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Step-by-step investigation of degradation mechanisms induced by CMAS attack on YSZ materials for TBC applications

机译:逐步研究CMAS攻击YSZ材料对TBC应用的降解机理

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摘要

Over the past decades, Thermal Barrier Coatings (TBCs) have become essential parts in gas turbine engines. In working conditions, TBCs are subject to many kinds of degradation (erosion, foreign object damage (F.O.D), oxidation, etc.)which deteriorate integrity andmechanical properties of thewhole system.Moreover,with the aim to increase the turbine inlet temperature, a new type of damage has been highlighted: corrosion by molten Calcium-Magnesium-Alumino Silicates, better known as CMAS. In this paper, interactions between yttriastabilized zirconia (YSZ)materials synthesized via sol-gel process and synthetic CMAS powder were investigated via a step-by-step methodology. The approach was conducted starting fromthe more severe conditions of interactions and then gradually gets closer to the interactions taking place in service. It was proved that CMAS can induce faster densification of the ceramic leading to a loss of strain tolerance of the protective coating. Besides, a dissolution/re-precipitationmechanismcan also take place between YSZ andCMAS leading to the transformation of the initial tetragonal yttria-stabilized zirconia into globular particles of monoclinic zirconia. CMAS were also found to infiltrate the entire thickness of both EBPVD and sol-gel YSZ coatings at 1250 °C for 1 h. Nevertheless, the original non-orientedmicrostructure provided by sol-gel route leads to a different way of interaction due to the high reactivity of sol-gel precursors and materials. The behaviors of EBPVD and sol-gel coatings under CMAS exposure are discussed in this paper.
机译:在过去的几十年中,热障涂层(TBC)已成为燃气涡轮发动机的重要组成部分。在工作条件下,TBC会经受多种降解(腐蚀,异物损坏(FOD),氧化等),从而降低整个系统的完整性和机械性能。此外,为了提高涡轮机进口温度,损坏的类型已得到强调:熔融的钙镁铝硅酸盐(通常称为CMAS)腐蚀。本文通过一步步法研究了溶胶-凝胶法合成的氧化钇稳定氧化锆(YSZ)材料与合成CMAS粉末之间的相互作用。该方法从更严格的交互条件开始进行,然后逐渐接近服务中发生的交互。事实证明,CMAS可以引起陶瓷更快的致密化,从而导致保护涂层的耐应变性下降。此外,在YSZ和CMAS之间也可能发生溶解/再沉淀机制,导致初始的由四方晶系的氧化钇稳定的氧化锆转变成单斜晶氧化锆的球状颗粒。还发现CMAS在1250°C下渗透了EBPVD和sol-gel YSZ涂层的整个厚度达1 h。然而,由于溶胶-凝胶前体和材料的高反应性,通过溶胶-凝胶途径提供的原始非取向微观结构导致了不同的相互作用方式。本文讨论了在CMAS暴露下EBPVD和溶胶-凝胶涂料的行为。

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