Measurement of Young's relaxation modulus using nanoindentation

被引:54
作者
Huang, Gang [1 ]
Lu, Hongbing [1 ]
机构
[1] Oklahoma State Univ, Sch Mech & Aerosp Engn, Stillwater, OK 74078 USA
基金
美国国家科学基金会;
关键词
Young's relaxation modulus; nanoindentation; viscoelasticity; polymer; Berkovich indenter; spherical indenter; conical indenter;
D O I
10.1007/s11043-006-9020-3
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
In a previous paper (Lu et al., Mechanics of Time-Dependent Materials, 7, 2003, 189-207), we described methods to measure the creep compliance of polymers using Berkovich and spherical indenters by nanoindentation. However, the relaxation modulus is often needed in stress and deformation analysis. It has been well known that the interconversion between creep compliance and relaxation function presents an ill-posed problem, so that converting the creep compliance function to the relaxation function cannot always give accurate results, especially considering that the creep data at short times in nanoindentation are often not reliable, and the overall nanoindentation time is short, typically a few hundred seconds. In this paper, we present methods to measure Young's relaxation functions directly using nanoindentation. A constant-rate displacement loading history is usually used in nanoindentations. Using viscoelastic contact mechanics, Young's relaxation modulus is extracted using nanoindentation load-displacement data. Three bulk polymers, Polymethyl Methacrylate (PMMA), Polycarbonate (PC) and Polyurethane (PU), are used in this study. The Young's relaxation functions measured from the nanoindentation are compared with data measured from conventional tensile and shear tests to evaluate the precision of the methods. A reasonably good agreement has been reached for all these materials for indentation depth higher than a certain value, providing reassurance for these methods for measuring relaxation functions.
引用
收藏
页码:229 / 243
页数:15
相关论文
共 29 条
[1]  
Cheng L, 2000, J POLYM SCI POL PHYS, V38, P10, DOI 10.1002/(SICI)1099-0488(20000101)38:1<10::AID-POLB2>3.0.CO
[2]  
2-6
[3]   Nonlinear analysis of oscillatory indentation in elastic and viscoelastic solids [J].
Cheng, Yang-Tse ;
Ni, Wangyang ;
Cheng, Che-Min .
PHYSICAL REVIEW LETTERS, 2006, 97 (07)
[4]   General relationship between contact stiffness, contact depth, and mechanical properties for indentation in linear viscoelastic solids using axisymmetric indenters of arbitrary profiles [J].
Cheng, YT ;
Cheng, CM .
APPLIED PHYSICS LETTERS, 2005, 87 (11)
[5]   A method for interpreting the data from depth-sensing indentation instruments [J].
Doerner, M. F. ;
Nix, W. D. .
JOURNAL OF MATERIALS RESEARCH, 1986, 1 (04) :601-609
[6]   GENERATING LINE SPECTRA FROM EXPERIMENTAL RESPONSES .4. APPLICATION TO EXPERIMENTAL-DATA [J].
EMRI, I ;
TSCHOEGL, NW .
RHEOLOGICA ACTA, 1994, 33 (01) :60-70
[7]   GENERATING LINE SPECTRA FROM EXPERIMENTAL RESPONSES .1. RELAXATION MODULUS AND CREEP COMPLIANCE [J].
EMRI, I ;
TSCHOEGL, NW .
RHEOLOGICA ACTA, 1993, 32 (03) :311-321
[8]   Generating line spectra from experimental responses .5. Time-dependent viscosity [J].
Emri, I ;
Tschoegl, NW .
RHEOLOGICA ACTA, 1997, 36 (03) :303-306
[9]  
FISCHERCRIPPS AC, 2002, MECH ENG SERIES
[10]   Strength analysis of spherical indentation of piezoelectric materials [J].
Giannakopoulos, AE .
JOURNAL OF APPLIED MECHANICS-TRANSACTIONS OF THE ASME, 2000, 67 (02) :409-416