avoid or minimize the regularly scheduled offline test burden. These online methods include electrical and fiber-optic partial discharge measurement, spread spectrum time or frequency domain reflectometry, distributed temperature profile measurements, and local interdigital capacitance measurement of insulation characteristics. Introduction of these methods must be supported by research to confirm efficacy plus either publicly financed or market driven investment to support the start-up expense of cost-effective instrumentation to monitor cable condition and assure reliable operation. This work summarizes various online cable assessment technologies plus introduces a new cable motor test bed to assess some of these technologies in a controlled test environment.
向在线电缆绝缘状态监测过渡
核电厂电缆最初的使用寿命为40年,通常不需要特殊的测试验证,以确保在最初的工厂认证期间的服务可用性。然而,60年和80年的许可证更新需要一个电缆老化管理程序,该程序依赖于某种形式的测试和验证,以确保服务的适用性。核电站内的环境压力(温度、辐射、化学物质、水和机械)变化很大,在某些情况下,电缆已经退化,需要在合格的使用期限之前进行维修或更换。在其他情况下,电缆条件温和,可靠的电缆性能被证实远远超出了最初的合格寿命。大多数基于离线性能的测试都需要将电缆解耦并断开电源,以便经过专门培训的技术人员进行测试。这些脱机试验构成了昂贵的运行负担,限制了核电站的经济可行性。尽管初始投资可能更高,但是新的在线测试实践正在作为离线测试的选择或补充出现,从而避免或最小化定期安排的离线测试负担。这些在线方法包括电气和光纤局部放电测量、扩频时域或频域反射测量、分布式温度分布测量以及绝缘特性的局部数字间电容测量。这些方法的引入必须得到研究的支持,以确认其有效性,再加上公共资助或市场驱动的投资,以支持具有成本效益的仪器的启动费用,以监测电缆状况并确保可靠运行。这项工作总结了各种在线电缆评估技术,并介绍了一种新的电缆电机测试台,以在受控测试环境中评估其中一些技术。
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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