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CFD-DEM SIMULATION OF A CONCEPTUAL GAS-COOLED FLUIDIZED BED NUCLEAR REACTOR

机译:CFD-DEM仿真概念气体冷却流化床核反应堆

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Several conceptual designs of the fluidized-bed nuclear reactor have been proposed due to its many advantages over conventional nuclear reactors such as PWRs and BWRs. Amongst their characteristics, the enhanced heat transfer and mixing enables a more uniform temperature distribution, reducing the risk of hot-spot and excessive fuel temperature, in addition to resulting in a higher burnup of the fuel. Furthermore, the relationship between the bed height and reactor neutronics turns the coolant flow rate control into a power production mechanism. Moreover, the possibility of removing the fuel by gravity from the movable core in case of a loss-of-cooling accident increases its safety. High-accuracy modeling of particles and coolant flow in fluidized bed reactors is needed to evaluate reliably the thermal-hydraulic efficiency and safety margin. The two-way coupling between solid and fluid can account for high-fidelity solid-solid interaction and reasonable accuracy in fluid calculation and fluid-solid interaction. In the CFD-DEM model, the particles are modeled as a discrete phase, following the DEM approach, whereas the fluid flow is treated as a continuous phase, described by the averaged Navier-Stokes equations on a computational cell scale. In this work, the coupling methodology between Fluent and Rocky is described. The numerical approach was applied to the simulation of a bubbling fluidized bed and the results were compared to experimental data and showed good agreement.
机译:由于其与PWR和BWR等传统核反应堆的许多优点,已经提出了流化床核反应堆的几种概念设计。在它们的特性中,增强的传热和混合使得能够更均匀的温度分布,除了导致燃料的燃料更高的燃烧,还可以降低热点和过度燃料温度的风险。此外,床高度和反应器中子体之间的关系将冷却剂流量控制变为动力产生机制。此外,在丧失冷却事故的情况下,通过从可移动芯中除去燃料的可能性增加了其安全性。需要高精度建模流化床反应器中的颗粒和冷却剂流量,以可靠地评估热液压效率和安全裕度。固体和流体之间的双向耦合可以考虑高保真固体相互作用和流体计算和流体固体相互作用的合理精度。在CFD-DEM模型中,在DEM方法之后,将颗粒建模为离散阶段,而流体流量被视为连续相,由平均的Navier-Stokes方程描述在计算单元格尺度上。在这项工作中,描述了流利和岩石之间的耦合方法。将数值方法应用于模拟鼓泡流化床,并将结果与​​实验数据进行比较并显示出良好的一致性。

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