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首页> 外文期刊>IEEE Transactions on Plasma Science >Optimization of the Integrated Diagnostics in Equatorial Port Plug #3 of ITER for Minimal Interspace Dose Rate
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Optimization of the Integrated Diagnostics in Equatorial Port Plug #3 of ITER for Minimal Interspace Dose Rate

机译:优化ITER赤道端口插头3中的集成诊断程序以实现最小的空间剂量率

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摘要

According to Internationa Thermonuclear Experimental Reactor (ITER) integration procurement arrangements, the installment of diagnostics in a port should not increase the shutdown dose rate (SDDR) in the port interspace area by no more than ${sim}{rm 50}~mu{rm Sv}/{rm h}$ above the baseline, assuming another 50 $mu{rm Sv}/{rm h}$ is attributed to contribution from the port structure and other ITER in-vessel components, such that the upper SDDR limit of 100 $mu{rm Sv}/{rm h}$ is not exceeded $10^{6}~{rm s}$ after shutdown. It was found that placing the initial design of the motional stark effect (MSE) and the charge exchange recombination spectroscopy (CXRS) in the equatorial port #3 resulted in an increase in the SDDR that far exceeded the limit. When we follow the optimization process discussed in this paper, substantial reduction in the port interspace SDDR was achieved. The results of this paper show that even when we combine the optimized CXRS and MSE diagnostics with a third glow discharge diagnostic, the excess of the SDDR over the baseline value did not exceed the allowed upper limit. This paper is based on utilizing the 3-D CAD-based ATTILA code for assessing the SDDR.
机译:根据国际热核实验堆(ITER)的集成采购安排,在港口安装诊断程序不应使港口空间区域的关闭剂量率(SDDR)增加不超过$ {sim} {rm 50}〜mu { rm Sv} / {rm h} $高于基线,假设另外50 $ mu {rm Sv} / {rm h} $归因于端口结构和其他ITER内置组件的贡献,因此SDDR上限关机后,不超过$ 100 ^ mu {rm Sv} / {rm h} $的$ 10 ^ {6}〜{rm s} $。发现在赤道端口3中放置了运动斯塔克效应(MSE)和电荷交换复合光谱(CXRS)的初始设计会导致SDDR的增加远远超过限制。当我们遵循本文讨论的优化过程时,端口间隔SDDR大大减少了。本文的结果表明,即使我们将优化的CXRS和MSE诊断程序与第三次辉光放电诊断程序结合使用,SDDR超出基线值的超出量也不会超过允许的上限。本文基于利用基于3-D CAD的ATTILA代码评估SDDR。

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