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Hydrogen isotope permeation through yttria coatings on Eurofer in the diffusion limited regime

机译:氢同位素渗透通过氧化钇涂层在扩散限量方案中

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In fusion power plants a tritium permeation barrier is required in order to prevent the loss of the fuel. Moreover, the tritium permeation barrier is necessary to avoid that the radioactive tritium accumulates in the first wall, the cooling system, and other parts of the power plant. Oxide thin films, e.g. Al2O3, Er2O3 and Y2O3, are promising candidates as tritium permeation barrier layers. With regard to the application, this is especially true for yttrium due to its favorably short decay time after neutron activation compared to the other candidates. The Y2O3 layers with thicknesses from 100 nm to 500 nm are deposited on both sides of Eurofer substrates by RF magnetron sputter deposition. Some of the samples are additionally deposited with palladium thin films to analyse the limited regime. During the annealing in the experiments the palladium layers do not show any crack formation or delamination, verified by scanning electron microscopy. After annealing the cubic crystal structure of the Y2O3 layers is verified by X-ray diffraction. The cubic phase contains a small amount of a monoclinic phase, which is eliminated after the permeation measurements. The permeation reduction factors of the samples are determined in gas driven deuterium permeation experiments. A permeation reduction of 5000 of the yttria thin film is verified. The diffusion limited regime is identified by the pressure dependence of the permeation measurement and by permeation experiments with the palladium top layers on the Y2O3 thin films. Furthermore, the activation energy of the permeation through the yttria thin films is determined. Pre-annealing times for more than 70 h of the Y2O3 thin films and permeation measurements with temperature cycles for 20 days are performed to show the stability of the permeation flux and hence the microstructure of the barrier layers. Measurement times at each constant temperature level of more than 25 h are required for the stabilization of each permeation flux to a constant value. The permeation measurement setup is enhanced to enable a continuously running equipment for these measurement times. (C) 2021 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:在融合发电厂中,需要氚渗透屏障以防止燃料的损失。此外,氚渗透屏障是必要的,以避免放射性氚在第一壁,冷却系统和发电厂的其他部分中积聚。氧化物薄膜,例如Al2O3,ER2O3和Y2O3,是候选人的承诺作为氚渗透屏障层。关于应用,由于与其他候选者相比,由于其在中子激活后的有利短的衰减时间,这对钇尤其如此。通过RF磁控溅射沉积沉积厚度为100nm至500nm的Y2O3层,沉积在Eurofer基板的两侧。一些样品另外沉积有钯薄膜以分析有限的制度。在实验中的退火过程中,钯层不显示通过扫描电子显微镜验证的任何裂缝形成或分层。在退火后,通过X射线衍射验证Y2O3层的立方晶体结构。立方相含有少量的单斜相,在渗透测量之后被消除。样品的渗透还原因子在气体驱动的氘渗透实验中确定。验证了5000个氧化钇薄膜的渗透率降低。通过渗透测量的压力依赖性和通过在Y2O3薄膜上与钯顶层进行渗透实验来鉴定扩散限制。此外,确定渗透通过ytTria薄膜的激活能量。在Y2O3薄膜和渗透测量的情况下进行预退火时间,进行20天的温度循环,以显示渗透通量的稳定性,从而妨碍屏障层的微观结构。每个恒定温度水平的测量时间需要超过25小时,使每个渗透通量稳定到恒定值。增强渗透测量设置以使连续运行的设备用于这些测量时间。 (c)2021氢能量出版物LLC。 elsevier有限公司出版。保留所有权利。

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