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Qualification of helium measurement system for detection of fuel failures in a BWR

机译:用于检测BWR燃料故障的氦气测量系统的鉴定

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There are several methods for surveillance of fuel integrity during the operation of a boiling water reactor (BWR). The detection of fuel failures is usually performed by analysis of grab samples of off-gas and coolant activities, where a measured increased level of ionizing radiation serves as an indication of new failure or degradation of an already existing one. At some nuclear power plants the detection of fuel failures is performed by on-line nuclide specific measurements of the released fission gases in the off-gas system. However, it can be difficult to distinguish primary fuel failures from degradation of already existing failures. In this paper, a helium measuring system installed in connection to a nuclide specific measuring system to support detection of fuel failures and separate primary fuel failures from secondary ones is presented. Helium measurements provide valuable additional information to measurements of the gamma emitting fission gases for detection of primary fuel failures, since helium is used as a fill gas in the fuel rods during fabrication. The ability to detect fuel failures using helium measurements was studied by injection of helium into the feed water systems at the Forsmark nuclear power plant (NPP) in Sweden and at the nuclear power plant Leibstadt (KKL) in Switzerland. In addition, the influence of an off-gas delay line on the helium measurements was examined at KKL by injecting helium into the off-gas system. By using different injection rates, several types of fuel failures with different helium release rates were simulated. From these measurements, it was confirmed that the helium released by a failed fuel can be detected. It was also shown that the helium measurements for the detection of fuel failures should be performed at a sampling point located before any delay system. Hence, these studies showed that helium measurements can be useful to support detection of fuel failures. However, not all fuel failures which occurred at Forsmark NPP during the test period were detected; neither with the helium measurement system nor with the system for the measuring the gamma emitting noble fission gases. Possible reasons for that are discussed in the paper. The experiences with helium measurements for detection of fuel failures are still limited since the helium detector has only been in operation for two years at Forsmark NPP and for four years at Leibstadt nuclear power plants. Further studies are therefore needed to optimize these systems.
机译:在沸水反应堆(BWR)的运行过程中,有几种监视燃料完整性的方法。燃料故障的检测通常是通过分析废气和冷却剂活动的抓取样本来进行的,在这种情况下,测得的电离辐射水平的增加可以指示新的故障或已经存在的故障的退化。在某些核电厂,通过对废气系统中释放的裂变气体的核素在线测量来执行燃料故障的检测。但是,很难将主要燃料故障与已经存在的故障退化区分开来。在本文中,提出了一种氦测量系统,该系统安装在与核素专用测量系统连接的位置,以支持燃料故障的检测并将一次燃料故障与二次燃料故障分开。氦气测量为伽马发射裂变气体的测量提供了宝贵的附加信息,用于检测一次燃料故障,因为氦气在制造过程中被用作燃料棒中的填充气体。通过在瑞典的福斯马克核电厂(NPP)和瑞士的莱布斯塔特(KKL)核电厂的给水系统中注入氦气,研究了使用氦气测量检测燃料故障的能力。此外,在KKL通过将氦气注入废气系统中,检查了废气延迟线对氦气测量的影响。通过使用不同的喷射速率,模拟了几种具有不同氦释放速率的燃料故障。从这些测量结果证实,可以检测到由失效燃料释放的氦气。还显示,应在位于任何延迟系统之前的采样点进行氦气测量,以检测燃料故障。因此,这些研究表明,氦气测量可用于支持燃料故障的检测。但是,并未检测到在测试期间在Forsmark NPP上发生的所有燃油故障;既不使用氦气测量系统,也不使用用于测量散发伽玛的稀有裂变气体的系统。本文讨论了可能的原因。用于氦气检测以检测燃料故障的经验仍然有限,因为氦气检测器在Forsmark NPP中仅运行了两年,而在莱布斯塔特核电站仅运行了四年。因此,需要进一步研究以优化这些系统。

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