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AP1000 IRWST numerical analysis with GOTHIC

机译:AP1000 IRWST与哥特式数值分析

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The AP1000 Passive Residual Heat Removal (PRHR) system plays a significant role as it helps to remove the core decay heat, using the In-containment Refueling Water Storage Tank (IRWST) as a heat sink. The IRWST is located above the core, promoting natural circulation and allowing to be the mid-term heat-sink for the reactor core. The thermo-hydraulic pool behavior during an accident has an influence in the containment pressure and temperature, as happens in the pressure suppression pool in BWR reactors.Due to the importance of the IRWST performance on the AP1000 containment, a numerical analysis of a scaled experiment has been done using the GOTHIC code. Firstly, an IRWST scaled-down model is created, a mesh sensitivity analysis is performed, and the results obtained are compared against experimental results available in the literature. It is found the importance of the mesh discretization for the proper thermal-stratification modeling. Then, the reference model setup and mesh are applied in a full-scale prototypic model. The mesh influence on the thermal stratification is analyzed, as well as its impact on the AP1000 containment pressure. The mesh and setup for the full-scale model are selected to be implemented in a full containment 3D model in future works.
机译:AP1000被动残留的散热(PRHR)系统起到有助于除去核心衰变热量的显着作用,使用内容加油储水罐(IRWST)作为散热器。 IRWST位于核心之上,促进自然循环,并允许成为反应器芯的中期散热器。事故中的热水池行为在BWR反应器中的压力抑制池中发生了影响压力和温度的影响,这是对AP1000遏制时IRWST性能的重要性,对缩放实验的数值分析已经使用了哥特式代码完成。首先,创建IRWST缩放模型,进行网眼敏感性分析,并将获得的结果与文献中可获得的实验结果进行比较。发现网格离散化的重要性对于适当的热分层建模。然后,在满量程的原型模型中应用参考模型设置和网格。分析了对热分层的筛网影响,以及对AP1000容纳压力的影响。选择全尺度模型的网格和设置将在将来的工作中以完全容纳3D模型实现。

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