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http://dx.doi.org/10.5228/KSTP.2010.19.8.468

A Phenomenological Constitutive Model for Pseudoelastic Shape Memory Alloy  

Ho, Kwang-Soo (계명대학교 기계자동차공학과)
Publication Information
Transactions of Materials Processing / v.19, no.8, 2010 , pp. 468-473 More about this Journal
Abstract
Shape memory alloys (SMAs) have the ability to recover their original shape upon thermo-mechanical loading even after large inelastic deformation. The unique feature is known as pseudoelasticity and shape memory effect caused by the crystalline structural transformation between two solid-state phases called austenite and martensite. To support the engineering application, a number of constitutive models, which can be formally classified into either micromechanics-based or phenomenological model, have been developed. Most of the constitutive models include a kinetic law governing the crystallographic transformation. The present work presents a one-dimensional, phenomenological constitutive model for SMAs in the context of the unified viscoplasticity theory. The proposed model does not incorporate the complex mechanisms of phase transformation. Instead, the effects induced by the transformation are depicted through the growth law for the back stress that is an internal state variable of the model.
Keywords
Shape Memory Alloy; Pseudoelasticity; Viscoplasticity; Constitutive Equations;
Citations & Related Records
Times Cited By KSCI : 1  (Citation Analysis)
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