State-of-the-art review on developing lightweight fiber-metal laminates based on synthetic/natural fibers

The development of hybrid materials consisting of alternating layers of metal alloys and polymeric composites has revolutionized the engineering field. These metal-composite laminates combine the merits of each individual component, forming advanced and promising structures which could be employed f...

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Main Authors: Ng, Lin Feng, Yahya, Mohd. Yazid, Leong, Hui Yi, Parameswaranpillai, Jyotishkumar, Muthukumar, Chandrasekar, Syed Hamzah, Syed Mohd. Saiful Azwan, Malingam, Sivakumar Dhar
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Published: John Wiley and Sons Inc 2023
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Online Access:http://eprints.utm.my/106471/
http://dx.doi.org/10.1002/pc.27593
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spelling my.utm.1064712024-07-08T07:31:02Z http://eprints.utm.my/106471/ State-of-the-art review on developing lightweight fiber-metal laminates based on synthetic/natural fibers Ng, Lin Feng Yahya, Mohd. Yazid Leong, Hui Yi Parameswaranpillai, Jyotishkumar Muthukumar, Chandrasekar Syed Hamzah, Syed Mohd. Saiful Azwan Malingam, Sivakumar Dhar TJ Mechanical engineering and machinery The development of hybrid materials consisting of alternating layers of metal alloys and polymeric composites has revolutionized the engineering field. These metal-composite laminates combine the merits of each individual component, forming advanced and promising structures which could be employed for structural applications. The low fatigue crack growth rate and high damage tolerance of these materials are particularly fascinating. When developing metal-composite laminates with superb functional properties, the combination of several metal surface treatment techniques is a common practice to ensure optimum metal-composite adhesion. Today, a new cutting-edge manufacturing technique utilizing nano-porous network film has been established to get rid of the massive infrastructure of conventional autoclave techniques and produce first-rate materials. Even though various techniques can be adopted to manufacture metal-composite laminates, the selection of the techniques is highly dependent on the nature of the polymer matrix. After the manufacture of the metal-composite laminates, post-stretching is considered a critical step to alleviate the unfavorable residual stress to ensure the optimum performance of these materials for long-term service. When dealing with natural fibers, it is worth mentioning that the processing temperature should be limited to below 200°C regardless of manufacturing technique to avoid fiber degradation. Metal-composite laminates consisting of synthetic/natural fibers are considered a viable option to offset the demerits of each kind of fibers. By incorporating fatigue-resilient natural fibers in the laminates, it is expected that the overall fatigue resistance of the laminates can be apparently enhanced, which is in line with the initial goal of developing metal-composite laminates. Highlights: Fiber bridging offers fiber-metal laminates with superior fatigue properties. Metal surface treatment is vital to ensure an optimum fiber-bridging mechanism. A novel out-of-autoclave method can produce first-grade fiber-metal laminates. Post-stretching is needed to lessen residual stress in fiber-metal laminates. Hybrid fiber-metal laminates are feasible for structural applications. John Wiley and Sons Inc 2023-10 Article PeerReviewed Ng, Lin Feng and Yahya, Mohd. Yazid and Leong, Hui Yi and Parameswaranpillai, Jyotishkumar and Muthukumar, Chandrasekar and Syed Hamzah, Syed Mohd. Saiful Azwan and Malingam, Sivakumar Dhar (2023) State-of-the-art review on developing lightweight fiber-metal laminates based on synthetic/natural fibers. Polymer Composites, 44 (10). pp. 6275-6303. ISSN 0272-8397 http://dx.doi.org/10.1002/pc.27593 DOI:10.1002/pc.27593
institution Universiti Teknologi Malaysia
building UTM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknologi Malaysia
content_source UTM Institutional Repository
url_provider http://eprints.utm.my/
topic TJ Mechanical engineering and machinery
spellingShingle TJ Mechanical engineering and machinery
Ng, Lin Feng
Yahya, Mohd. Yazid
Leong, Hui Yi
Parameswaranpillai, Jyotishkumar
Muthukumar, Chandrasekar
Syed Hamzah, Syed Mohd. Saiful Azwan
Malingam, Sivakumar Dhar
State-of-the-art review on developing lightweight fiber-metal laminates based on synthetic/natural fibers
description The development of hybrid materials consisting of alternating layers of metal alloys and polymeric composites has revolutionized the engineering field. These metal-composite laminates combine the merits of each individual component, forming advanced and promising structures which could be employed for structural applications. The low fatigue crack growth rate and high damage tolerance of these materials are particularly fascinating. When developing metal-composite laminates with superb functional properties, the combination of several metal surface treatment techniques is a common practice to ensure optimum metal-composite adhesion. Today, a new cutting-edge manufacturing technique utilizing nano-porous network film has been established to get rid of the massive infrastructure of conventional autoclave techniques and produce first-rate materials. Even though various techniques can be adopted to manufacture metal-composite laminates, the selection of the techniques is highly dependent on the nature of the polymer matrix. After the manufacture of the metal-composite laminates, post-stretching is considered a critical step to alleviate the unfavorable residual stress to ensure the optimum performance of these materials for long-term service. When dealing with natural fibers, it is worth mentioning that the processing temperature should be limited to below 200°C regardless of manufacturing technique to avoid fiber degradation. Metal-composite laminates consisting of synthetic/natural fibers are considered a viable option to offset the demerits of each kind of fibers. By incorporating fatigue-resilient natural fibers in the laminates, it is expected that the overall fatigue resistance of the laminates can be apparently enhanced, which is in line with the initial goal of developing metal-composite laminates. Highlights: Fiber bridging offers fiber-metal laminates with superior fatigue properties. Metal surface treatment is vital to ensure an optimum fiber-bridging mechanism. A novel out-of-autoclave method can produce first-grade fiber-metal laminates. Post-stretching is needed to lessen residual stress in fiber-metal laminates. Hybrid fiber-metal laminates are feasible for structural applications.
format Article
author Ng, Lin Feng
Yahya, Mohd. Yazid
Leong, Hui Yi
Parameswaranpillai, Jyotishkumar
Muthukumar, Chandrasekar
Syed Hamzah, Syed Mohd. Saiful Azwan
Malingam, Sivakumar Dhar
author_facet Ng, Lin Feng
Yahya, Mohd. Yazid
Leong, Hui Yi
Parameswaranpillai, Jyotishkumar
Muthukumar, Chandrasekar
Syed Hamzah, Syed Mohd. Saiful Azwan
Malingam, Sivakumar Dhar
author_sort Ng, Lin Feng
title State-of-the-art review on developing lightweight fiber-metal laminates based on synthetic/natural fibers
title_short State-of-the-art review on developing lightweight fiber-metal laminates based on synthetic/natural fibers
title_full State-of-the-art review on developing lightweight fiber-metal laminates based on synthetic/natural fibers
title_fullStr State-of-the-art review on developing lightweight fiber-metal laminates based on synthetic/natural fibers
title_full_unstemmed State-of-the-art review on developing lightweight fiber-metal laminates based on synthetic/natural fibers
title_sort state-of-the-art review on developing lightweight fiber-metal laminates based on synthetic/natural fibers
publisher John Wiley and Sons Inc
publishDate 2023
url http://eprints.utm.my/106471/
http://dx.doi.org/10.1002/pc.27593
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