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Numerical prediction of CHF based on CFD methodology under atmospheric pressure and low flow rate

机译:大气压下基于CFD方法的CHF的数值预测及低流速

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摘要

In order to solve the problem of non-convergence of CHF directly calculated by FLUENT under atmospheric pressure and low flow rate, a CFD methodology was proposed based on four equation drift flux model and an improved RPI wall boiling model to predict the CHF and thermal-hydraulics characteristics in the flow channel formed by the outer wall of the RPV and the inner wall of the insulation. The governing equations and flow boiling models were added into FLUENT solver, and then worked with Mixture multiphase models by user defined functions (UDFs). The developed CFD models for CHF prediction were validated by using experimental data, and the prediction results had a quite good agreement with the experimental data with deviations less than 20%. It indicated that the CFD methodology proposed in this study had a good convergence at atmospheric pressure and low flow rate. Meanwhile the CFD methodology could be qualified to predict the characteristics of CHF, and it provided a potential way to predict the CHF in the flow channel formed by the outer wall of the RPV and the inner wall of the insulation under IVR conditions of nuclear power plants.
机译:为了解决在大气压和低流速下通过流利直接计算CHF的非收敛性的问题,基于四个方程漂移通量模型和改进的RPI壁沸腾模型提出了CFD方法,以预测CHF和热 - 通过RPV的外壁和绝缘的内壁形成的流动通道中的液压特性。将控制方程和流沸程模型加入流畅的求解器,然后通过用户定义的功能(UDF)与混合多相模型一起使用。通过使用实验数据验证了用于CHF预测的开发的CFD模型,预测结果与偏差小于20%的实验数据非常好。它表明,本研究中提出的CFD方法在大气压和低流速下具有良好的收敛性。同时,CFD方法可以有资格预测CHF的特性,并且它提供了一种潜在的方法来预测由RPV的外壁和核电站IVR条件下绝缘的外壁形成的流动通道中的电流沟道中的CHF 。

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