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Deleterious Thermal Effects Due To Randomized Flow Paths in Pebble Bed, and Particle Bed Style Reactors

机译:卵石床和颗粒床式反应器中随机流动路径造成的有害热效应

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A review of literature associated with Pebble Bed and Particle Bed reactor core research has revealed a systemic problem inherent to reactor core concepts which utilize randomized rather than structured coolant channel flow paths. For both the Pebble Bed and Particle Bed Reactor designs, case studies reveal that for indeterminate reasons, regions within the core would suffer from excessive heating leading to thermal runaway and localized fuel melting. A thermal Computational Fluid Dynamics model was utilized to verify that in both the Pebble Bed and Particle Bed Reactor concepts randomized coolant channel pathways combined with localized high temperature regions would work together to resist the flow of coolant diverting it away from where it is needed the most to cooler less resistive pathways where it is needed the least. In other words given the choice via randomized coolant pathways the reactor coolant will take the path of least resistance, and hot zones offer the highest resistance. Having identified the relationship between randomized coolant channel pathways and localized fuel melting it is now safe to assume that other reactor concepts that utilize randomized coolant pathways such as the foam core reactor are also susceptible to this phenomenon.
机译:与卵石床和颗粒床反应堆堆芯研究有关的文献综述显示,反应堆堆芯概念固有的系统性问题是利用随机的而不是结构化的冷却剂通道流动路径。对于卵石床反应器和颗粒床反应器的设计,案例研究表明,由于不确定的原因,堆芯内的区域会遭受过热,从而导致热失控和燃料局部熔化。利用热计算流体动力学模型来验证在卵石床和颗粒床反应堆概念中,随机的冷却液通道路径与局部高温区域相结合将共同起作用,以阻止冷却液流将其从最需要的地方转移出去以便在需要最少的地方冷却电阻较小的路径。换句话说,如果通过随机的冷却剂路径进行选择,则反应堆冷却剂将采用阻力最小的路径,而高温区域则提供最高的阻力。在确定了随机冷却剂通道路径与局部燃料熔化之间的关系之后,现在可以安全地假设利用随机冷却剂通道的其他反应堆概念(例如泡沫堆芯反应堆)也容易受到这种现象的影响。

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