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Residual stress evolution regularity in thermal barrier coatings under thermal shock loading 被引量:5

Residual stress evolution regularity in thermal barrier coatings under thermal shock loading
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摘要 Residual stress evolution regularity in thermal barrier ceramic coatings (TBCs) under different cycles of thermal shock loading of 1 100℃ was investi- gated by the microscopic digital image correlation (DIC) and micro-Raman spec- troscopy, respectively. The obtained results showed that, as the cycle number of the thermal shock loading increases, the evolution of the residual stress under- goes three distinct stages: a sharp increase, a gradual change, and a reduction. The extension stress near the TBC surface is fast transformed to compressive one through just one thermal cycle. After different thermal shock cycles with peak temperature of 1 100℃, phase transformation in TBC does not happen, whereas the generation, development, evolution of the thermally grown oxide (TGO) layer and micro-cracks are the main reasons causing the evolution regularity of the residual stress. Residual stress evolution regularity in thermal barrier ceramic coatings (TBCs) under different cycles of thermal shock loading of 1 100℃ was investi- gated by the microscopic digital image correlation (DIC) and micro-Raman spec- troscopy, respectively. The obtained results showed that, as the cycle number of the thermal shock loading increases, the evolution of the residual stress under- goes three distinct stages: a sharp increase, a gradual change, and a reduction. The extension stress near the TBC surface is fast transformed to compressive one through just one thermal cycle. After different thermal shock cycles with peak temperature of 1 100℃, phase transformation in TBC does not happen, whereas the generation, development, evolution of the thermally grown oxide (TGO) layer and micro-cracks are the main reasons causing the evolution regularity of the residual stress.
出处 《Theoretical & Applied Mechanics Letters》 CAS 2014年第2期52-58,共7页 力学快报(英文版)
基金 supported by the National Natural Science Foundation of China(91216301,11072033,11232008,and 11372037) the Program for New Century Excellent Talents in University(NCET-12-0036) the Natural Science Foundation of Beijing,China(3122027)
关键词 thermal barrier coating residual stress DIC hole-drilling method micro-Raman spectroscopy thermal barrier coating, residual stress, DIC, hole-drilling method, micro-Raman spectroscopy
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  • 1R. A. Miller. Current status of thermal barrier coatings - An overview. Surface and Coatings Technology 30, 1-11 (1987).
  • 2A. G. Evans, D. R. Mumm, J. W. Hutchinson, et al. Mechanisms controlling the durability of thermal barrier coatings. Progress in Materials Science 46, 505-553 (2001).
  • 3A. G. Evans, M. Y. He, J. W. Hutchinson. Mechanics-based scaling laws for the durability of thermal barrier coatings. Progress in Materials Science 46 249-271 (2001).
  • 4W. Reimers, A. Pyzalla, M. Broda, et al. The use of high-energy synchrotron diffraction for residual stress analyses. Journal of Materials Science Letters 18, 581-583 (1999).
  • 5A. Portinha, V. Teixeira, J. Carneiro, et al. Residual stresses and elastic modulus of thermal barrier coatings graded in porosity. Surface and Coatings Technology 188-189, 120-128 (2004).
  • 6P. Scardi, M. Leoni, L. Bertini, et al. Strain gradients in plasma-sprayed zirconia thermal barrier coatings. Surface and Coatings Technology 108-109, 93-98 (1998).
  • 7P. Scardi, M. Leoni, L. Bertamini. Influence of phase stability on the residual stress in partially stabilized zirconia TBC produced by plasma spray. Surface and Coatings Technology 76-77, 106-112 (1995).
  • 8B. A. Pint. Characterization of the high temperature oxidation of TBC-coated oxide-dispersed beta-NiA1 substrates. Materials at High Temperatures 14, 403-412 (1997).
  • 9A. Kobayashi, Y. Ando, K. Kurokawa. Microstructure and thermal behaviour of plasma sprayed zirconia/alumina composite coating. Journal of Nanoscience and Nanotechnology 11, 8853-8858 (2011).
  • 10W. G. Mao, Y. C. Zhou, L. Yang, et al. Modeling of residual stresses variation with thermal cycling in thermal barrier coatings. Mechanics of Materials 38, 1118-1127 (2006).

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