Cracking mechanism of CMAS-corroded thermal barrier coatings based on a coupled thermo-chemo-mechanically phase-field fracture model

IF 4.4 2区 工程技术 Q1 MECHANICS
X.H. Liu , W. Zhu , Y.Q. Xiao , J.W. Guo
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引用次数: 0

Abstract

A thermo-chemo-mechanically coupled theoretical framework is proposed to describe the calcium-magnesium-alumina-silicate (CMAS) corrosion process during the cooling process. A phase-field fracture model is developed to investigate the effect of cooling temperature and CMAS concentration on the degree of corrosion reaction, the stress evolution and the crack initiation and propagation. σ11 concentrates in the region beneath the overlay of CMAS and σ22 appears at the interface between top ceramic coating (TC) and bond coating (BC). The higher stress concentration of σ11 and σ22 contribute to the formation of both vertical and transverse cracks. Transverse cracks first emerge at the interface between TC and BC in the edge region, followed by the formation of vertical cracks in the CMAS-coated region. Vertical cracks propagate to the interface and deflect into transverse cracks. The transverse cracks at the interface further propagate and merge, ultimately leading to the coating delamination. The higher initial cooling temperature and CMAS concentration contribute to the accelerated development of vertical cracking and the increase of the quantity and length of transverse and vertical cracks. The model provides a significant advantage in predicting the failure of TBCs during the cooling stage of CMAS corrosion.

基于热化学-机械相场耦合断裂模型的 CMAS 腐蚀隔热涂层的开裂机理
提出了一个热化学-机械耦合理论框架来描述冷却过程中的钙镁铝硅酸盐(CMAS)腐蚀过程。建立了一个相场断裂模型,以研究冷却温度和 CMAS 浓度对腐蚀反应程度、应力演变以及裂纹萌发和扩展的影响。σ11 集中在 CMAS 覆盖层下面的区域,σ22 出现在顶部陶瓷涂层 (TC) 和粘结涂层 (BC) 的界面上。σ11 和 σ22 较高的应力集中有助于垂直和横向裂纹的形成。横向裂纹首先出现在边缘区域 TC 和 BC 的界面上,随后在 CMAS 涂层区域形成垂直裂纹。垂直裂纹扩展到界面并偏转为横向裂纹。界面上的横向裂纹进一步扩展并合并,最终导致涂层脱层。较高的初始冷却温度和 CMAS 浓度加速了垂直裂纹的发展,并增加了横向和垂直裂纹的数量和长度。该模型在预测 TBC 在 CMAS 腐蚀冷却阶段的失效方面具有显著优势。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
7.00
自引率
7.30%
发文量
275
审稿时长
48 days
期刊介绍: The European Journal of Mechanics endash; A/Solids continues to publish articles in English in all areas of Solid Mechanics from the physical and mathematical basis to materials engineering, technological applications and methods of modern computational mechanics, both pure and applied research.
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