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Optimization of the Water-Cooled Structure for the Divertor Plates in EAST Based on an Orthogonal Theory

机译:基于正交理论的EAST分流板水冷结构优化

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An orthogonal experimental scheme was designed for optimizing a water-cooled structure of the divertor plate. There were three influencing factors: the radius R of the water-cooled pipe, and the pipe spacing L-1 and L-3. The influence rule of different factors on the cooling effect and thermal stress of the plate were studied, for which the influence rank was respectively R > L-1 > L-3 and L-3 > R > L-1. The highest temperature value decreased when R and Li increased, and the maximum thermal stress value dropped when R, L-1 and L-3 increased. The final optimized results can be summarized as: R equals 6 mm or 7 mm, L-1 equals 19 mm, and L-3 equals 20 mm Compared with the initial design, the highest temperature value had a small decline, and the maximum thermal stress value dropped by 19% to 24%. So it was not ideal to improve the cooling effect by optimizing the geometry sizes of the water-cooled structure, even worse than increasing the flow speed, but it was very effective for dropping the maximum thermal stress value. The orthogonal experimental method reduces the number of experiments by 80%, and thus it is feasible and effective to optimize the water-cooled structure of the divertor plate with the orthogonal theory.
机译:设计了正交试验方案,以优化分流板的水冷结构。影响三个因素:水冷管的半径R和管距L-1和L-3。研究了不同因素对板的冷却效果和热应力的影响规律,其影响等级分别为R> L-1> L-3和L-3> R> L-1。当R和Li增加时,最高温度值降低,而当R,L-1和L-3增加时,最大热应力值降低。最终的优化结果可以总结为:R等于6毫米或7毫米,L-1等于19毫米,L-3等于20毫米与初始设计相比,最高温度值下降幅度很小,而最大热量值则减小。压力值下降了19%至24%。因此,通过优化水冷结构的几何尺寸来提高冷却效果并不理想,甚至比增加流速还差,但对于降低最大热应力值非常有效。正交试验法将试验次数减少了80%,因此采用正交理论优化分流板的水冷结构是可行和有效的。

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