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A 3D model to solve U-tube steam generator secondary side thermal-hydraulics with coupled primary-to-secondary side heat transfer

机译:用耦合初级对二次侧传热求解U形管蒸汽发生器二次侧热液压的3D模型

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摘要

The U-tubes of steam generators (SG) are concerned by vibration issues. The vibration behavior is driven by the local secondary flow (velocity, void fraction, two-phase pattern). Fluid-elastic instability (FEI) can be considered as the most severe vibration phenomenon, since it features high vibration amplitudes and tube-to-tube contacts, which can rapidly cause tube rupture. In order to predict if the fluid forces exerted along the tube bundle can trigger a FEI, numerical tools able to calculate the secondary side of a SG are needed. In the frame of its mission of assessing methods adopted by utilities for demonstrating the safe operation of nuclear facilities, the French Institut de Radioprotection et de Surete Nucleaire (IRSN) has developed such a numerical model. The model is based on a 3D homogeneous drift-flux formulation of the SG steam-water mixture, together with a porous media approach to account for the tube bundle. The model is implemented in the ANSYS Fluent CFD code. The SG primary side is solved using a dedicated meshing. The secondary side and the primary side meshes communicate through heat transfer, which is fundamental to obtain consistent numerical results. The details of the numerical approach are described in the first part of this paper. Then, numerical versus experimental results comparisons in terms of heat transfer are provided for a SG test facility: numerical and experimental results are in good agreement. The model was then applied to a real SG: numerical results are in good agreement with nominal operating parameters.
机译:蒸汽发生器(SG)的U形管涉及振动问题。振动行为由局部二次流动(速度,空隙分数,两相模式)驱动。流体弹性不稳定(FEI)可被视为最严重的振动现象,因为它具有高振动幅度和管 - 管触点,可以迅速引起管破裂。为了预测沿管束施加的流体力可以触发FEI,需要能够计算SG的次级侧的数值工具。在其特派团的框架中,评估公用事业采用的方法,以证明核设施安全运行,法国Institut de RadioPropotection et de Surete Nucleaire(IRSN)已经开发出这样一个数值模型。该模型基于SG蒸汽水混合物的3D均匀漂移 - 助熔剂配方,以及多孔介质方法来解释管束。该模型在ANSYS流畅的CFD代码中实现。使用专用的啮合解决SG初级侧。次级侧和初级侧网格通过传热进行通信,这是获得一致的数值结果的基础。本文的第一部分描述了数值方法的细节。然后,为SG测试设施提供了数值与实验结果的比较,用于SG测试设施:数值和实验结果很好。然后将该模型应用于真实的SG:数值结果与标称操作参数良好。

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