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Gas-cooled high performance divertor for a power plant

机译:电厂气冷式高性能分流器

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Designing divertor target plates for a fusion power plant is a challenging task because they have to allow exceptionally high heat fluxes, deliver heat to the power conversion system at a temperature suitable for high efficiency, and use a coolant compatible with the blanket system. These requirements are different from the case of an experimental reactor (e.g. ITER) where copper can be used as heat sink. In a power plant, the use of cold water as divertor coolant would waste 10―20% of the total power, with a comparable reduction of thermal efficiency. This paper proposes a helium cooled divertor concept that is intended to reach 10 MW/m~2 peak surface heat flux. The evolution of the' design, by strictly applying high heat flux criteria to an existing porous medium concept, is presented. Enhanced heat transfer is achieved by a pin fin array on the cooling channel wall. An operating point is selected, and finite element analyses performed to establish temperature and stress levels in a divertor target plate. Results indicate that the design meets the requirements.
机译:为聚变电站设计分流器靶板是一项艰巨的任务,因为它们必须允许异常高的热通量,在适合高效的温度下向功率转换系统传递热量,并使用与橡皮布系统兼容的冷却剂。这些要求与实验性反应器(例如ITER)的情况不同,在实验性反应器中,铜可以用作散热器。在发电厂中,使用冷水作为分流冷却剂会浪费总功率的10%至20%,同时热效率也会相应降低。本文提出了一种氦冷却偏滤器的概念,旨在达到10 MW / m〜2的峰值表面热通量。通过严格地将高热通量标准应用于现有的多孔介质概念,提出了设计的演变。通过冷却通道壁上的针翅阵列可以增强传热。选择一个工作点,并进行有限元分析,以确定偏滤器目标板上的温度和应力水平。结果表明设计符合要求。

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