Nanoindentation derived stress-strain properties of dental materials

被引:87
|
作者
He, Li H. [1 ]
Swain, Michael V. [1 ]
机构
[1] Univ Sydney, Fac Dent, Biomat Sci Res Unit, Surry Hills, NSW 2006, Australia
关键词
nanoindentation; stress-strain; dental ceramic; dental alloy; enamel;
D O I
10.1016/j.dental.2006.06.017
中图分类号
R78 [口腔科学];
学科分类号
1003 ;
摘要
Objectives. The aim of the study is to investigate the stress-strain response of different dental materials, especially dental brittle materials, and compare them with enamel. Methods. A nano-based indentation system (Ultra Micro-Indentation System, UMIS-2000, CSIRO, Australia) was used to determine the indentation stress-strain response of two kinds of dental ceramics (Cerec (R) 2 Mark II and Vita VM9), one kind of dental alloy (Wiron (R) 99) and healthy enamel. A spherical indenter was used to test the materials with nanometer and micro-Newton displacement and force resolution. Assuming the elastic modulus remained constant, a plot of contact pressure versus contact strain, H-a/R, of each material was obtained. Results. By comparing the H-a/R curve of the different materials with enamel, it can be concluded that only the metallic alloy, has similar stress-strain response as enamel. Dental ceramics showed much higher yield stress response than enamel. VM9, a porcelain veneer component of crown/bridge structure, is slightly softer than its core, Mark II. The yield point for Mark II and VM9 are nearly 10 and 7 GPa, respectively, and approximately 2 GPa for Wiron alloy and enamel. Significance. H-a/R curves provide a new method to compare the mechanical properties of different dental materials. From the standpoint of structural reliability, strong and tough materials with primarily elastic response, such as toughened ceramics are required to enable dental crown/bridges to have long term reliability. on the other hand, materials with too high hardness or yield response may damage opposing teeth during occlusal contact. Future studies may establish a relationship between stress and strain property and abrasive wear of dental material. (C) 2006 Academy of Dental Materials. Published by Elsevier Ltd. All rights reserved.
引用
收藏
页码:814 / 821
页数:8
相关论文
共 50 条
  • [1] Spherical nanoindentation stress-strain curves
    Pathak, Siddhartha
    Kalidindi, Surya R.
    MATERIALS SCIENCE & ENGINEERING R-REPORTS, 2015, 91 : 1 - 36
  • [2] EFFECT OF PRESSURE ON STRESS-STRAIN PROPERTIES OF MATERIALS
    PATERSON, MS
    GEOPHYSICAL JOURNAL OF THE ROYAL ASTRONOMICAL SOCIETY, 1967, 14 (1-4): : 13 - &
  • [3] On the determination of spherical nanoindentation stress-strain curves
    Department of Materials Science and Engineering, Drexel University, Philadelphia, PA 19104, United States
    J Mater Res, 2006, 10 (2628-2637):
  • [4] On the determination of spherical nanoindentation stress-strain curves
    Basu, Sandip
    Moseson, Alexander
    Barsoum, Michel W.
    JOURNAL OF MATERIALS RESEARCH, 2006, 21 (10) : 2628 - 2637
  • [5] COMPRESSIVE STRESS-STRAIN PROPERTIES OF SOME AIRCRAFT MATERIALS
    SANDORFF, PE
    DILLON, RK
    PROCEEDINGS-AMERICAN SOCIETY FOR TESTING AND MATERIALS, 1946, 46 : 1039 - 1052
  • [6] Influence of Uniaxial Stress on the Stress-Strain Curve Measured by Nanoindentation
    Ihara, Ikuo
    Ohtsuki, Kohei
    Matsuya, Iwao
    ADVANCE MATERIALS DEVELOPMENT AND APPLIED MECHANICS, 2014, 597 : 17 - +
  • [7] STRESS-STRAIN BEHAVIOR OF DENTAL AMALGAMS
    ESPEVIK, S
    ACTA ODONTOLOGICA SCANDINAVICA, 1978, 36 (02) : 103 - 111
  • [8] Progress in Stress-Strain Relationship Using Spherical Nanoindentation
    Wang K.
    Chen J.
    Wang F.
    Liang X.
    Sun Z.
    Cailiao Daobao/Materials Reports, 2019, 33 (05): : 1490 - 1499
  • [9] Determination of Stress-Strain Properties Combining Small-Depth Nanoindentation and Numerical Simulation
    Kuttler, S.
    Grams, A.
    Huber, S.
    Walter, H.
    Schneider-Ramelow, M.
    2018 7TH ELECTRONIC SYSTEM-INTEGRATION TECHNOLOGY CONFERENCE (ESTC), 2018,
  • [10] Correlation of spherical nanoindentation stress-strain curves to simple compression stress-strain curves for elastic-plastic isotropic materials using finite element models
    Patel, Dipen K.
    Kalidindi, Surya R.
    ACTA MATERIALIA, 2016, 112 : 295 - 302