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Mechanisms of spallation of solution precursor plasma spray thermal barrier coatings

机译:溶液前体等离子体喷雾热阻挡涂层脱落机制

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The durability and failure mechanisms of solution precursor plasma spray (SPPS) thermal barrier coatings (TBCs) are investigated. SPPS TBCs exhibit an average life of 1018 cycles in a 1-h 1121 8C cycle furnace test, that is more than 2.5 times of that of a commercial APS TBC in the same test. Failure of the SPPS TBC starts with crack initiation along the unmelted particles in the ceramic top coat and the non-alumina oxides. The cracks propagate and coalesce with thermal cycling. The extensive cracking of the rapidly formed non-alumina oxides, resulting from the depletion of aluminum in the bond coat, leads to the development of a large separation between the TBC and substrate. When a crack of sufficient size emerges, the TBC separates from the metal substrate by large scale buckling. The greatly improved durability of the SPPS TBCs compared to APS TBCs on the same substrate and bond coat is attributed to the reduced stress near the bond coat-SPPS ceramic interface as a result of the vertical microcracks in the SPPS microstructure.
机译:研究了溶液前体等离子体喷雾(SPP)热阻挡涂层(TBC)的耐久性和失效机制。 SPPS TBCS在1-H 1121 8C循环炉测试中表现出1018个循环的平均寿命,其在同一测试中的商业APS TBC的2.5倍以下。 SPPS TBC的失效从陶瓷顶部涂层和非氧化铝氧化物中的未熔化颗粒开始裂纹开始。裂缝与热循环繁殖和聚结。由粘合涂层中铝的耗尽产生的快速形成的非氧化铝氧化物的广泛破裂导致TBC和基材之间的大分离。当出现足够大小的裂缝时,TBC通过大规模屈曲与金属基板分离。与APS TBC在相同的基板和粘合涂层上相比,SPPS TBC的大大提高耐久性归因于SPPS微观结构中的垂直微裂纹的粘合涂层-PPS陶瓷接口附近的应力降低。

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