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Correlation of surface chemical states with hydrogen isotope retention in divertor tiles of JET with ITER-Like Wall

机译:具有ITER样壁的JET偏滤器表面化学状态与氢同位素保留的相关性

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To understand the fuel retention mechanism correlation of surface chemical states and hydrogen isotope retention behavior determined by XPS (X-ray photoelectron spectroscopy) and TDS (Thermal desorption spectroscopy), respectively, for JET ITER-Like Wall samples from operational period 2011-2012 were investigated. It was found that the deposition layer was formed on the upper part of the inner vertical divertor area. At the inner plasma strike point region, the original surface materials, W or Mo, were found, indicating to an erosion-dominated region, but deposition of impurities was also found. Higher heat load would induce the formation of metal carbide. At the outer horizontal divertor tile, mixed material layer was formed with iron as an impurity. TDS showed the H and D desorption behavior and the major D desorption temperature for the upper part of the inner vertical tile was located at 370 degrees C and 530 degrees C. At the strike point region, the D desorption temperature was clearly shifted toward higher release temperatures, indicating the stabilization of D trapping by higher heat load
机译:为了了解分别通过XPS(X射线光电子能谱)和TDS(热解吸光谱)确定的2011-2012年JET ITER样墙样品的表面化学状态与氢同位素保留行为的燃料保留机理相关性,分别为调查。发现在内部垂直偏滤器区域的上部上形成了沉积层。在内部等离子触击点区域,发现了原始的表面材料W或Mo,表示腐蚀占主导的区域,但也发现了杂质沉积。较高的热负荷将引起金属碳化物的形成。在外侧的水平分流砖上,形成了以铁为杂质的混合材料层。 TDS显示了H和D的解吸行为,内部垂直砖的上部的主要D的解吸温度位于370°C和530°C。在打击点区域,D的解吸温度明显移向了更高的释放温度,表明较高的热负荷使D捕集稳定

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