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DESIGN OF AN AUTOMATIC WATERHAMMER PREVENTION SYSTEM

机译:自动水锤预防系统设计

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The Nuclear Regulatory Commission (NRC) issued Generic Letter (GL) 96-06 [1] which required utilities to evaluate the potential for waterhammers in cooling water systems serving containment following a Loss of Offsite Power (LOOP) concurrent with a Loss of Coolant Accident (LOCA) or Main Steam Line Break (MSLB). At Duke's Oconee Nuclear Station, analysis and system testing in response to GL 96-06 concluded that waterhammers occur in the Low Pressure Service Water (LPSW) system during all LOOP events. Column Closure Waterhammers (CCWH) occur when the LPSW pumps restart following a LOOP and rapidly close vapor voids within the system, specifically, in the Reactor Building Cooling Unit (RBCU) and Reactor Coolant Pump (RCP) motor piping. Condensation Induced Waterhammers (CIWH) occur when heated steam voids interact with sub-cooled water in long horizontal piping sections, specifically in the RBCU and Reactor Building Auxiliary Coolers (RBAC) piping. These waterhammers were not expected to result in pipe failure, but resulted in piping code allowable stresses being exceeded. Piping code compliance was achieved by installing modifications that prevent all GL 96-06 related waterhammers inside containment. Two modifications were designed and implemented. These modifications were designed to isolate the piping inside containment, the high point in the open loop system, in order to maintain it in a water solid state. This was accomplished by a valve closure scheme that is actuated by low LPSW supply header pressure. Additionally, "controllable vacuum breakers" (pneumatic valves) open on low LPSW supply header pressure to eliminate void formation and collapse while the isolation valves are closing. The pneumatic isolation valve arrangement is single failure proof to open and to close. The Waterhammer Prevention System (WPS) circuitry closes the valves by one of two digital channels consisting of relays, which are triggered by two of four analog channels consisting of a pressure transmitter/current switch. The valves re-open on increasing supply header pressure. A "leakage accumulator" was provided in the supply header to make-up any boundary valve leakage that may occur when the system is isolated. This provides for a larger allowable aggregate boundary valve leakage rate. The system response was predicted by a model using the thermal-hydraulic code GOTHIC. Following installation, an integrated test was successfully conducted by inducing a LOOP into the LPSW system.
机译:核监管委员会(NRC)发布通用字母(GL)96-06 [1],这需要公用事业公司,以评估冷却水系统中的水抖动的可能性,该系统在丢失非冷却液(环路)并发后的漏洞后,丢失了冷却液的事故(LOCA)或主蒸汽排断(MSLB)。在Duke的OConee核站,响应于GL 96-06的分析和系统测试得出结论,除了在所有循环事件中发生水麦瘟疫(LPSW)系统。当LPSW泵重新启动时,在系统内的环路和快速关闭蒸汽空隙之后,特别是在电抗器构建冷却单元(RBCU)和反应堆冷却剂泵(RCP)电机管道中,发生柱闭合水麦克马锤(CCWH)。当加热的蒸汽空隙中发生冷凝诱导的水麦运动(CIWH)在长水平管道部分中与子冷却水相互作用,特别是在RBCU和反应器建筑物辅助冷却器(RBAC)管道中。这些游虫预计不会导致管道故障,但导致允许的管道代码被超出允许的应力。通过安装防止所有GL 96-06相关的水麦乳锤内的修改来实现管道代码合规性。设计和实施了两种修改。这些修改旨在将管道内部容纳中的管道隔离,开环系统中的高点,以便将其保持在水固态中。这是通过低LPSW供应头压力致动的阀闭合方案来实现的。另外,“可控真空断路器”(气动阀门)在低LPSW供应标题压力下开口,以消除隔离阀闭合的同时消除空隙形成和塌陷。气动隔离阀装置是单次故障证明,可打开和关闭。防水器预防系统(WPS)电路通过由继电器组成的两个数字通道之一封闭阀门,其由由压力变送器/电流开关组成的四个模拟通道中的两个触发。阀门在增加供应头压力上重新开放。在供应头中提供“泄漏蓄能器”以构成系统被隔离时可能发生的任何边界阀泄漏。这提供了更大的允许骨料边界阀漏率。使用热液态码哥特式的模型预测系统响应。安装后,通过将循环引入LPSW系统来成功进行集成测试。

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