Improving the stiffness of multilayer 3D woven composites by the integration of shape memory alloys (SMAs) into structures

Shape memory alloys (SMAs) are capable of shape-retaining and stress generation when activated. SMA wires are embedded in laminated composites for improving the properties of the composites. Laminated composites have low through-the-thickness properties and poor delamination resistance. 3D composite...

Full description

Saved in:
Bibliographic Details
Main Authors: Baitab, Danish Mahmood, Abang Abdul Majid, Dayang Laila, Abdullah, Ermira Junita, Abdul Hamid, Mohd Faisal
Format: Article
Language:English
Published: Taylor and Francis Ltd. 2019
Online Access:http://psasir.upm.edu.my/id/eprint/80209/1/Improving%20the%20stiffness%20of%20multilayer%203D%20woven%20composites%20by%20the%20integration%20of%20shape%20memory%20alloys%20%28SMAs%29%20into%20structures.pdf
http://psasir.upm.edu.my/id/eprint/80209/
Tags: Add Tag
No Tags, Be the first to tag this record!
Institution: Universiti Putra Malaysia
Language: English
id my.upm.eprints.80209
record_format eprints
spelling my.upm.eprints.802092020-10-02T02:01:09Z http://psasir.upm.edu.my/id/eprint/80209/ Improving the stiffness of multilayer 3D woven composites by the integration of shape memory alloys (SMAs) into structures Baitab, Danish Mahmood Abang Abdul Majid, Dayang Laila Abdullah, Ermira Junita Abdul Hamid, Mohd Faisal Shape memory alloys (SMAs) are capable of shape-retaining and stress generation when activated. SMA wires are embedded in laminated composites for improving the properties of the composites. Laminated composites have low through-the-thickness properties and poor delamination resistance. 3D composites are well known for having higher through-the-thickness properties. In 3D woven composites, a set of yarn is in through-the-thickness direction that improves through-the- thickness properties and provides resistance to delamination of layers. As in multilayer 3D woven structures, yarns are distributed from in-plane to through-the-thickness direction, so in-plane properties are reduced with the same number of yarns compared to 2D laminated composites. In this research, SMA wires are embedded into different types of 3D woven structures for utilising stress generation property of SMA wires for improving in-plane properties, specifically stiffness of the composites. Three types of 3D orthogonal interlocking composites: layer-to-layer, through-the-thickness, and modified multilayer interlock structures are fabricated with and without SMA wires. From the tensile test, results show that embedding SMA wires into structures significantly improves the stiffness of the structures due to the stress-induced martensite phase of SMA wire when subjected to load. When these SMA wires are activated, stresses are generated by SMA wires due to phase transformation from martensite to austenite that further gives remarkable higher values of stiffness. This results in a composite structure that has higher in-plane properties due to embedded SMA wire and through-the-thickness properties due to 3D structure of composite reinforcement. The interlocking pattern in the through-the-thickness direction of 3D structures was also found to have an effect on the extent of the improvement in stiffness. Taylor and Francis Ltd. 2019 Article PeerReviewed text en http://psasir.upm.edu.my/id/eprint/80209/1/Improving%20the%20stiffness%20of%20multilayer%203D%20woven%20composites%20by%20the%20integration%20of%20shape%20memory%20alloys%20%28SMAs%29%20into%20structures.pdf Baitab, Danish Mahmood and Abang Abdul Majid, Dayang Laila and Abdullah, Ermira Junita and Abdul Hamid, Mohd Faisal (2019) Improving the stiffness of multilayer 3D woven composites by the integration of shape memory alloys (SMAs) into structures. The Journal of The Textile Institute, 111 (9). pp. 1371-1379. ISSN 1754-2340; ESSN: 0040-5000 10.1080/00405000.2019.1696129
institution Universiti Putra Malaysia
building UPM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Putra Malaysia
content_source UPM Institutional Repository
url_provider http://psasir.upm.edu.my/
language English
description Shape memory alloys (SMAs) are capable of shape-retaining and stress generation when activated. SMA wires are embedded in laminated composites for improving the properties of the composites. Laminated composites have low through-the-thickness properties and poor delamination resistance. 3D composites are well known for having higher through-the-thickness properties. In 3D woven composites, a set of yarn is in through-the-thickness direction that improves through-the- thickness properties and provides resistance to delamination of layers. As in multilayer 3D woven structures, yarns are distributed from in-plane to through-the-thickness direction, so in-plane properties are reduced with the same number of yarns compared to 2D laminated composites. In this research, SMA wires are embedded into different types of 3D woven structures for utilising stress generation property of SMA wires for improving in-plane properties, specifically stiffness of the composites. Three types of 3D orthogonal interlocking composites: layer-to-layer, through-the-thickness, and modified multilayer interlock structures are fabricated with and without SMA wires. From the tensile test, results show that embedding SMA wires into structures significantly improves the stiffness of the structures due to the stress-induced martensite phase of SMA wire when subjected to load. When these SMA wires are activated, stresses are generated by SMA wires due to phase transformation from martensite to austenite that further gives remarkable higher values of stiffness. This results in a composite structure that has higher in-plane properties due to embedded SMA wire and through-the-thickness properties due to 3D structure of composite reinforcement. The interlocking pattern in the through-the-thickness direction of 3D structures was also found to have an effect on the extent of the improvement in stiffness.
format Article
author Baitab, Danish Mahmood
Abang Abdul Majid, Dayang Laila
Abdullah, Ermira Junita
Abdul Hamid, Mohd Faisal
spellingShingle Baitab, Danish Mahmood
Abang Abdul Majid, Dayang Laila
Abdullah, Ermira Junita
Abdul Hamid, Mohd Faisal
Improving the stiffness of multilayer 3D woven composites by the integration of shape memory alloys (SMAs) into structures
author_facet Baitab, Danish Mahmood
Abang Abdul Majid, Dayang Laila
Abdullah, Ermira Junita
Abdul Hamid, Mohd Faisal
author_sort Baitab, Danish Mahmood
title Improving the stiffness of multilayer 3D woven composites by the integration of shape memory alloys (SMAs) into structures
title_short Improving the stiffness of multilayer 3D woven composites by the integration of shape memory alloys (SMAs) into structures
title_full Improving the stiffness of multilayer 3D woven composites by the integration of shape memory alloys (SMAs) into structures
title_fullStr Improving the stiffness of multilayer 3D woven composites by the integration of shape memory alloys (SMAs) into structures
title_full_unstemmed Improving the stiffness of multilayer 3D woven composites by the integration of shape memory alloys (SMAs) into structures
title_sort improving the stiffness of multilayer 3d woven composites by the integration of shape memory alloys (smas) into structures
publisher Taylor and Francis Ltd.
publishDate 2019
url http://psasir.upm.edu.my/id/eprint/80209/1/Improving%20the%20stiffness%20of%20multilayer%203D%20woven%20composites%20by%20the%20integration%20of%20shape%20memory%20alloys%20%28SMAs%29%20into%20structures.pdf
http://psasir.upm.edu.my/id/eprint/80209/
_version_ 1680322371525804032