A Three-Dimensional Constitutive Modeling for Shape Memory Alloys Considering Two-Way Shape Memory Effect and Transformation-Induced Plasticity
Lei Xu, Alexandros Solomou, Dimitris Lagoudas

TL;DR
This paper introduces a 3D phenomenological model for untrained shape memory alloys that captures the evolution of transformation-induced plasticity and the two-way shape memory effect under cyclic thermomechanical loading.
Contribution
It presents a novel 3D constitutive model that accounts for TRIP and TWSME in untrained SMAs, validated against experimental cyclic loading data.
Findings
Model accurately predicts cyclic response of untrained SMAs.
Incorporates internal stresses and TRIP evolution.
Demonstrates capability to simulate TWSME without external bias.
Abstract
Shape memory alloys (SMAs) have been intensively investigated as actuators for the past several decades. Due to their high actuation energy density compared to other active materials, their current and potential applications in engineering fields are expanding rapidly. Prior to being used as actuators, SMAs are usually subjected to a training process to stabilize their behavior. During the training process, permanent changes are introduced in the microstructure of the material which results in the generation of internal stresses and a large amount of irrecoverable Transformation Induced Plastic strain (TRIP). The generated internal stresses along with a potential thermal loading provide the driving force to induce the oriented phase transformation so that the SMA-based actuators are able to exhibit the Two-Way Shape Memory Effect (TWSME) without applying external bias load. To predict…
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Taxonomy
TopicsShape Memory Alloy Transformations
