The Research of Surface Residual Stress about Glass Ceramics

Article Preview

Abstract:

We have researched the residual stress in super-smooth glass ceramics using nano-indentation technology, according to the characteristic that the residual stress in the process of pressure is sensitive to the pileup around the indenter, we can determine the changing area, then combine this with the elasto-plastic contact theory, thus the residual stress calculation formula is obtained. By the continuous strain obtained by a spherical indenter and the research on the yield stress and stress-strain curves of microcrystalline glass through spherical indentation experiments, we can get the rule which can tell us how the residual stress of the microcrystalline glass changes with the depth from surface. This research helps to improve the processing quality as well as the performance of the super-smooth surfaced microcrystalline glass, obviously it has a wide application prospect.

You might also be interested in these eBooks

Info:

Periodical:

Pages:

2014-2018

Citation:

Online since:

November 2012

Export:

Price:

Permissions CCC:

Permissions PLS:

Сopyright:

© 2012 Trans Tech Publications Ltd. All Rights Reserved

Share:

Citation:

[1] J. Zhang: The Journal of UFO Research, (2001) No.5, p.16~17. (In Chinese)

Google Scholar

[2] L. Teng, S.Z. Song and J.X. Ren: Aviation Precision Manufacturing Technology, Vol. 43 (1997) No. 3, p.1~3. (In Chinese)

Google Scholar

[3] Y. Bisrat and S.G. Roberts: Residual Stress Measurement by Hertzian Indentation. Materials Science and Engineering. (2000) A288, p.148~153

DOI: 10.1016/s0921-5093(00)00877-7

Google Scholar

[4] H. Pinto, L. Ito and M. Crovace: Surface and Bulk Residual Stresses in Li2O-2sio2 Glass–Ceramics. Journal of Non-Crystalline Solids. (2007), 353: 2307~2317

DOI: 10.1016/j.jnoncrysol.2007.04.007

Google Scholar

[5] L.N. Zhu, B.S. Xu, H.D. Wang and C.B. Wang: Measurement of residual stress in quenched 1045 steel by the nanoindentation method, Materials Characterization.(2010) No. 61, pp.1359-1362

DOI: 10.1016/j.matchar.2010.09.006

Google Scholar

[6] Y.H. Lee and Dongil Kwon. Measurement of residual-stress effect by nanoindentation on elastically strained (100) W.  Scripta Materialia, 49: 459-465

DOI: 10.1016/s1359-6462(03)00290-2

Google Scholar

[7] W. C. Oliver, G. M. Pharr. An Improve Technique for Determining Hardness and Elastic Modulus Using Load and Displacement Sensing Indentation Experiments. J. Mater. Res..1992,7(6),1564~1583

DOI: 10.1557/jmr.1992.1564

Google Scholar

[8] W. C. Oliver, G. M. Pharr. Measurement of Hardness and Elastic Modulus by Instrumented Indentation: Advance in Understanding and Refinements to Methodoloyg. J. Master. Res..2004,19(1):3~20

DOI: 10.1557/jmr.2004.19.1.3

Google Scholar

[9] Jae-Il Jang, Dongil Son, Yun-Hee Lee, et al.. Assessing Welding Residual Stress in A335P12 Steel Welds before and after Stress-Relaxation Annealing through Instrumented Indentation Technique. Scripta Materialia.2003,48:743~748

DOI: 10.1016/s1359-6462(02)00537-7

Google Scholar

[10] S. Carlsson, P. L. Larsson. On The Determination of Residual Stress and Strain Fields by Sharp Indentation Testing Part I: Theoretical and Numerical Analysis. Acta Materialia.2001,49:2179~2191

DOI: 10.1016/s1359-6454(01)00122-7

Google Scholar

[11] N. Chollacoop, U. Ramamurty. Experimental Assessment of the Representative Strains in Instrumented Sharp Indentation. Scripta Materialia.2005,53(2):247~251

DOI: 10.1016/j.scriptamat.2005.03.030

Google Scholar

[12] D. Tabor. The Hardness of Metals. Oxford: Clarendon Press. (1952)

Google Scholar

[13] Hyungyil Lee, Jin Haeng Lee, G. M. Pharr. A Numerical Approach to Spherical Indentation Techniques for Material Property Evaluation. Journal of the Mechanics and Physics of Solids. 2005, 53: 2037~(2069)

DOI: 10.1016/j.jmps.2005.04.007

Google Scholar