铅冷快堆燃料包壳密封性监测方法的特点

A. V. Dragunova, M. Morkin, V. Perevezentsev
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引用次数: 0

摘要

为了及时发现失效的燃料元件,反应堆装置应配备燃料包壳密封性监测系统(FCTMS)。在使用重液态金属冷却剂(HLMC)的反应堆中,监测燃料包壳密封性的最有效方法是检测气态裂变产物(GFP)。本文介绍了在液态金属冷却堆中基于裂变产物和延迟中子检测构建FCTMS的基本原理。需要指出的是,在使用高强度核反应堆的反应堆装置中,通过检测gfp可以最有效地监测燃料包壳的密封性。本文分析了液态金属冷却堆裂变产物的行为,包括溶解态和气泡态的裂变产物沿回路的运动、挥发性裂变产物在铅冷却剂(LC)和结构元件表面的吸附、溶解态裂变产物在LC中的脱气以及不同性质的气溶胶颗粒对覆盖气体的过滤。此外,还对正在开发的反应器在LC环境中转移gfp的条件进行了一般描述。最后,提出了一个数学模型,可以在燃料元件密封性失效后的任何时间确定每个反应堆单元中参考放射性核素的计算活度。在此模型的基础上,提出了利用反应堆装置内气体活度监测燃料包壳密封性的方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Features of methods for monitoring the fuel cladding tightness in lead-cooled fast breeder reactors
To timely detect failed fuel elements, a reactor plant should be equipped with a fuel cladding tightness monitoring system (FCTMS). In reactors using a heavy liquid-metal coolant (HLMC), the most efficient way to monitor the fuel cladding tightness is by detecting gaseous fission products (GFP). The article describes the basic principles of constructing a FCTMS in liquid-metal-cooled reactors based on the detection of fission products and delayed neutrons. It is noted that in a reactor plant using a HLMC the fuel cladding tightness is the most efficiently monitored by detecting GFPs. The authors analyze various aspects of the behavior of fission products in a liquid-metal-cooled reactor, such as the movement of GFPs in dissolved and bubble form along the circuit, the sorption of volatile FPs in the lead coolant (LC) and on the surfaces of structural elements, degassing of the GFPs dissolved in the LC, and filtration of cover gas from aerosol particles of different nature. In addition, a general description is given of the conditions for the transfer of GFPs in a LC environment of the reactor being developed. Finally, a mathematical model is presented that makes it possible to determine the calculated activity of reference radionuclides in each reactor unit at any time after the fuel element tightness failure. Based on this model, methods for monitoring the fuel cladding tightness by the gas activity in the gas volumes of the reactor plant will be proposed.
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