首页> 外文期刊>Thermal engineering >Cross-Verification of 1D and 3D Models for a WER-1000 Reactor's Pressure Chamber Simulated by the KORSAR/CFD Computation Code in the Modes with Asymmetric Loop Operation
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Cross-Verification of 1D and 3D Models for a WER-1000 Reactor's Pressure Chamber Simulated by the KORSAR/CFD Computation Code in the Modes with Asymmetric Loop Operation

机译:用非对称环路操作模式模拟的WER-1000电抗器压力室的1D和3D模型的交叉验证

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Abstract— The KORSAR/CFD code results from the development of the KORSAR/GP system code certified in 2009 by the Rostekhnadzor (Federal Service for Ecological, Technological, and Nuclear Supervision) as applied to the calculated justification of the safety for VVER reactors. One of the important aspects of the development consists in the introduction of the CFD-module code into functional content for the simulation of spatial turbulent flows in the mixing chambers of reactors using a nested boundary method in the RANS-approximation. The CFD module is combined with a 1D model according to a semi-implicit scheme as a standard code element. Based on the calculations performed for three modes with an asymmetrical equipment operation in the heat-transfer loops of the VVER-1000 reactor, cross-verification has been performed for a 3D model in the CFD approximation, and a quasi-3D-multichannel model of the KORSAR/CFD computation code for the reactor pressure chamber. For cross-verification, the following modes have been chosen: breaking steam pipeline in a steam generator, connecting the main circulation pump while initially operating three pumps at the reactor power of 71% with respect to the nominal value, connecting a pump while initially operating two opposite pumps at the reactor power of 52% with respect to the nominal value. The scenario of the chosen modes is characterized by a decrease in the heat-carrier temperature at the entry into the pressure chamber from a single loop, which leads to an asymmetric increase in the reactor power with respect to the fuel assemblies owing to a negative reactivity effect. It is shown that, because of the artificial increase in the resistance to the downward heat-carrier flow along the channels that represent a pressure chamber in the multichannel calculation scheme, the reproduction of a spatial in-chamber flow pattern obtained using the 3D model of the chamber and its effect exerted on temperature change in the course of the heat-carrier stirring have been gained. The results of calculation using this scheme are in good agreement with data obtained by means of the 3D simulation of the pressure chamber in the CFD approximation in all the considered modes. A sensitivity of the calculation results with respect to changes in the calculation scheme under using the quasi-3D multichannel model of the reactor chamber is demonstrated.
机译:摘要 - Korsar / CFD代码是由罗斯特卡州(联邦服务为生态,技术和核监督)认证的Korsar / GP系统代码的开发,以适用于vver反应堆安全的拟理理由。该开发的一个重要方面的一个重要方面包括使用Rans逼近中的嵌套边界方法将CFD模块代码引入用于模拟反应器混合室中的空间湍流流动。 CFD模块根据作为标准代码元素的半隐式方案与1D模型组合。基于在VVER-1000反应器的传热回路中具有不对称设备操作的三种模式进行的计算,已经在CFD近似下的3D模型执行交叉验证,以及Quasi-3D - 多通道模型电抗器压力室的KorSar / CFD计算码。为了交叉验证,已选择以下模式:在蒸汽发生器中打破蒸汽管道,将主循环泵连接在最初相对于标称值的61%的反应器功率上,在最初运行的同时在71%的反应器功率下操作三个泵两个相对的泵相对于标称值,反应器功率为52%。所选模式的场景的特征在于,从单个环路进入压力室的热载体温度下降,这导致由于负反应性而导致反应器功率相对于燃料组件的反应器功率的不对称增加影响。结果表明,由于沿着表示在多通道计算方案中的压力室的通道的通道的抵抗力的人为增加,所以使用3D模型获得的空间内流动模式的再现已经获得了在热载体搅拌过程中施加温度变化的腔室及其效果。使用该方案的计算结果与通过在所有被考虑模式中的CFD近似中的压力室3D模拟获得的数据吻合。证明了计算结果关于使用反应室的准3D多通道模型下计算方案的变化的计算结果。

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