• Journal of Inorganic Materials
  • Vol. 36, Issue 10, 1059 (2021)
Wenqi FAN1, Xuemei SONG2, Yiling HUANG2, and Chengkang CHANG1,*
Author Affiliations
  • 11. School of Materials Science and Engineering, Shanghai Institute of Technology, Shanghai 201418, China
  • 22. Inorganic Materials Analysis and Testing Center, Shanghai Institute of Ceramics, Chinese Academy of Sciences, Shanghai 200050, China
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    DOI: 10.15541/jim20210013 Cite this Article
    Wenqi FAN, Xuemei SONG, Yiling HUANG, Chengkang CHANG. Structure Change and Phase Transition Distribution of YSZ Coating Caused by CMAS Corrosion[J]. Journal of Inorganic Materials, 2021, 36(10): 1059 Copy Citation Text show less
    References

    [1] G MEHBOOB, J LIU M, T XU et al. A review on failure mechanism of thermal barrier coatings and strategies to extend their lifetime. Ceramics International, 46, 8497-8521(2020).

    [2] M SHI, Z XUE, Z ZHANG et al. Effect of spraying powder characteristics on mechanical and thermal shock properties of plasma-sprayed YSZ thermal barrier coating. Surface and Coatings Technology, 395, 125(2020).

    [3] M WEN, H JORDAN E, M GELL. Effect of temperature on rumpling and thermally grown oxide stress in an EB-PVD thermal barrier coating. Surface and Coatings Technology, 201, 3289-3298(2006).

    [4] W HU, Y LEI, J ZHANG et al. Mechanical and thermal properties of RE4Hf3O12(RE= Ho, Er, Tm) ceramics with defect fluorite structure. Journal of Materials Science & Technology, 35, 2064-2069(2019).

    [5] C ZHANG X, S XU B, D WANG H et al. Modeling of the residual stresses in plasma-spraying functionally graded ZrO2/NiCoCrAlY coatings using finite element method. Materials & Design, 27, 308-315(2006).

    [6] G ZHANG, X FAN, R XU et al. Transient thermal stress due to the penetration of calcium-magnesium-alumino-silicate in EB-PVD thermal barrier coating system. Ceramics International, 44, 1265-1266(2018).

    [7] R WELLMAN, R NICHOLLS J. A mechanism for the erosion of EB PVD TBCs. Materials Science Forum, 369, 531-538(2001).

    [8] X CHEN, R WANG, N YAO et al. Foreign object damage in a thermal barrier system: mechanisms and simulations. Materials Science and Engineering: A, 352, 221-231(2003).

    [9] X CHEN, Y HE M, I SPITSBERG et al. Mechanisms governing the high temperature erosion of thermal barrier coatings. Wear, 256, 735-746(2004).

    [10] G EVANS A, A FLECK N, S FAULHABER et al. Scaling laws governing the erosion and impact resistance of thermal barrier coatings. Wear, 260, 886-894(2006).

    [11] H ZHENG, Z CHEN, G LI et al. High-temperature corrosion mechanism of YSZ coatings subject to calcium-magnesium- aluminosilicate (CMAS) deposits: first-principles calculations. Corrosion Science, 126, 286-294(2017).

    [12] G PUJOL, F ANSART, P BONINO J et al. Step-by-step investigation of degradation mechanisms induced by CMAS attack on YSZ materials for TBC applications. Surface and Coatings Technology, 237, 71-78(2013).

    [13] J WU, H GUO, Y GAO et al. Microstructure and thermo-physical properties of yttria stabilized zirconia coatings with CMAS deposits. Journal of the European Ceramic Society, 31, 1881-1888(2011).

    [14] B ZHANG, W SONG, H GUO. Wetting, infiltration and interaction behavior of CMAS towards columnar YSZ coatings deposited by plasma spray physical vapor. Journal of the European Ceramic Society, 38, 3564-3572(2018).

