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Lithium-lead corrosion behavior of erbium oxide, yttrium oxide and zirconium oxide coatings fabricated by metal organic decomposition

机译:金属有机分解制造的氧化铒,氧化钇和氧化锆涂料的锂铅腐蚀行为

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摘要

Tritium permeation through and corrosion of structural materials are critical issues in fusion reactor liquid lithium-lead blanket concepts from the viewpoints of an efficient fuel cycle, higher operation rates, and radiological safety. In this study, lithium-lead compatibility of ceramic coatings has been investigated for the development of tritium permeation barriers with corrosion protection. Erbium oxide, yttrium oxide and zirconium oxide coatings were fabricated by a metal organic decomposition method on reduced activation ferritic/martensitic steel F82H substrates. Corrosion and delamination of the coatings were accelerated under a higher oxygen concentration. Under a lower oxygen concentration, zirconium oxide coatings had the best lithium-lead compatibility among three coating materials from surface and cross-sectional observations. However, the zirconium oxide coating after lithium-lead immersion at 550 degrees C for 500 h showed higher deuterium permeability in comparison to the sample without immersion. Formation of a chromium oxide layer on the surface of the substrate before fabricating the coatings drastically improved the lithium-lead compatibility of erbium oxide and yttrium oxide coatings. Degradation of the coatings was mainly caused by corrosion and delamination depending on immersion temperature, test duration, and impurity concentration. (c) 2018 Elsevier B.V. All rights reserved.
机译:从高效燃料循环,更高的操作率和放射性安全的观点来看,结构材料的氚渗透和结构材料的腐蚀是融合反应器液体锂铅毯概念的关键问题。在该研究中,已经研究了陶瓷涂层的锂铅相容性,用于耐腐蚀的氚渗透屏障的开发。通过在减少的激活铁素体/马氏体钢F82H基板上通过金属有机分解法制造氧化铒,氧化钇和氧化锆涂层。涂层的腐蚀和分层在较高的氧浓度下加速。在较低的氧浓度下,氧化锆涂层在表面和横截面观察中具有三种涂料的最佳锂引入相容性。然而,在550℃下锂 - 铅浸渍后的氧化锆涂层500h,与样品相比,氘渗透性较高,而不浸没。在制造涂层之前在基板表面上形成氧化铬层,大大提高了氧化铒和氧化钇涂层的锂铅相容性。涂层的降解主要是由浸没和分层引起的,这取决于浸渍温度,试验持续时间和杂质浓度。 (c)2018年elestvier b.v.保留所有权利。

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