Quantifying and Predicting the Tensile Properties of Silicone Reinforced with Moringa oleifera Bark Fibers

To obtain a better understanding of using Moringa oleifera bark (MOB) as a reinforcement in a silicone matrix, this study aimed to define the mechanical properties of this new material under uniaxial tension. Composite samples of 0 wt%, 4 wt%, 8 wt%, 12 wt%, and 16 wt% MOB powder were produced. The...

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Published in:BioResources
Main Author: Ab Patar M.N.A.; Manssor N.A.S.; Isa M.R.; Jusoh N.A.I.; Abd Latif M.J.; Sivasankaran P.N.; Mahmud J.
Format: Review
Language:English
Published: North Carolina State University 2024
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85191732886&doi=10.15376%2fbiores.19.2.3461-3474&partnerID=40&md5=5507bb206ab72ba28eaea74064a06710
id 2-s2.0-85191732886
spelling 2-s2.0-85191732886
Ab Patar M.N.A.; Manssor N.A.S.; Isa M.R.; Jusoh N.A.I.; Abd Latif M.J.; Sivasankaran P.N.; Mahmud J.
Quantifying and Predicting the Tensile Properties of Silicone Reinforced with Moringa oleifera Bark Fibers
2024
BioResources
19
2
10.15376/biores.19.2.3461-3474
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85191732886&doi=10.15376%2fbiores.19.2.3461-3474&partnerID=40&md5=5507bb206ab72ba28eaea74064a06710
To obtain a better understanding of using Moringa oleifera bark (MOB) as a reinforcement in a silicone matrix, this study aimed to define the mechanical properties of this new material under uniaxial tension. Composite samples of 0 wt%, 4 wt%, 8 wt%, 12 wt%, and 16 wt% MOB powder were produced. The tensile properties were quantified mathematically using the neo-Hookean hyperelastic model. The collected data were employed to establish multiple inputs of an artificial neural network (ANN) to predict its material constant via MATLAB. The result showed that the material constant for the 16 wt% fiber content sample was 63.9% higher than pure silicone. This was supported by the tensile modulus testing, which indicated that the modulus increased as the fiber content increased. However, the elongation ratio (λ) of the MOB-silicone biocomposite decreased slightly compared to the pure silicone. Lastly, the prediction of the material constant using an ANN recorded a 2.03% percentage error, which showed that it was comparable to the mathematical modelling. Therefore, the inclusion of MOB fibers into silicone produced a stiffer material and gradually improved the composite. Furthermore, the network that had multiple inputs (weighting, load, and elongation) was more reliable to produce precise predictions. © 2024, North Carolina State University. All rights reserved.
North Carolina State University
19302126
English
Review
All Open Access; Gold Open Access
author Ab Patar M.N.A.; Manssor N.A.S.; Isa M.R.; Jusoh N.A.I.; Abd Latif M.J.; Sivasankaran P.N.; Mahmud J.
spellingShingle Ab Patar M.N.A.; Manssor N.A.S.; Isa M.R.; Jusoh N.A.I.; Abd Latif M.J.; Sivasankaran P.N.; Mahmud J.
Quantifying and Predicting the Tensile Properties of Silicone Reinforced with Moringa oleifera Bark Fibers
author_facet Ab Patar M.N.A.; Manssor N.A.S.; Isa M.R.; Jusoh N.A.I.; Abd Latif M.J.; Sivasankaran P.N.; Mahmud J.
author_sort Ab Patar M.N.A.; Manssor N.A.S.; Isa M.R.; Jusoh N.A.I.; Abd Latif M.J.; Sivasankaran P.N.; Mahmud J.
title Quantifying and Predicting the Tensile Properties of Silicone Reinforced with Moringa oleifera Bark Fibers
title_short Quantifying and Predicting the Tensile Properties of Silicone Reinforced with Moringa oleifera Bark Fibers
title_full Quantifying and Predicting the Tensile Properties of Silicone Reinforced with Moringa oleifera Bark Fibers
title_fullStr Quantifying and Predicting the Tensile Properties of Silicone Reinforced with Moringa oleifera Bark Fibers
title_full_unstemmed Quantifying and Predicting the Tensile Properties of Silicone Reinforced with Moringa oleifera Bark Fibers
title_sort Quantifying and Predicting the Tensile Properties of Silicone Reinforced with Moringa oleifera Bark Fibers
publishDate 2024
container_title BioResources
container_volume 19
container_issue 2
doi_str_mv 10.15376/biores.19.2.3461-3474
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85191732886&doi=10.15376%2fbiores.19.2.3461-3474&partnerID=40&md5=5507bb206ab72ba28eaea74064a06710
description To obtain a better understanding of using Moringa oleifera bark (MOB) as a reinforcement in a silicone matrix, this study aimed to define the mechanical properties of this new material under uniaxial tension. Composite samples of 0 wt%, 4 wt%, 8 wt%, 12 wt%, and 16 wt% MOB powder were produced. The tensile properties were quantified mathematically using the neo-Hookean hyperelastic model. The collected data were employed to establish multiple inputs of an artificial neural network (ANN) to predict its material constant via MATLAB. The result showed that the material constant for the 16 wt% fiber content sample was 63.9% higher than pure silicone. This was supported by the tensile modulus testing, which indicated that the modulus increased as the fiber content increased. However, the elongation ratio (λ) of the MOB-silicone biocomposite decreased slightly compared to the pure silicone. Lastly, the prediction of the material constant using an ANN recorded a 2.03% percentage error, which showed that it was comparable to the mathematical modelling. Therefore, the inclusion of MOB fibers into silicone produced a stiffer material and gradually improved the composite. Furthermore, the network that had multiple inputs (weighting, load, and elongation) was more reliable to produce precise predictions. © 2024, North Carolina State University. All rights reserved.
publisher North Carolina State University
issn 19302126
language English
format Review
accesstype All Open Access; Gold Open Access
record_format scopus
collection Scopus
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