CFD Analysis and Structural Safety Assessment of a Bypass Mitigation Device Used During a Ti-SGTR Accidental Release From a MSSV

Wung Jae Wang, M. Yim
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引用次数: 1

Abstract

In Nuclear power plants, Main steam safety valve (MSSV) is a barrier to prevent overpressure of steam flow by opening the secondary cycle to the atmosphere. Since MSSVs operate at condition of high temperature and pressure, they have possibility for stuck-open failure. If this accident occurs, large amount of steam or gases release through failed MSSV. It may lead Thermally-induced Steam generator tube rupture (TI-SGTR) due to sudden high gradient of temperature and pressure. With loss of electrical power, TI-SGTR occurs, Core will start to melt in 2–3hours after loss of electrical power. When TI-SGTR occurs with core melt, Leakage of radioactive material occurs through MSSV to environment. Though the probability of an accident is very low, the release of radioactive material can lead large cancer risk to the public. Therefore, many studies to mitigate the radioactive materials are in progress such as diversion to containment building or capturing with external mitigation system. In this study, we are focusing on this capturing device. The objective of this study is to analyze integrity of mitigation device using fluid behavior from MSSV to capturing pipe. Hydraulic conditions at safety valve inlet were used from previous researches. Using commercial simulation software, computational fluid dynamics (CFD) analysis was performed for distribution of fluid temperature, pressure, velocity in MSSV and pipes. For structural safety assessment, 1-way Fluid-Structure interaction (FSI) method was used. CFD result was applied for load on structure surfaces to simulate transient structural analysis of mitigation device. As a result, stresses, strains of capturing pipe were calculated and integrity was discussed.
MSSV事故释放Ti-SGTR时旁路缓解装置的CFD分析和结构安全性评估
在核电站中,主蒸汽安全阀(MSSV)是通过向大气打开二次循环来防止蒸汽流超压的屏障。由于mssv在高温高压条件下工作,存在卡开故障的可能性。如果发生这种事故,大量的蒸汽或气体通过故障的MSSV释放。由于温度和压力的突然高梯度,可能导致热致蒸汽发生器管破裂。当断电时,会发生TI-SGTR,在断电后2 - 3小时内堆芯开始熔化。当TI-SGTR与堆芯熔体同时发生时,放射性物质通过MSSV向环境泄漏。虽然发生事故的可能性很低,但放射性物质的释放会给公众带来很大的癌症风险。因此,许多减缓放射性物质的研究正在进行中,如转移到安全壳建筑物或用外部减缓系统捕获。在本研究中,我们将重点研究这种捕获装置。本研究的目的是利用从MSSV到捕获管的流体行为来分析减缓装置的完整性。采用了前人研究的安全阀进口液压工况。利用商业模拟软件,对MSSV和管道内的流体温度、压力、速度分布进行了计算流体动力学(CFD)分析。结构安全性评价采用单向流固耦合(FSI)法。将CFD计算结果应用于结构表面荷载,模拟减振装置的瞬态结构分析。计算了捕集管的应力、应变,并对捕集管的完整性进行了讨论。
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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