熔融钠与标准管道保温的相互作用

IF 0.5 Q4 NUCLEAR SCIENCE & TECHNOLOGY Journal of Nuclear Engineering and Radiation Science Pub Date : 2023-06-20 DOI:10.1115/1.4062798
D. LaBrier, Jordan Harley, Morgan Robbins
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引用次数: 0

摘要

安全系统的设计和实施对任何核电站的运行都至关重要。对于钠冷却的核反应堆,反应堆堆芯外部的危险以熔融钠的形式存在,熔融钠通过退化的管道结构泄漏。这些结构通常包裹在高温绝缘材料中,以保持管道中钠熔融所需的热量。虽然大量的钠泄漏非常明显,经常导致危险的火灾情况,但少量的熔融钠泄漏通常被隔热罩掩盖,直到大量材料聚集在故障管道外。这项研究集中在熔融钠和标准玻璃纤维绝缘在100 ?到500 ?绝缘材料的降解始于有机粘结剂在250℃左右的挥发,此后,在与钠直接接触的区域中,绝缘材料以更快的速度劣化。收集了与熔融钠接触的各种样品位置的化学剖面数据,只有少量的钠含量增加,这可归因于外部钠源。通过这种方式,熔融钠不会在化学上降解绝热材料,而是在局部范围内加速绝热材料的热降解,成为绝热材料的集中热源。
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Interactions Between Molten Sodium and Standard Pipe Insulation
Safety system design and implementation is critical to the operation of any nuclear plant. For sodium cooled nuclear reactors, hazards external to the reactor core are present in the form of molten sodium that leaks through degraded piping structures. These structures are often clad in high-temperature insulation to preserve the heat needed to keep the sodium molten in the piping. While large sodium leaks are quite noticeable and often result in hazardous fire situations, small leaks of molten sodium are often masked by the shroud of insulation until a large pool of material has collected outside of the failed pipe. This study concentrated on the physical and chemical interactions between molten sodium and standard fiberglass insulation in temperatures ranging from 100 ? to 500 ?. The degradation of the insulation material begins with the volatilization of the organic binder around 250 ?, thereafter the insulation deteriorates at an advanced rate in areas that are in direct contact with the sodium. Chemical profile data was collected for a variety of samples locations that were in contact with the molten sodium, with only a slight increase in the amount of sodium present that can be attributed to the external sodium source. In this way, the molten sodium does not chemically degrade the insulation, but rather accelerates the thermal degradation of the insulation on a local scale, acting as a concentrated heat source to the insulation.
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来源期刊
CiteScore
1.30
自引率
0.00%
发文量
56
期刊介绍: The Journal of Nuclear Engineering and Radiation Science is ASME’s latest title within the energy sector. The publication is for specialists in the nuclear/power engineering areas of industry, academia, and government.
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