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Crack Driving Forces in a Multilayered Coating System for Ceramic Matrix Composite Substrates

机译:陶瓷基复合材料多层涂层体系中的裂纹驱动力

摘要

The effects of the top coating thickness, modulus and shrinkage strains on the crack driving forces for a baseline multilayer Yttria-Stabilized-Zirconia/Mullite/Si thermal and environment barrier coating (TEBC) system for SiC/SiC ceramic matrix composite substrates are determined for gas turbine applications. The crack driving forces increase with increasing modulus, and a low modulus thermal barrier coating material (below 10 GPa) will have no cracking issues under the thermal gradient condition analyzed. Since top coating sintering increases the crack driving forces with time, highly sintering resistant coatings are desirable to maintain a low tensile modulus and maintain a low crack driving force with time. Finite element results demonstrated that an advanced TEBC system, such as ZrO2/HfO2, which possesses improved sintering resistance and high temperature stability, exhibited excellent durability. A multi-vertical cracked structure with fine columnar spacing is an ideal strain tolerant coating capable of reducing the crack driving forces to an acceptable level even with a high modulus of 50 GPa.
机译:确定了用于SiC / SiC陶瓷基复合材料基体的多层多层氧化钇-稳定化锆/莫来石/硅热和环境阻隔涂层(TEBC)系统的顶层涂层厚度,模量和收缩应变对裂纹驱动力的影响。燃气轮机应用。裂纹驱动力随模量的增加而增加,并且在分析的热梯度条件下,低模量的热障涂层材料(低于10 GPa)将不会出现开裂问题。由于面涂层的烧结随时间增加了裂纹驱动力,因此需要高度耐烧结的涂层以保持低的拉伸模量并随时间保持低的裂纹驱动力。有限元结果表明,先进的TEBC系统(如ZrO2 / HfO2)具有提高的耐烧结性和高温稳定性,具有出色的耐久性。具有精细柱状间距的多垂直裂纹结构是一种理想的耐应变涂层,即使在50 GPa的高模量下也能够将裂纹驱动力降低到可接受的水平。

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