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      Nonlinear analysis of shape memory alloy beam under the thermal and the mechanical loads

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          Abstract

          ABSTRACT In this paper, the tension-compression asymmetry of shape memory alloys (SMA), subjected to the thermal and the mechanical loads, is sufficiently explored. Taking a basis of stress-strain relationship and a concern for critical phase transformation, a new simple model of mechanics is established. Through the deflection lines under different load conditions and the maximum deflection-bending moment curve, the effects of material nonlinearity and geometric nonlinearity on bending deformation of SMA beam are investigated. The results show that the neutral layer offset is related to the tension compression asymmetry coefficient and temperature. The phase transformation of SMA beam becomes more and more difficult as the increase of tension compression asymmetry coefficient and temperature. For the earlier phase transformation, material nonlinearity and geometric nonlinearity have little influence on beam deflection, but great in the late phase transformation.

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          Most cited references18

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          Shape-memory alloys: modelling and numerical simulations of the finite-strain superelastic behavior

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            Fatigue behaviour of NiTi shape memory alloy scaffolds produced by SLM, a unit cell design comparison.

            Selective laser melting (SLM) is an additive manufacturing technique able to produce complex functional parts via successively melting layers of metal powder. This process grants the freedom to design highly complex scaffold components to allow bone ingrowth and aid mechanical anchorage. This paper investigates the compression fatigue behaviour of three different unit cells (octahedron, cellular gyroid and sheet gyroid) of SLM nitinol scaffolds. It was found that triply periodic minimal surfaces display superior static mechanical properties in comparison to conventional octahedron beam lattice structures at identical volume fractions. Fatigue resistance was also found to be highly geometry dependent due to the effects of AM processing techniques on the surface topography and notch sensitivity. Geometries minimising nodal points and the staircase effect displayed the greatest fatigue resistance when normalized to yield strength. Furthermore oxygen analysis showed a large oxygen uptake during SLM processing which must be altered to meet ASTM medical grade standards and may significantly reduce fatigue life. These achieved fatigue properties indicate that NiTi scaffolds produced via SLM can provide sufficient mechanical support over an implants lifetime within stress range values experienced in real life.
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              A model for a body with shape-memory

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                Author and article information

                Contributors
                Role: ND
                Role: ND
                Journal
                rmat
                Matéria (Rio de Janeiro)
                Matéria (Rio J.)
                Rede Latino-Americana de Materiais (Rio de Janeiro, RJ, Brazil )
                1517-7076
                May 2019
                : 24
                : 1
                : e-12297
                Affiliations
                [01] Lanzhou Gansu orgnameLanzhou University of Technology orgdiv1School of Science China
                Article
                S1517-70762019000100325
                10.1590/s1517-707620190001.0634
                6f16a950-65ad-445e-983e-599b7e73cde4

                This work is licensed under a Creative Commons Attribution 4.0 International License.

                History
                : 18 January 2018
                : 19 October 2017
                Page count
                Figures: 0, Tables: 0, Equations: 0, References: 19, Pages: 0
                Product

                SciELO Brazil

                Categories
                Articles

                nonlinear,tension-compression asymmetry,temperature,Shape memory alloy

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