NiTi Shape Memory Alloys (SMAs) display notable thermomechanical properties such as superelasticity and the elastocaloric effect, which makes them of interest for emerging solid-state cooling and thermal management applications. It is recognized that a considerable amount of work has been recently conducted to improve the understanding of the uniaxial tensile and compressive response of Ni-Ti SMAs; however, there has been limited work on the response to bending, which is an important operational mode in the practical designs of devices. This work consists of an experimental study of the thermomechanical response of Ni-Ti cantilever beams to cyclic bending. Nitinol samples (100 mm × 20 mm × 1 mm) were shape-set at 550 °C for 30 min and tested at 1800 rpm. The sample surface temperature change was monitored with infrared thermography data and analyzed with the Profile Mono Segment and Area Rectangle methods. The findings show that there was a measurable elastocaloric temperature change of approximately 4–5 °C, and temperature change increased by 21–25% as bending deflection increased from 31 mm to 33 mm. This was further shown to be nonlinear with the applied strain amplitude, reinforcing the strong coupling between mechanical and thermal response. The results demonstrate that Ni-Ti cantilever beams have significant potential for compact, sustainable solid-state cooling and energy storage applications, with thermal energy transfer strongly dependent on strain and energy transfer optimization.

Danaee Barforooshi, S., Costanza, G., Paoloni, S., Porroni, I., Tata, M.e. (2026). Thermomechanical Behavior of Ni-Ti Shape Memory Alloy Cantilever Beams Under Cyclic Bending. PROCESSES, 14(6) [10.3390/pr14060931].

Thermomechanical Behavior of Ni-Ti Shape Memory Alloy Cantilever Beams Under Cyclic Bending

Saeed Danaee Barforooshi
Membro del Collaboration Group
;
Girolamo Costanza
Membro del Collaboration Group
;
Stefano Paoloni
Membro del Collaboration Group
;
Maria Elisa Tata
Membro del Collaboration Group
2026-03-15

Abstract

NiTi Shape Memory Alloys (SMAs) display notable thermomechanical properties such as superelasticity and the elastocaloric effect, which makes them of interest for emerging solid-state cooling and thermal management applications. It is recognized that a considerable amount of work has been recently conducted to improve the understanding of the uniaxial tensile and compressive response of Ni-Ti SMAs; however, there has been limited work on the response to bending, which is an important operational mode in the practical designs of devices. This work consists of an experimental study of the thermomechanical response of Ni-Ti cantilever beams to cyclic bending. Nitinol samples (100 mm × 20 mm × 1 mm) were shape-set at 550 °C for 30 min and tested at 1800 rpm. The sample surface temperature change was monitored with infrared thermography data and analyzed with the Profile Mono Segment and Area Rectangle methods. The findings show that there was a measurable elastocaloric temperature change of approximately 4–5 °C, and temperature change increased by 21–25% as bending deflection increased from 31 mm to 33 mm. This was further shown to be nonlinear with the applied strain amplitude, reinforcing the strong coupling between mechanical and thermal response. The results demonstrate that Ni-Ti cantilever beams have significant potential for compact, sustainable solid-state cooling and energy storage applications, with thermal energy transfer strongly dependent on strain and energy transfer optimization.
15-mar-2026
Pubblicato
Rilevanza internazionale
Articolo
Esperti anonimi
Settore IIND-03/C - Metallurgia
English
Con Impact Factor ISI
infrared thermography; elastocaloric effect; Ni-Ti; cyclic bending; shape memory alloy; solid-state cooling
Danaee Barforooshi, S., Costanza, G., Paoloni, S., Porroni, I., Tata, M.e. (2026). Thermomechanical Behavior of Ni-Ti Shape Memory Alloy Cantilever Beams Under Cyclic Bending. PROCESSES, 14(6) [10.3390/pr14060931].
Danaee Barforooshi, S; Costanza, G; Paoloni, S; Porroni, I; Tata, Me
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/2108/472865
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