Low Thermal Conductivity Yttrium Aluminum Garnet Thermal Barrier Coatings Made by the Solution Precursor Plasma Spray: Part I—Processing and Properties

被引:0
作者
Rishi Kumar
Jiwen Wang
Chen Jiang
Drew Cietek
Joseph Favata
Sina Shahbazmohamadi
Jeffery Roth
Maurice Gell
Eric H. Jordan
机构
[1] University of Connecticut,Institute of Materials Science
[2] HiFunda LLC,REFINE Laboratory
[3] University of Connecticut,Department of Mechanical Engineering
[4] University of Connecticut,undefined
来源
Journal of Thermal Spray Technology | 2018年 / 27卷
关键词
enhanced deposition efficiency; inter-pass boundaries; low thermal conductivity; planar porosity; solution precursor plasma spray; thermal barrier coatings; yttrium aluminum garnet;
D O I
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中图分类号
学科分类号
摘要
Critical properties of TBCs include low thermal conductivity (TC) and high cyclic durability. In recent years, the solution precursor plasma spray (SPPS) process has been effectively used for deposition of TBCs with enhanced cyclic durability for yttria-stabilized zirconia (YSZ) and the higher temperature yttrium aluminum garnet (YAG) TBCs. Improvements in deposition efficiency (DE) and deposition rate (DR) were identified as needed for cost-effective commercialization. In this work, SPPS YAG TBCs with low TC and high DE and DR have been produced with microstructures containing a high density of planar arrays of increased porosity called inter-pass boundaries (IPBs). The IPBs have been shown to reduce the TC of SPPS YAG TBCs by 39% to a value of 0.58 W/mK at 1300 °C. Increasing the precursor feed rates and decreasing the raster scan step heights generate high-density IPB microstructures, while simultaneously increasing the DE and DR by 53 and 190%, respectively. The SPPS YAG microstructures with high-density IPBs also exhibit improved thermal cycling and sinter resistance compared to APS YSZ.
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页码:781 / 793
页数:12
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