A three-dimensional constitutive model for shape memory alloys

被引:0
作者
Sergio A. Oliveira
Marcelo A. Savi
Alexander L. Kalamkarov
机构
[1] Universidade Federal do Rio de Janeiro,COPPE—Department of Mechanical Engineering
[2] Dalhousie University,Department of Mechanical Engineering
来源
Archive of Applied Mechanics | 2010年 / 80卷
关键词
Shape memory alloys; Constitutive model; Pseudoelasticity;
D O I
暂无
中图分类号
学科分类号
摘要
Shape memory alloys (SMAs) are materials that, among other characteristics, have the ability to present high deformation levels when subjected to mechanical loading, returning to their original form after a temperature change. Literature presents numerous constitutive models that describe the phenomenological features of the thermomechanical behavior of SMAs. The present paper introduces a novel three-dimensional constitutive model that describes the martensitic phase transformations within the scope of standard generalized materials. The model is capable of describing the main features of the thermomechanical behavior of SMAs by considering four macroscopic phases associated with austenitic phase and three variants of martensite. A numerical procedure is proposed to deal with the nonlinearities of the model. Numerical simulations are carried out dealing with uniaxial and multiaxial single-point tests showing the capability of the introduced model to describe the general behavior of SMAs. Specifically, uniaxial tests show pseudoelasticity, shape memory effect, phase transformation due to temperature change and internal subloops due to incomplete phase transformations. Concerning multiaxial tests, the pure shear stress and hydrostatic tests are discussed showing qualitatively coherent results. Moreover, other tensile–shear tests are conducted modeling the general three-dimensional behavior of SMAs. It is shown that the multiaxial results are qualitative coherent with the related data presented in the literature.
引用
收藏
页码:1163 / 1175
页数:12
相关论文
共 76 条
[1]  
Auricchio F.(2007)A three-dimensional model describing stress-induced solid phase transformation with permanent inelasticity Int. J. Plast. 23 207-226
[2]  
Reali A.(2004)On the Fremond’s constitutive model for shape memory alloys Mech. Res. Commun. 31 677-688
[3]  
Stefanelli U.(2002)Three-dimensional constitutive model for shape memory alloys based on microplane model J. Mech. Phys. Solids 50 1051-1077
[4]  
Baêta-Neves A.P.(1999)The role of texture in tension-compression asymmetry in polycrystalline Ni–Ti Int. J. Plast. 15 69-92
[5]  
Savi M.A.(2006)Shape memory alloys, part II: modeling of polycrystals Mech. Mater. 38 430-462
[6]  
Pacheco P.M.C.L.(2003)Three-dimensional Landau theory for multivariant stress-induced martensitic phase transformations III. Alternative potentials, critical nuclei, kink solutions, and dislocation theory Phys. Rev. B 68 134201-691
[7]  
Brocca M.(2003)Medical applications of shape memory alloys Braz. J. Med. Biol. Res. 36 683-47
[8]  
Brinson L.C.(1997)Shear and tensile thermomechanical behavior of near equiatomic NiTi alloy Mater. Sci. Eng. A 222 45-2144
[9]  
Bazant Z.P.(1987)Crystallography of martensitic-transformation in Ti–Ni single crystals ACTA Metall. 35 2137-986
[10]  
Gall K.(2007)An experimental study of the superelastic effect in a shape-memory Nitinol alloy under biaxial loading Mech. Mater. 35 969-1687