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IMPROVEMENT OF THE CATHARE 3D CODE PREDICTION ON PIERO TRANSIENT

机译:CATHARE 3D代码对PIPER暂态的预测的改进

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The PIERO experiment has been carried out to study phase's separation in the lower plenum and the downcomer of a Pressurized Water Reactor (PWR) during the end of the depressurization of a large break loss of coolant accident (LB-LOCA).This experiment has been used for the validation and assessment of the 3D module of CATHARE code [1] but the results are not good because of an overestimation of the liquid entrainment in the lower plenum in one hand and the use of a coarsed meshing for modelling the PIERO experiment in the other hand. Two ways of improvement are possible: the first one and the most complicated is to introduce a stratification model in the 3D module of CATHARE. The other one is a possibility to use a refining meshing in order to simulate PIERO experiment. This second way has been performed and the computations results are greatly improve.Nevertheless, PIERO experiment is not on a reactor scale and a direct application of the meshing recommendations made on PIERO is impossible to translate directly on the reactor case. So, the strategy of validation applied to thereactor case consisted in reproducing a PIERO transient with a full scale lower plenum in a first step. In a second step, a converged meshing for the full scale modelling has been determined. In a last step, results obtained with this kind of modelling have been validated via two correlations developed by Wallis and al., that define boundaries conditions between which the water level remaining in the lower head is allowed to vary. This strategy of validation led to model the reactor's lower plenum with the more axial meshes in order to have good results.
机译:进行PIERO实验是为了研究在冷却剂大量破裂损失事故(LB-LOCA)降压结束时,压水堆(PWR)的下气室和降液管的相分离。 该实验已用于CATHARE代码[1]的3D模块的验证和评估,但由于一方面高估了下充气腔中的液体夹带并使用了粗糙的网格进行建模,所以效果不佳另一方面是PIERO实验。有两种改进方法:第一种也是最复杂的方法是在CATHARE的3D模块中引入分层模型。另一种可能是使用细化网格划分以模拟PIERO实验。已经执行了第二种方法,并且大大提高了计算结果。 尽管如此,PIERO实验还没有在反应堆规模上进行,直接应用PIERO上的啮合建议不可能直接转化到反应堆的壳体上。因此,验证策略适用于 反应器壳体的第一步是在第一步中以完整的下压力室再现PIERO瞬态。第二步,确定了用于全比例模型的收敛网格划分。在最后一步中,已通过Wallis等人开发的两个相关性验证了用这种模型获得的结果,这两个相关性定义了边界条件,允许较低水头中剩余的水位在这些边界条件之间变化。这种验证策略导致对具有更多轴向网格的反应堆下部增压室进行建模,从而获得良好的结果。

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