Please use this identifier to cite or link to this item: https://dspace.iiti.ac.in/handle/123456789/6962
Title: Investigations on laser actuation and life cycle characteristics of NiTi shape memory alloy bimorph for non-contact functional applications
Authors: Karna, Pravin
Mani Prabu, S. S.
Jayachandran, Shanthi
Palani, Anand Iyamperumal
Keywords: Adaptive optics;Binary alloys;Deposition;Life cycle;Polyimides;Scanning;Speed;Thermal evaporation;Titanium alloys;Comsol multiphysics;Electrical actuation;Functional applications;Life cycle analysis;Life cycle characteristics;Maximum displacement;NiTi shape memory alloys;Shape memory alloys(SMA);Shape-memory alloy
Issue Date: 2021
Publisher: Elsevier B.V.
Citation: Karna, P., Prabu, S. S. M., Karthikeyan, S. C., Mithun, R., Jayachandran, S., Resnina, N., . . . Palani, I. A. (2021). Investigations on laser actuation and life cycle characteristics of NiTi shape memory alloy bimorph for non-contact functional applications. Sensors and Actuators, A: Physical, 321 doi:10.1016/j.sna.2020.112411
Abstract: A laser source was used as non-contact mode of heating to actuate NiTi/kapton polyimide shape memory alloy (SMA) bimorph. The bimorph was fabricated by depositing NiTi thin film over Kapton polyimide sheet of dimension 5 × 2 cm2 using thermal evaporation. The laser parameters such as laser power, scanning speed and number of passes were optimized to ensure actuation without damaging the bimorph. The actuation was carried out at laser powers and scanning speeds of 14 to 16 W and 13–16 mm/s respectively. The displacement of SMA bimorph was found to increase with increase in laser power whereas it decreases with increase in scanning speeds. At lower laser power, the scanning speeds have influenced the actuation behavior to larger extent. Notably at the laser power of 14 W, the influence of scanning speed was significant and registered 53 % reduction in displacement with increase in scanning speeds from 13 mm/s to 16 mm/s. A minimum and maximum displacement of 0.35 mm and 3.8 mm was obtained during laser actuation of bimorph. The temperature experienced during laser actuation has been simulated using COMSOL Multiphysics and corroborated with the actuation behavior of the SMA bimorph. The displacement range and the actuation speed of laser actuation were found to be higher than the conventional electrical actuation. Furthermore, the life cycle analysis has been performed up to 100 laser passes and the phenomenon for reduction in displacement has been discussed in detail. Laser actuation of SMA bimorph could be utilized in thermal switches, adaptive optics and remote actuation of SMA elements etc. © 2020 Elsevier B.V.
URI: https://doi.org/10.1016/j.sna.2020.112411
https://dspace.iiti.ac.in/handle/123456789/6962
ISSN: 0924-4247
Type of Material: Journal Article
Appears in Collections:Department of Mechanical Engineering

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