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首页> 外文期刊>Progress in nuclear engergy >The effective convectivity model for simulation of melt pool heat transfer in a light water reactor pressure vessel lower head. Part II: Model assessment and application
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The effective convectivity model for simulation of melt pool heat transfer in a light water reactor pressure vessel lower head. Part II: Model assessment and application

机译:用于模拟轻水反应堆压力容器下缸盖中熔池传热的有效对流模型。第二部分:模型评估与应用

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The paper reports detailed assessments and representative application of the effective convectivity model (ECM) developed and described in the companion paper (Tran and Dinh, submitted for publication). The ECM capability to accurately predict energy splitting and heat flux profiles in volumetrically heated liquid pools of different geometries over a range of conditions related to accident progression is examined and benchmarked against both experimental data and CFD results. Augmented with models for phase changes in binary mixture, the resulting PECM (phase-change ECM) is validated against a non-eutectic heat transfer experiment. The PECM tool is then applied to predict thermal loads imposed on the reactor vessel wall and Control Rod Guide Tubes (CRGTs) during core debris heatup and melting in the BWR lower plenum. The reactor-scale simulations demonstrate the PECM's high computational performance, particularly needed to analyze processes during long transients of severe accidents. The analysis provides additional arguments to support an outstanding potential of using the CRGT cooling as a severe accident management measure to delay the vessel failure and increase the likelihood of in-vessel core melt retention in the BWR.
机译:该论文报告了对流有效模型(ECM)的详细评估和代表性应用,该模型是在随行论文(Tran和Dinh,已提交出版)中开发和描述的。检验了ECM在与事故进展相关的一系列条件下准确预测不同几何形状的体积加热液体池中的能量分裂和热通量分布的能力,并针对实验数据和CFD结果进行了基准测试。借助二元混合物中相变模型的增强,针对非共晶传热实验对所得的PECM(相变ECM)进行了验证。然后,将PECM工具应用于预测堆芯碎屑加热和BWR下气室融化期间施加在反应堆容器壁和控制棒导管(CRGT)上的热负荷。反应堆规模的仿真证明了PECM的高计算性能,特别是在严重事故的长期瞬态过程中分析过程时特别需要。该分析提供了更多的论据,以支持使用CRGT冷却作为严重事故管理措施来延迟船舶故障并增加BWR中船内芯熔体滞留可能性的巨大潜力。

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