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Validation of a CFD analysis model for predicting candu-6 moderator temperature against SPEL experiments

机译:用于预测棉花实验的CFD分析模型的验证

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A validation of a 3D CFD model for predicting local subcooling of the moderator in the vicinity of calandria tubes in a CANDU-6 reactor is performed. The small scale moderator experiments performed at Sheridan Park Experimental Laboratory(SPEL) in Ontario, Canada[l] is used for the validation. Also a comparison is made between previous CFD analyses based on 2DMOTH and PHOENICS, and the current analysis for the same SPEL experiment. For the current model, a set of grid structures for the same geometry as the experimental test section is generated and the momentum, heat and continuity equations are solved by CFX-4.3, a CFD code developed by AEA technology. The matrix of calandria tubes is simplified by the porous media approach. The standard k- ε turbulence model associated with logarithmic wall treatment and SIMPLEC algorithm on the body fitted grid are used. Buoyancy effects are accounted for by the Boussinesq approximation. For the test conditions simulated in this study, the flow pattern identified is the buoyancy-dominated flow, which is generated by the interaction between the dominant buoyancy force by heating and inertial momentum forces by the inlet jets. As a result, the current CFD moderator analysis model predicts the moderator temperature reasonably, and the maximum error against the experimental data is kept at less than 2.0°C over the whole domain. The simulated velocity field matches with the visualization of SPEL experiments quite well.
机译:进行3D CFD模型的验证,用于预测CANDRU-6反应器中的Calandria管附近的主持人局部过冷。加拿大安大略省谢里丹公园实验实验室(Spel)进行的小规模主持人实验[L]用于验证。此外,基于2DMOTH和Phoenics的先前CFD分析之间的比较,以及相同偏孔实验的当前分析。对于当前模型,产生与实验测试部分相同的几何形状的一组网格结构,并且通过AEA技术开发的CFX-4.3解决了动量,热和连续性方程。 Calandria管的基质通过多孔介质方法简化。使用了与对数壁处理和体拟合电网上的Simplec算法相关的标准k-ε湍流模型。 BoussinesIN Questimation占浮力效应。对于在本研究中模拟的测试条件,所识别的流动模式是浮力主导的流动,其通过通过入口喷射通过加热和惯性动量来产生主力浮力之间的相互作用而产生。结果,电流CFD调节器分析模型合理地预测了主持人温度,并且对实验数据的最大误差在整个域中保持在小于2.0°C。模拟速度场与SPEL实验的可视化相匹配。

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