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Quantitative modeling of fuel retention in the JET-C and JET-ILW wall configurations by WallDYN and predictions for ITER

机译:WallDYN对JET-C和JET-ILW壁配置中燃料滞留的定量建模以及ITER的预测

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The hydrogenic fuel retention in ITER will be dominated by co-deposition. Therefore predictions of retention in ITER require a global model of migration of low-Z (Be, C) impurities and their co-deposition with hydrogenic species. To track the global material erosion/deposition balance and the resulting formation of mixed material layers the WallDYN code has been developed. This paper describes the application of WallDYN to the interpretation of results on deposition and co-deposition in JET experiments both in the ITER like wall (ILW) and full carbon configuration. The calculations show qualitative agreement with the Be deposition patterns determined from post-campaign wall tile analysis. The calculated retention results for C and Be first wall configurations even show quantitative agreement with experimental gas balance measurements when long term outgassing is taken into account. Applying WallDYN to ITER for different first wall and plasma configurations shows that for the current (Be + W only) material choice, retention will not limit ITER operation whereas C would increase retention by factors 10-100, leading to unacceptably high fuel retention by co-deposition. (C) 2014 Elsevier B.V. All rights reserved.
机译:氢燃料在国际热核实验堆中的保留将由共沉积控制。因此,在ITER中保留的预测需要一个低Z(Be,C)杂质迁移及其与氢物种共沉积的全局模型。为了跟踪总体材料侵蚀/沉积平衡以及由此形成的混合材料层,已开发了WallDYN代码。本文介绍了WallDYN在ITER样壁(ILW)和全碳构型的JET实验中对沉积和共沉积结果的解释中的应用。计算显示出与从运动后墙砖分析确定的Be沉积模式定性一致。当考虑长期除气时,C和Be优先壁配置的保留结果甚至显示出与实验气体平衡测量值的定量一致性。将WallDYN应用于ITER以实现不同的第一壁和等离子配置表明,对于当前(仅Be + W)材料选择,保留不会限制ITER操作,而C会使保留增加10-100倍,从而导致CO的不可接受的高燃料保留-沉积。 (C)2014 Elsevier B.V.保留所有权利。

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