Indentation-induced martensitic transformation in SMAs: Insights from phase-field simulations

被引:7
作者
Rezaee-Hajidehi, Mohsen [1 ]
Tuma, Karel [2 ]
Stupkiewicz, Stanislaw [1 ]
机构
[1] Polish Acad Sci, Inst Fundamental Technol Res IPPT, Pawinskiego 5B, PL-02106 Warsaw, Poland
[2] Charles Univ Prague, Fac Math & Phys, Sokolovska 83, Prague 18675, Czech Republic
关键词
Nanoindentation; Pseudoelasticity; Twinning; Microstructure formation; Phase-field method; SHAPE-MEMORY ALLOYS; CU-AL-NI; STRESS-INDUCED MARTENSITE; ORIENTATION DEPENDENCE; SPHERICAL INDENTATION; ELASTIC-CONSTANTS; NANOINDENTATION; BEHAVIOR; MODEL; MICROSTRUCTURE;
D O I
10.1016/j.ijmecsci.2023.108100
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
Direct experimental characterization of indentation-induced martensitic microstructures in pseudoelastic shape memory alloys (SMAs) is not possible, and thus there is a lack of evidence and understanding regarding the microstructure pattern and related features. To fill this gap, in this work we employ the phase-field method to provide a detailed and systematic analysis of martensitic phase transformation during nanoindentation. A recently-developed finite-element-based computational model is used for this purpose, and a campaign of large-scale 3D simulations is carried out. First, the orientation-dependent indentation response in CuAlNi (a widely studied SMA) is examined. A detailed investigation of the predicted microstructures reveals several interesting features, some of them are consistent with theoretical predictions and some can be (to some extent) justified by experiments other than micro/nanoindentation. The results also highlight the key role of finite-deformation effects and elastic anisotropy of the phases on the model predictions. Next, a detailed study of indentation -induced martensitic transformation in NiTiPd (a potential low-hysteresis SMA) with varying Pd content is carried out. In terms of hysteresis, the results demonstrate the prevailing effect of the transformation volume change over phase compatibility in the conditions imposed by nanoindentation and emphasize on the dominant role of the interfacial energy at small scales. Results of such scope have not been reported so far.
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页数:15
相关论文
共 98 条
[1]   Landau theory for shape memory polycrystals [J].
Ahluwalia, R ;
Lookman, T ;
Saxena, A ;
Albers, RC .
ACTA MATERIALIA, 2004, 52 (01) :209-218
[2]   Phase Transformation Evolution in NiTi Shape Memory Alloy under Cyclic Nanoindentation Loadings at Dissimilar Rates [J].
Amini, Abbas ;
Cheng, Chun ;
Kan, Qianhua ;
Naebe, Minoo ;
Song, Haisheng .
SCIENTIFIC REPORTS, 2013, 3 :1-7
[3]   Depth dependency of indentation hardness during solid-state phase transition of shape memory alloys [J].
Amini, Abbas ;
Yan, Wenyi ;
Sun, Qingping .
APPLIED PHYSICS LETTERS, 2011, 99 (02)
[4]   Three-dimensional phase field model and simulation of martensitic transformation in multilayer systems under applied stresses [J].
Artemev, A ;
Wang, Y ;
Khachaturyan, AG .
ACTA MATERIALIA, 2000, 48 (10) :2503-2518
[5]  
Balay S, 2019, ANL9511REV311 PETSC
[6]   PROPOSED EXPERIMENTAL TESTS OF A THEORY OF FINE MICROSTRUCTURE AND THE 2-WELL PROBLEM [J].
BALL, JM ;
JAMES, RD .
PHILOSOPHICAL TRANSACTIONS OF THE ROYAL SOCIETY A-MATHEMATICAL PHYSICAL AND ENGINEERING SCIENCES, 1992, 338 (1650) :389-450
[7]   Finite element procedure and simulations for a multiphase phase field approach to martensitic phase transformations at large strains and with interfacial stresses [J].
Basak, Anup ;
Levitas, Valery, I .
COMPUTER METHODS IN APPLIED MECHANICS AND ENGINEERING, 2019, 343 :368-406
[8]   Interfacial stresses within boundary between martensitic variants: Analytical and numerical finite strain solutions for three phase field models [J].
Basak, Anup ;
Levitas, Valery I. .
ACTA MATERIALIA, 2017, 139 :174-187
[9]   Shape memory alloys for microsystems: A review from a material research perspective [J].
Bellouard, Yves .
MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 2008, 481 :582-589
[10]  
Bhattacharya K., 2003, Microstructure of Martensite: Why it Forms and How it Gives Rise to the Shape-Memory Effect, V2