[1] Dorfman M R, Sharma A. Challenges and strategies for growth of thermal spray markets: The six-pillar plan[J]. Journal of Thermal Spray Technology, 2013, 25: 559-563. [2]Miller R A. Current status of thermal barrier coatings-an overview[J]. Surface and Coatings Technology, 1987, 30(1): 1-11. [3]Padture N P, Gell M, Jordan E H. Thermal barrier coatings for gas-turbine engine application[J]. Science, 2002, 296(5566): 280-284. [4]Nijdam T, Sloof W. Combined pre-annealing and pre-oxidation treatment for the processing of thermal barrier coatings on NiCoCrAlY bond coatings[J]. Surface and Coatings Technology, 2006, 201(7): 3894-3900. [5]Liu Y K, Liu Y H, Lours P, et al. Influence of isothermal aging conditions on APS TBC's interfacial fracture toughness[J]. Surface and Coatings Technology, 2017, 313: 417-424. [6]Saremi M, Afrasiabi A, Kobayashi A. Microstructural analysis of YSZ and YSZ/Al2O3 plasma sprayed thermal barrier coatings after high temperature oxidation[J]. Surface and Coatings Technology, 2008, 202(14): 3233-3238. [7]Liang T, Guo H, Peng H, et al. Precipitation phases in the nickel-based superalloy DZ 125 with YSZ/CoCrAlY thermal barrier coating[J]. Journal of Alloys and Compounds, 2011, 509(34): 8542-8548. [8]魏 铮, 胡 捷. 热障涂层失效机制和寿命预测研究概述[J]. 装备机械, 2013(4): 2-6. Wei Zheng, Hu Jie. Overview of failure mechanism and life prediction of thermal barrier coatings[J]. Equipment Machinery, 2013(4): 2-6. [9]任维鹏, 李 青, 李相辉, 等. 定向镍基高温合金DZ466及其热障涂层的抗热腐蚀性能[J]. 金属热处理, 2018, 43(8): 213-219. Ren Weipeng, Li Qing, Li Xianghui, et al. Hot corrosion resistance of direct solidified Ni-based superalloy DZ466 and its thermal barrier coating[J]. Heat Treatment of Metals, 2018, 43(8): 213-219. [10]Eldridge J I, Bencic T J, Spuckler C M, et al. Delamination indicating thermal barrier coatings using YSZ∶Eu sublayers[J]. Journal of the American Ceramic Society, 2006, 89: 3246-3251. [11]Pilgrim C C, Berthier S, Feist J P, et al. Photoluminescence for quantitative non-destructive evaluation of thermal barrier coating erosion[J]. Surface and Coatings Technology, 2012, 209(9): 44-51. [12]Steenbakker R J L, Wellman R G, Nicolls J R, et al. Sensor TBCs: Remote in situ condition monitoring of EB-PVD coatings at elevated temperatures[J]. Proceedings of the ASME Turbo Expo, 2008, 1: 269-278. [13]魏新姣, 刘粤惠, 陈东丹. 稀土离子的上转换敏化发光[J]. 物理学进展, 2006, 26(2): 168-179. Wei Xinjiao, Liu Yuehui, Chen Dongdan. Upconversion sensitized luminescence of rare earth ions[J]. Process in Physics, 2006, 26(2): 168-179. [14]Gentleman M M, Clarke D R. Concepts for luminescence sensing of thermal barrier coatings[J]. Surface and Coatings Technology, 2004, 188: 93-100. [15]赵 莹, 杨丽敏, 张 莉, 等. 含三价铕荧光络合物与聚甲基丙烯酸甲酯的发光材料[J]. 高分子学报, 2000(4): 393-396. Zhao Ying, Yang Limin, Zhang Li, et al. Photoluminescence materials containing europium fluorescence complex and poly (methyl methacrylate)[J]. Acta Polymerica Sinica, 2000(4): 393-396. [16]Weber M J. Radiative and multiphonon relaxation of rare-earth ions in Y2O3[J]. Physical Review, 1973, 8(1): 54-64. [17]Pin L, Pilgrim C, Feist J, et al. Characterisation of thermal barrier sensor coatings synthesised by sol-gel route[J]. Sensors and Actuators A: Physical, 2013, 199(3): 289-296. [18]赵 宇, 胥佳颖, 赵素梅, 等. YSZ∶Eu荧光应力测量法在拉应力环境下的研究[J]. 中国稀土学报, 2014, 32(3): 282-288. Zhao Yu, Xu Jiaying, Zhao Sumei, et al. Investigation of stress detection method of YSZ∶Eu photoluminescence piezo-spectroscopy in tensile stress condition[J]. Journal of the Chines Society of Rare Earths, 2014, 32(3): 282-288. [19]Jiang S L, Huang X, He Z, et al. Phase transformation and lattice parameter changes of non-trivalent rare earth-doped YSZ as a function of temperature[J]. Journal of Materials Engineering and Performance, 2018, 27(5): 2263-2270. |