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A chemo-thermo-mechanically constitutive theory for thermal barrier coatings under CMAS infiltration and corrosion

机译:CMAS渗透和腐蚀下热障涂层的化学-热机械本构理论

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摘要

High temperature ceramic corroded by calcium-magnesium-alumino-silicates (CMAS) deposits is an inevitable part of severe degradation of thermal barrier coatings (TBCs). Based on thermodynamic laws, a mechanism-based constitutive theory is proposed for describing CMAS corrosion process at high temperature in TBCs. Concentration of metal cations in CMAS and degree of corrosion dissolution of TBCs are defined respectively. The constitute of free energy which decides the driving force for governing equation of field variables includes energy contribution from the infiltration of CMAS, the subsequent corrosion dissolution of TBCs by CMAS and elastic strain energy. Also, some coupling terms are added to the expression of free energy to describe coupled effects between field variables. We further establish two 3D plate models for TBCs with and without constraint by substrate to predict the chemo-mechanical response of corroded TBCs. A corrosion experiment is conducted to confirm deformational behavior of corroded TBCs and transient distribution of CMAS mass density. In addition, coupled kinetics capture that out-plane tensile stress piles up near the bottom of corroded coating with constraint by substrate, and disastrous delamination can occur from the interface under the CMAS covered region. The constitutive theory presented here provides a great potential for modeling chemo-thermo-mechanical corrosion process in TBCs at high temperature. (C) 2019 Elsevier Ltd. All rights reserved.
机译:钙镁铝硅酸盐(CMAS)沉积物腐蚀的高温陶瓷是绝热涂层(TBC)严重降解的必然部分。基于热力学定律,提出了一种基于机理的本构理论来描述TBS中高温状态下的CMAS腐蚀过程。分别定义了CMAS中金属阳离子的浓度和TBC的腐蚀溶解度。决定场变量方程控制力的自由能的构成包括CMAS的渗透,随后CMAS对TBCs的腐蚀溶解以及弹性应变能的贡献。同样,一些耦合项被添加到自由能的表达中以描述场变量之间的耦合效应。我们进一步建立了两种TBC的3D平板模型,分别受基材约束和不受基材约束,以预测腐蚀的TBC的化学机械响应。进行腐蚀实验以确认腐蚀的TBC的变形行为和CMAS质量密度的瞬时分布。另外,耦合动力学捕捉到,平面拉伸应力在受基材约束的腐蚀涂层底部附近堆积,并且可能从CMAS覆盖区域下方的界面发生灾难性分层。本文介绍的本构理论为在高温下TBC中化学-热-机械腐蚀过程建模提供了巨大的潜力。 (C)2019 Elsevier Ltd.保留所有权利。

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