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Numerical simulation of three dimensional internal flow of a PWR reactor

机译:压水堆反应器三维内部流动的数值模拟

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The coolant flow in the reactor pressure vessel (RPV) lower plenum is complex due to the presence of various internal structures, which has a great influence on the flow distribution at the core inlet. In order to study the thermal hydraulic characteristics in the RPV lower plenum, many scaled down test facilities have been built for different PWR reactors such as Juliette, ACOP, and ROCOM. Although the experimental study is still a main research method, it may be not economical in some situations due to the high cost and the long study period. Compared with the experimental method, Computational Fluid Dynamics (CFD) methodology can simulate three dimensional fluid flow in complex geometries and perform parametric studies more easily. The detailed and localized thermal hydraulic characteristics which are difficult to measure during experiments can be obtained. So CFD simulation has been widely used nowadays. One of the purposes of numerical simulations of the internal flow in a RPV is to get the flow distribution at the core inlet, then to make an optimization for the flow diffusor in the RPV lower plenum to improve the core inlet flow distribution homogeneity. Appropriate optimizations for the flow diffusor depends on fully understanding the flow phenomena in the RPV lower plenum. In this paper, Phenomenon Identification and Ranking Table (PIRT) is adopted to analyze the physical phenomenon that occurs in the RPV lower plenum with the typical 900MW reactor internal structures, and the importance of the various physical phenomena and the reference parameters are ranked through expert opinions and literature review. Then a preliminary three dimensional CFD simulation for the reactor vessel is conducted. The main phenomena identified by the PIRT can be observed from the simulation results.
机译:由于存在各种内部结构,反应堆压力容器(RPV)下增压室中的冷却剂流非常复杂,这对堆芯入口处的流分布有很大影响。为了研究RPV下气室中的热工水力特性,已为Juliette,ACOP和ROCOM等不同的压水堆建造了许多按比例缩小的测试设施。尽管实验研究仍然是主要的研究方法,但由于成本高和研究周期长,在某些情况下它可能并不经济。与实验方法相比,计算流体动力学(CFD)方法可以模拟复杂几何形状中的三维流体流动,并且更容易进行参数研究。可以获得在实验期间难以测量的详细和局部的热工水力特性。因此,CFD模拟如今已被广泛使用。 RPV内部流的数值模拟的目的之一是获得岩心入口处的流量分布,然后对RPV下增压室中的扩散器进行优化,以提高岩心入口流量分布的均匀性。流量扩散器的适当优化取决于完全了解RPV下气室中的流量现象。本文采用现象识别和排序表(PIRT),对典型900MW反应堆内部结构在RPV下气室中发生的物理现象进行了分析,并通过专家对各种物理现象的重要性和参考参数进行了排序。意见和文献综述。然后对反应堆容器进行了初步的三维CFD模拟。 PIRT识别的主要现象可以从仿真结果中观察到。

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