Shape Memory Alloys (SMAs) have unique thermomechanical properties, including superelasticity and the shape memory effect, which has led them to be used in a wide range of applications, from biomedical devices to aerospace and civil engineering structures. These behaviors have been addressed by phenomenological models, which represent them by simply establishing stress–strain and transformation characteristics without accounting for the microstructure. In this review article, the main phenomenological modeling examples are categorized and compared, including the main principles of operation, predictions, and limitations under operating thermomechanical loading conditions. In addition, the growing use of SMAs, especially in actuation, damping, vibration control, and energy harvesting, is explored, and the incorporation of modeling frameworks into optimization activities is discussed. The final part of the review deals with open challenges and future research directions, consisting of the development of models that more accurately predict SMAs under cyclic and/or non-proportional loading, a more robust association with commercial computational tools, and exploring the use of SMAs in new interdisciplinary areas. By bridging modeling approaches to application-based concepts, a platform is provided for the advancement of both the scientific development and practical use of shape memory alloys.

Costanza, G., Tata, M.e., Danaee Barforooshi, S. (2025). Phenomenological Modeling of Shape Memory Alloys: A Review of Macroscopic Approaches. MICROMACHINES, 16(11) [10.3390/mi16111300].

Phenomenological Modeling of Shape Memory Alloys: A Review of Macroscopic Approaches

Costanza, Girolamo
Membro del Collaboration Group
;
Tata, Maria Elisa
Membro del Collaboration Group
;
Danaee Barforooshi, Saeed
Membro del Collaboration Group
2025-11-20

Abstract

Shape Memory Alloys (SMAs) have unique thermomechanical properties, including superelasticity and the shape memory effect, which has led them to be used in a wide range of applications, from biomedical devices to aerospace and civil engineering structures. These behaviors have been addressed by phenomenological models, which represent them by simply establishing stress–strain and transformation characteristics without accounting for the microstructure. In this review article, the main phenomenological modeling examples are categorized and compared, including the main principles of operation, predictions, and limitations under operating thermomechanical loading conditions. In addition, the growing use of SMAs, especially in actuation, damping, vibration control, and energy harvesting, is explored, and the incorporation of modeling frameworks into optimization activities is discussed. The final part of the review deals with open challenges and future research directions, consisting of the development of models that more accurately predict SMAs under cyclic and/or non-proportional loading, a more robust association with commercial computational tools, and exploring the use of SMAs in new interdisciplinary areas. By bridging modeling approaches to application-based concepts, a platform is provided for the advancement of both the scientific development and practical use of shape memory alloys.
20-nov-2025
Pubblicato
Rilevanza internazionale
Recensione
Esperti anonimi
Settore IIND-03/C - Metallurgia
English
Con Impact Factor ISI
constitutive models; hysteresis and cyclic behavior; internal variables; phenomenological models; rate-dependent effect; shape memory alloys; thermomechanical coupling
Costanza, G., Tata, M.e., Danaee Barforooshi, S. (2025). Phenomenological Modeling of Shape Memory Alloys: A Review of Macroscopic Approaches. MICROMACHINES, 16(11) [10.3390/mi16111300].
Costanza, G; Tata, Me; Danaee Barforooshi, S
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/2108/472845
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