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Microstructure evolution and thermal durability with coating thickness in APS thermal barrier coatings

机译:APS热障涂层中涂层厚度的微观结构演变和热耐久性

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摘要

The effects of the coating thickness on the delamination or fracture behavior of thermal barrier coatings (TBCs) were investigated through the cyclic furnace thermal fatigue (CFTF) and thermal shock (TS) tests. The TBCs were prepared using a NiCrAlY bond coat and an yttria-stabilized zirconia top coat, which were formed using the air plasma spray (APS) process. The thicknesses of the top coat were 200 and 400 μm, and those of the bond coat were 100 and 200 μm. TBC samples with a thickness ratio of 2:1 in the top and bond coats were employed in the CFTF and TS tests. After CFTF for 1429 cycles, the interface microstructure of the relatively thick TBC was in a sound condition without any cracking or delamination; however, the relatively thin TBC was delaminated near the interface between the top and bond coats after 721 cycles. In the TS, the TBCs were fully delaminated (> 50%) after 140 and 194 cycles for thicknesses of 200 and 400 μm in the top coat, respectively. These observations allow us to control the thickness of TBC prepared using the APS process, and the thicker TBC is more efficient in improving thermal durability in the cyclic thermal exposure and thermal shock environments.
机译:通过循环炉热疲劳(CFTF)和热冲击(TS)测试,研究了涂层厚度对热障涂层(TBC)分层或断裂行为的影响。使用NiCrAlY键合涂层和氧化钇稳定的氧化锆面涂层(通过空气等离子喷涂(APS)工艺形成)制备TBC。顶涂层的厚度为200和400μm,粘结涂层的厚度为100和200μm。在CFTF和TS测试中使用面漆和粘结层中厚度比为2:1的TBC样品。 CFTF经过1429个循环后,相对较厚的TBC的界面微观结构处于良好状态,没有任何裂纹或分层。然而,在721次循环后,相对较薄的TBC在面层和粘结层之间的界面附近分层。在TS中,TBC在140和194次循环后完全分层(> 50%),分别在面漆中厚度为200和400μm。这些观察结果使我们能够控制使用APS工艺制备的TBC的厚度,并且较厚的TBC在循环热暴露和热冲击环境下提高耐热性的效率更高。

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