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首页> 外文期刊>CERAMICS INTERNATIONAL >Degradation of thermally sprayed Al2O3 coatings in reactor-grade liquid-sodium and its mitigation by laser treatment
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Degradation of thermally sprayed Al2O3 coatings in reactor-grade liquid-sodium and its mitigation by laser treatment

机译:反应器级液态钠中热喷涂Al2O3涂层的降解及其激光处理的缓解

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摘要

Laser treatment (LT) to enhance the performance of atmospheric plasma spray (APS) deposited Al2O3 thermal barrier coatings (TBCs) was attempted for applications in extreme liquid-sodium environments of a sodium cooled fast reactor (SFR). Thermally sprayed sacrificial ceramic TBCs are being proposed and investigated for installation on the stainless steel (SS) 316LN core catcher assembly of future SFRs to combat the core disruptive accidents (CDAs), wherein the primary criterion to be satisfied by the TBC is its long-term compatibility with the liquid-sodium coolant over a whole reactor life. Sacrificial ceramic coatings are susceptible to liquid-metal induced degradation by reactor-grade sodium. This study provides new insights into the failure mechanisms of APS Al2O3 coatings in liquid-sodium environments. Subsequently, an attempt is made to improve the performance of coatings by a surface modification approach using a laser treatment of the TBC topcoat. APS coatings exposed to liquid-sodium failed by spallation and delamination of the incrementally deposited topcoat, which is attributed to the formation and growth stress of ternary Na-Al oxides between the lamellar layers of the APS coatings. Compared to the APS coatings, LT coatings successfully retarded the liquid-sodium ingression and thereby exhibited improved degradation resistance and structural stability in reactor simulated sodium environments. The enhanced performance of LT coatings is attributed to its carefully re-engineered architecture of the APS TBC that could beneficially control the kinetics of interaction with liquid-sodium.
机译:在钠冷快堆(SFR)的极端液钠环境中,尝试了激光处理(LT)来增强大气等离子喷涂(APS)沉积的Al2O3热障涂层(TBCs)的性能。热喷涂牺牲陶瓷TBC正在被提出和研究,以安装在未来SFR的不锈钢(SS)316LN堆芯捕集器组件上,以应对堆芯破坏性事故(CDA),其中TBC要满足的主要标准是其在整个反应堆寿命期间与液钠冷却剂的长期兼容性。牺牲陶瓷涂层容易受到反应器级钠的液态金属诱导降解。本研究为APS Al2O3涂层在液钠环境下的失效机理提供了新的见解。随后,尝试通过使用TBC面漆的激光处理的表面改性方法来改善涂层的性能。暴露于液钠的APS涂层由于增量沉积面漆的剥落和分层而失效,这归因于APS涂层层状层之间三元Na-Al氧化物的形成和生长应力。与APS涂层相比,LT涂层成功地延缓了液钠的侵入,从而在反应器模拟钠环境中表现出更好的抗降解性和结构稳定性。LT 涂层性能的增强归功于其精心重新设计的 APS TBC 结构,该结构可以有益地控制与液钠相互作用的动力学。

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