Thermal and Structural Analysis of Reactor Vessel Lower Head Considering Core Meltdown Accident

Juan Luo, Jia-cheng Luo, Lei Sun, Peng Tang
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Abstract

In the core meltdown severe accident, in-vessel retention (IVR) of molten core debris by external reactor vessel cooling (ERVC) is an important mitigation strategy. During the IVR strategy, the core debris forming a melt pool in the reactor pressure vessel (RPV) lower head (LH) will produce extremely high thermal and mechanical loadings to the RPV, which may cause the failure of RPV due to over-deformation of plasticity or creep. Therefore, it is necessary to study the thermomechanical behavior of the reactor vessel LH during IVR condition. In this paper, under the assumption of IVR-ERVC, the thermal and structural analysis for the RPV lower head is completed by finite element method. The temperature field and stress field of the RPV wall, and the plastic deformation and creep deformation of the lower head are obtained by calculation. Plasticity and creep failure analysis is conducted as well. Results show that under the assumed conditions, the head will not fail due to excessive creep deformation within 200 hours. The results can provide basis for structural integrity analysis of pressure vessels.
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考虑堆芯熔毁事故的反应堆容器下封头热结构分析
在堆芯熔毁严重事故中,通过外部反应堆容器冷却实现堆芯熔渣的容器内滞留是一种重要的缓解策略。在IVR策略中,堆芯碎屑在反应堆压力容器(RPV)下水头(LH)中形成熔池,会对RPV产生极高的热载荷和机械载荷,可能导致RPV因塑性过度变形或蠕变而失效。因此,有必要对反应器容器LH在IVR工况下的热力学行为进行研究。本文在IVR-ERVC假设下,采用有限元法对RPV下水头进行了热分析和结构分析。通过计算得到了井壁的温度场、应力场以及井壁下封头的塑性变形和蠕变变形。并进行了塑性和蠕变破坏分析。结果表明:在假定条件下,200小时内封头不会因蠕变过大而失效。研究结果可为压力容器结构完整性分析提供依据。
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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