Impact Energy Absorption Analysis of Shape Memory Hybrid Composites

Author:

Ozair Huma,Rehman Muhammad Atiq UrORCID,Baluch Abrar H.ORCID,Yaqoob KhurramORCID,Qazi Ibrahim,Wadood AbdulORCID

Abstract

Shape memory hybrid composites are hybrid structures with fiber-reinforced-polymer matrix materials. Shape memory wires due to shape memory/super-elastic properties exhibit a pseudo-elastic response with good damping/energy absorption capability. It is expected that the addition of shape memory wires in the glass-fiber-reinforced-polymer matrix composite (GFRP) will improve their mechanical and impact resistant properties. Stainless-steel wires are also expected to improve the impact resistance properties of GFRPs. In this research work, we investigated the effect of addition of shape memory wires and stainless-steel wires on the impact resistance properties of the GFRP and compared our results with conventional GFRPs. Super-elastic shape memory alloy wires and stainless-steel wires were fabricated as meshes and composites were fabricated by the hand-layup process followed by vacuum bagging and the compression molding setup. The shape-memory-alloy-wires-reinforced GFRP showed maximum impact strength followed by stainless-steel-wires-reinforced GFRPs and then conventional GFRPs. The effect of the energy absorption capability of super-elastic NiTi wires owing to their energy hysteresis was attributed to stress-induced martensitic transformation in the isothermal regime above the austenite transformation temperature. The smart shape memory wires and stainless-steel-wires-based hybrid composites were found to improve the impact strength by 13% and 4%, respectively, as compared to the unreinforced GFRPs. The shape-memory-reinforced hybrid composite also dominated in specific strength as compared to stainless-steel-wires-reinforced GFRPs and conventional GFRPs.

Publisher

MDPI AG

Subject

Engineering (miscellaneous),Ceramics and Composites

Reference48 articles.

1. Development and assessment of a knitted shape memory alloy-based multifunctional elbow brace;Jung;J. Ind. Text.,2022

2. Shape morphing of aircraft wing: Status and challenges;Sofla;Mater. Des.,2010

3. Sellitto, A., and Riccio, A. (2019). Overview and future advanced engineering applications for morphing surfaces by Shape Memory Alloy Materials. Materials, 12.

4. Design, construction, and modeling of aircraft door sealing plate based on SMAs;Zhang;Int. J. Smart Nano Mater.,2022

5. Characterization and 3-D modeling of Ni60Ti SMA for actuation of a variable geometry jet engine chevron;Hartl;Sens. Smart Struct. Technol. Civil Mechan. Aerosp. Syst.,2007

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