Measurement and modelling of the nanoindentation response of shape memory alloys

被引:107
作者
Wood, A. J. Muir [1 ]
Clyne, T. W. [1 ]
机构
[1] Univ Cambridge, Dept Met & Mat Sci, Cambridge CB2 3QZ, England
基金
英国工程与自然科学研究理事会;
关键词
nickel-titanium; shape memory; nanoindentation; finite element modelling; NUMERICAL SIMULATIONS; RESIDUAL-STRESS; STRAIN FIELDS; INDENTATION; PSEUDOELASTICITY; TRANSFORMATION; DEFORMATION; RECOVERY; BEHAVIOR; HARDNESS;
D O I
10.1016/j.actamat.2006.08.013
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
A nickel-titanium shape memory alloy was subjected to nanoindentation over a range of temperature (up to 200 degrees C), such that the starting material was either predominantly martensitic or largely composed of the parent phase. The load-displacement data were interpreted to give information about whether the imposed strain was being at least partly accommodated by the martensitic phase transformation, i.e. whether superelastic deformation was taking place. This interpretation was assisted by finite element simulation of the evolving strain field under an indenter, with or without the superelastic deformation mechanism being operative. It is concluded that the nanoindentation response can be used to determine whether the material is capable of exhibiting superelastic deformation, provided appropriate procedures are employed. Spherical indenters are more suitable than sharp tips. A relatively low value for the remnant indent depth ratio (depth after unloading/depth at peak load) is indicative that superelasticity is occurring. The procedure was found to be viable with a small radius (10 mu m) spherical indenter, so it can be employed to explore local variations in superelastic response. (c) 2006 Acta Materialia Inc. Published by Elsevier Ltd. All rights reserved.
引用
收藏
页码:5607 / 5615
页数:9
相关论文
共 39 条
[1]   Shape-memory alloys: Macromodelling and numerical simulations of the superelastic behavior [J].
Auricchio, F ;
Taylor, RL ;
Lubliner, J .
COMPUTER METHODS IN APPLIED MECHANICS AND ENGINEERING, 1997, 146 (3-4) :281-312
[2]   Shape-memory alloys: Modelling and numerical simulations of the finite-strain superelastic behavior [J].
Auricchio, F ;
Taylor, RL .
COMPUTER METHODS IN APPLIED MECHANICS AND ENGINEERING, 1997, 143 (1-2) :175-194
[3]   Finite-element analysis of deformation during indentation and scratch tests on elastic-perfectly plastic materials [J].
Bucaille, JL ;
Felder, E .
PHILOSOPHICAL MAGAZINE A-PHYSICS OF CONDENSED MATTER STRUCTURE DEFECTS AND MECHANICAL PROPERTIES, 2002, 82 (10) :2003-2012
[4]   On the determination of residual stress and strain fields by sharp indentation testing. Part II: Experimental investigation [J].
Carlsson, S ;
Larsson, PL .
ACTA MATERIALIA, 2001, 49 (12) :2193-2203
[5]   On the determination of residual stress and strain fields by sharp indentation testing. Part I: Theoretical and numerical analysis [J].
Carlsson, S ;
Larsson, PL .
ACTA MATERIALIA, 2001, 49 (12) :2179-2191
[6]   Computational modeling of the forward and reverse problems in instrumented sharp indentation [J].
Dao, M ;
Chollacoop, N ;
Van Vliet, KJ ;
Venkatesh, TA ;
Suresh, S .
ACTA MATERIALIA, 2001, 49 (19) :3899-3918
[7]   Thermal processing of polycrystalline NiTi shape memory alloys [J].
Frick, CP ;
Ortega, AM ;
Tyber, J ;
Maksound, AEM ;
Maier, HJ ;
Liu, YN ;
Gall, K .
MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 2005, 405 (1-2) :34-49
[8]   Shape-memory polymers for microelectromechanical systems [J].
Gall, K ;
Kreiner, P ;
Turner, D ;
Hulse, M .
JOURNAL OF MICROELECTROMECHANICAL SYSTEMS, 2004, 13 (03) :472-483
[9]   Transformation start stress in non-textured shape memory alloys [J].
Gao, XY ;
Huang, WM .
SMART MATERIALS & STRUCTURES, 2002, 11 (02) :256-268
[10]  
GONG XY, 2002, ABAQUS