Estimation of Residual Stresses in Coatings of “Hard” Topocomposites by Repeated Microindentation

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Abstract

There are two methods developed for determining residual stress in “hard” topocomposites coatings, characterized by the occurrence of an interfacial fracture at the coating–substrate interface during instrumental indenting. The novelty of the techniques lies in the analysis of the pyramidal indenter indentation diagram obtained as a result of a repeated indentation cycle. The results can be used in practice and in scientific research to quantify the type and value of uniaxial residual stresses in thin hard topocomposite coatings, the substrate material of which differs significantly in hardness from the coating material.

About the authors

N. A. Voronin

Mechanical Engineering Research Institute of the Russian Academy of Sciences, 101990, Moscow, Russia

Author for correspondence.
Email: voroninn@inbox.ru
Россия, Москва

References

  1. Mattox D.M. Handbook of Physical Vapor Deposition (PVD) Processing; William Andrew: Amsterdam, the Netherlands, 2010. 792 p.
  2. Воронин Н.А. Теоретические и экспериментальные методы исследования характеристик деформирования и разрушения топокомпозитов триботехнического назначения // Проблемы машиностроения и надежности машин. 2013. № 5. С. 68.
  3. Skordaris G., Bouzakis K., Kotsanis T. et al. Effect of PVD film’s residual stresses on their mechanical properties, brittleness, adhesion and cutting performance of coated tools // CIRP J. of Manufacturing Science and Technology. 2017. V.18. P. 145.
  4. Zhang S., Zhang X. Toughness evaluation of hard coatings and thin films // Thin Solid Films. 2012. V. 520. P. 2375.
  5. Воронин Н.А. Анализ причин специфического деформационного поведения топокомпозита системы AlN-Д16Т при инструментальном индентировании // Восточно-Европейский научный журнал. 2021. № 10 (74). С. 42.
  6. Abdul-Baqi A., Van der Giessen E. Delamination of a strong film from a ductile substrate during indentation unloading // J. of Materials Research. 2001. V. 16. № 5. P. 1396.
  7. Oliver W.C., Pharr G.M. An improved technique for determining hardness and elastic modulus using load and displacement sensing indentation experiments // J. of Materials Research. 1992. V. 7. № 6. P. 1564.
  8. Lu M., Huang H. Interfacial energy release rates of SiN/GaAs film/substrate systems determined using a cyclic loading dual-indentation method // Thin Solid Films. 2015. V. 589. P. 822.
  9. Raju T.D., Kato M., Nakasa K. Backward deviation and depth recovery of load – displacement curves of amorphous SiC film under repeating nanoindentation // Acta Materialia. 2003. V. 51. P. 3585.
  10. Suresh S., Giannakopoulos A.E. A new method for estimating residual stresses by instrumented sharp indentation // Acta Materialia. 1998. V. 46. № 16. P. 5755.
  11. Jang J. Estimation of residual stress by instrumented indentation: A review // J. of Ceramic Processing Research. 2009. V. 10. № 3. P. 391.
  12. Xiao L., Ye D., Chen C. A further study on representative models for calculating the residual stress based on the instrumented indentation technique // Computational Materials Science. 2014. V. 82. P. 476.
  13. Wang Q., Ozaki K., Ishikaw H. et al. Indentation method to measure the residual stress induced by ion implantation // Nuclear Instruments and Methods in Physics Research. Section B. 2006. V. 242. № 1–2. P. 88.
  14. Hsu T.-W., Greczynski G., Boyd R. et al. Influence of Si content on phase stability and mechanical properties of TiAlSiN films grown by AlSi-HiPIMS/Ti-DCMS co-sputtering // Surface & Coatings Technology. 2021. V. 427. P. 127661.
  15. Greczynski G., Lu J., Johansson M.P. et al. Role of Tin+ and Aln+ ion irradiation (n = 1, 2) during Ti1-xAlxN alloy film growth in a hybrid HIPIMS/magnetron mode // Surface & Coatings Technology. 2012. V. 206. P. 4202.

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