Design aspects of a CMC coating-like system for hot surfaces of aero engine components

IF 3.2 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY Forces in mechanics Pub Date : 2024-01-05 DOI:10.1016/j.finmec.2023.100251
Giacomo Canale , Felice Rubino , Roberto Citarella
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Abstract

Ceramic Matrix Composite (CMC) is an emerging material system that can be a game changer in the aerospace industry, both civil and military. CMCs components are, in fact, lighter and less prone to fatigue failure in a high temperature environment. However, at high temperatures, the diffusion of oxygen and water vapour inside the CMC can have detrimental effects. Therefore, the presence of protective coating is necessary to extend the life of CMC components. In the present work, a three-layers coating, consisting of a silicon bond (BND), adhesively bonded to the CMC, an Environment Barrier Coating (EBC) and a softer layer 3 (LAY3), is investigated for a CMC component. An aero-engine high pressure turbine seal segment was considered. Two design aspects are covered: (i) creep law is determined and calibrated in environment Abaqus from the experimental data of each coating layer available in the open literature, to provide a suitable instrument for the creep relaxation analyses of hot components; (ii) thickness sensitivity study of each layer of the coating is conducted to minimise the interface stresses of coating with substrate in order to mitigate cracking and removal/spalling phenomena when exposed to temperature gradients and to increase their service life. These two different aspects are combined together to predict the coating stress field as a function of service time.

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用于航空发动机部件热表面的类 CMC 涂层系统的设计问题
陶瓷基复合材料(CMC)是一种新兴的材料系统,可以改变航空航天工业(包括民用和军用)的游戏规则。事实上,CMC 组件重量更轻,在高温环境下不易出现疲劳故障。然而,在高温环境下,CMC 内部氧气和水蒸气的扩散会产生有害影响。因此,为了延长 CMC 组件的使用寿命,有必要使用保护涂层。本研究针对 CMC 组件研究了一种三层涂层,包括与 CMC 粘合的硅键(BND)、环境阻隔涂层(EBC)和较软的第 3 层(LAY3)。研究考虑了航空发动机高压涡轮密封部件。研究涉及两个设计方面:(i) 根据公开文献中每层涂层的实验数据,在 Abaqus 环境中确定和校准蠕变规律,为热部件的蠕变松弛分析提供合适的工具;(ii) 对每层涂层的厚度敏感性进行研究,以尽量减少涂层与基体的界面应力,从而在暴露于温度梯度时减轻开裂和脱落/剥落现象,并延长其使用寿命。将这两个不同方面结合起来,可以预测涂层应力场与使用时间的函数关系。
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来源期刊
Forces in mechanics
Forces in mechanics Mechanics of Materials
CiteScore
3.50
自引率
0.00%
发文量
0
审稿时长
52 days
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