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Particle Based Modeling of Fuel Plate Melting under Coolant Channel Flow Blockage

机译:冷却剂通道流量阻塞燃料板熔化的基于颗粒模型

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Core cooling channel inlet blockage has damaged fuel in plate fueled reactors and contributes significantly to the probability of fuel damage based on Probabilistic Risk Assessment. A Smoothed Particle Hydrodynamics (SPH) model for fuel melt from inlet flow blockage for the High Flux Isotope Reactor and similar plate fueled research reactors, commonly referred to as MTR type reactors, is presented. The model is coded for high throughput graphics processing unit (GPU) calculations. Melt progression models support estimation of energy release during progression of fuel melting and fuel coolant interaction (FCI). Accurate mechanistic fuel melt progression models support best estimate prediction of stress on the reactor vessel from the rapid energy release due to FCI, and allow movement toward quantification of uncertainty in fuel coolant flow blockage consequence assessment. The SPH modeling approach is convenient for following movement of fuel and coolant during melt progression, is structured to facilitate rapid massively parallel computation, and provides a tool for capturing the complex interactions of fuel melting in steam and water.
机译:芯冷却通道入口阻塞在板材燃料反应器中具有损坏的燃料,并基于概率风险评估的燃料损坏的概率显着贡献。提出了一种平滑的粒子流体动力学(SPH)用于高通量同位素反应器的入口流堵塞燃料熔体和类似的板燃料研究反应器,通常称为MTR型反应器。该模型被编码为高吞吐量图形处理单元(GPU)计算。熔融进展模型燃料熔化进展期间能量释放的估计和燃料冷却剂相互作用(FCI)。精确的机械燃料熔化进展模型支持从FCI引起的快速能量释放对反应器容器上应力的最佳估计预测,并允许在燃料冷却剂流阻塞后果评估中定量不确定性的定量。 SPH建模方法方便在熔体进展期间燃料和冷却剂的后续移动方便,构成促进快速大规模平行的计算,并提供用于捕获蒸汽和水中燃料熔化的复杂相互作用的工具。

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