反应器挡板冷却膨胀评估CFD框架

Y. Filonova, V. Filonov, Y. Dubyk
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引用次数: 3

摘要

本文提出了一种改进的反应堆堆芯挡板温度分布估计方法,在运行过程中,在标称功率水平上,以解决反应堆内部膨胀问题。膨胀是制约VVER-1000机组堆芯内部长期运行的主要因素。材料辐照膨胀和蠕变模型对金属内部温度分布非常敏感,因此需要对堆芯折流板金属热水力冷却特性进行更详细的分析。提出了VVER-1000反应堆挡板冷却的CFD分析框架。首先,建立了求解边界条件的解析模型,简化了CFD分析,即将冷却通道的真实几何形状替换为等效单元,将核心表示为具有相应特性的多孔体;其次,CFD分析采用60度对称,包括:岩心、挡板和岩心筒,受挡板高度限制。将岩心简化为考虑空间体积能量释放的均匀体。考虑到伽马射线热的产生,堆芯折流板是一个整体。模型包括一个简化的几何连接螺柱,考虑冷却剂通过螺母槽的冷却流。计算得到的对流系数和温度与解析模型吻合较好,与RELAP5/mod3.2相比计算结果更加方便。所得结果用于估计挡板膨胀过程。由于温度分布不保守,导致膨胀变形和蠕变明显减小。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Reactor Baffle Cooling CFD Framework for Swelling Assessment
This Paper presents an improved estimation of reactor core baffle temperature distribution, during operation, at the nominal power level to address swelling problems of the reactor internals. Swelling is the main limiting factor in the reactor core internals long term operation of VVER-1000 nuclear units. The material irradiation-induced swelling and creep models are very sensitive to temperature distribution in metal, thus a more detailed analysis of the core baffle metal thermohydraulic cooling characteristics is required. A framework for CFD analysis of VVER-1000 reactor baffle cooling is presented. Firstly, an analytical model was developed to obtain boundary conditions and simplify CFD analysis, i.e. the real geometry of the cooling channels was replaced by equivalent elements, the core was presented as porous body with the appropriate characteristics. Secondly, the CFD analysis was performed using 60–degree symmetry, which included: core, baffle and core barrel, it is limited by the height of the baffle. Core is simplified as a homogeneous body with considering of spatial volumetric energy release. Core baffle is presented as monolithic body with considering of gamma-ray heat generation. Model includes a simplified geometry of connecting studs, considering cooling flow of the coolant through the nuts grooves. Calculated convection coefficient and temperature are in good agreement with analytical model, and give a more convenient result comparing to RELAP5/mod3.2. Obtained results were used to estimate baffle swelling process. Due to the less conservative results in temperature distribution swelling and creep deformations significantly decreased.
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