    [15] S KRÄMER, J YANG, G LEVI C et al. Thermochemical interaction of thermal barrier coatings with molten CaO-MgO-Al2O3- SiO2(CMAS) deposits. Journal of the American Ceramic Society, 89, 3167-3175(2006).

    [16] C MERCER, S FAULHABER, G EVANS A et al. delamination mechanism for thermal barrier coatings subject to calcium- magnesium-alumino-silicate (CMAS) infiltration. Acta materialia, 53, 1029-1039(2005).

    [17] X CHEN. Calcium-magnesium-alumina-silicate (CMAS) delamination mechanisms in EB-PVD thermal barrier coatings. Surface and Coatings Technology, 200, 3418-3427(2006).

    [18] S KRÄMER, S FAULHABER, M CHAMBERS et al. Mechanisms of cracking and delamination within thick thermal barrier systems in aero-engines subject to calcium-magnesium-alumino- silicate (CMAS) penetration. Materials Science and Engineering: A, 490, 26-35(2008).

    [19] P MOHAN, B YUAN, T PATTERSON et al. Degradation of yttria stabilized zirconia thermal barrier coatings by molten CMAS (CaO-MgO-Al2O3-SiO2) deposits. Materials Science Forum, 595, 207-212(2008).

    [20] H KISI E, J HOWARD C. Crystal structures of zirconia phases and their inter-relation. Key Engineering Materials, 153, 1-36(1998).

    [21] H PENG, L WANG, L GUO et al. Degradation of EB-PVD thermal barrier coatings caused by CMAS deposits. Progress in Natural Science: Materials International, 22, 461-467(2012).

    [22] R KRAUSE A, S SENTURK B, F GARCES H et al. 2ZrO2·Y2O3 thermal barrier coatings resistant to degradation by molten CMAS: part I, optical basicity considerations and processing. Journal of the American Ceramic Society, 97, 3943-3949(2014).

    [23] A AYGUN, L VASILIEV A, P PADTURE N et al. Novel thermal barrier coatings that are resistant to high-temperature attack by glassy deposits. Acta Materialia, 55, 6734-6745(2007).

    [24] G LEVI C, W HUTCHINSON J, H VIDAL-SÉTIF M et al. Environmental degradation of thermal-barrier coatings by molten deposits. MRS Bull., 37, 932-941(2012).

    [25] M LIPKIN D, A KROGSTAD J, Y GAO et al. Phase evolution upon aging of air-plasma sprayed t′-zirconia coatings: I—synchrotron X-ray diffraction. Journal of the American Ceramic Society, 96, 290-298(2013).

    [26] I WEBSTER R, J OPILA E. Mixed phase ytterbium silicate environmental-barriercoating materials for improved calcium- magnesium-alumino-silicate resistance. Journal of Materials Research, 35, 2358-2372(2020).

    [27] E MACK D, R LAQUAI, B MÜLLER et al. Evolution of porosity, crack density, and CMAS penetration in thermal barrier coatings subjected to burner rig testing. Journal of the American Ceramic Society, 102, 6163-6175(2019).

    [28] R KRAUSE A, F GARCES H, G DWIVEDI et al. Calcia- magnesia-alumino-silicate (CMAS)-induced degradation and failure of air plasma sprayed yttria-stabilized zirconia thermal barrier coatings. Acta Materialia, 105, 355-366(2016).

    [29] L HUANG Y, L SHEN Y, Y ZENG et al. EBSD analysis of microstructure changes in YSZ coatings during thermal cycling. Ceramics International, 47, 5559-5569(2021).

    [30] W ZHU, Y LI Z, L YANG et al. Real-time detection of cmas corrosion failure in APS thermal barrier coatings under thermal shock. Experimental Mechanics, 60, 775-785(2020).

    Wenqi FAN, Xuemei SONG, Yiling HUANG, Chengkang CHANG. Structure Change and Phase Transition Distribution of YSZ Coating Caused by CMAS Corrosion[J]. Journal of Inorganic Materials, 2021, 36(10): 1059
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