Physico-mechanical, Chemical Composition and Thermal Properties of Cellulose Fiber from Hibiscus vitifolius Plant Stalk for Polymer Composites

In the present work, physico-mechanical, chemical composition, and thermal properties of cellulosic fiber extracted from the stem of Hibiscus vitifolius plant have been investigated. The wide characterization was conducted on the Hibiscus vitifolius (HV) fibers and the results proved their potential...

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Main Authors: S. Manivel, N. Pannirselvam, R. Gopinath, T. P. Sathishkumar
Format: Article
Language:English
Published: Taylor & Francis Group 2022-12-01
Series:Journal of Natural Fibers
Subjects:
Online Access:http://dx.doi.org/10.1080/15440478.2021.1941484
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author S. Manivel
N. Pannirselvam
R. Gopinath
T. P. Sathishkumar
author_facet S. Manivel
N. Pannirselvam
R. Gopinath
T. P. Sathishkumar
author_sort S. Manivel
collection DOAJ
description In the present work, physico-mechanical, chemical composition, and thermal properties of cellulosic fiber extracted from the stem of Hibiscus vitifolius plant have been investigated. The wide characterization was conducted on the Hibiscus vitifolius (HV) fibers and the results proved their potentials for composite applications. Characterization tests on HV fibers confirmed the chemical constituents such as cellulose (75.09 wt. %), lignin (10.42 wt. %), hemicelluloses (13.34 wt. %), wax (0.17 wt. %), ash (0.94 wt. %) and moisture content (11.31 wt. %). The density of HVFs was found to be 1530 kg/m3. X-ray diffraction analysis of HVFs revealed 67.07% crystallinity index and 2.09 nm crystallite size. Tensile strength and percentage of elongation at failure exhibited by HVFs examined through single fiber tensile test was found to be 224.32–716.70 MPa and 3.99–8.77%. Thermo gravimetric analysis revealed thermal stability of HVFs up to 260°C with kinetic activation energy of 126.86 kJ/mol. Cellulose with high crystallinity index, lower wax content, good tensile resistance and better thermal behavior make HV fibers more suitable for composite manufacturing. The morphology of fiber surface studied through SEM images revealed the presence of more roughness at the outer surface which can improve the fiber-matrix bonding during composites preparation.
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spelling doaj.art-6bfcd3806bda4e47b23cb3778990bb012023-09-20T13:04:28ZengTaylor & Francis GroupJournal of Natural Fibers1544-04781544-046X2022-12-0119136961697610.1080/15440478.2021.19414841941484Physico-mechanical, Chemical Composition and Thermal Properties of Cellulose Fiber from Hibiscus vitifolius Plant Stalk for Polymer CompositesS. Manivel0N. Pannirselvam1R. Gopinath2T. P. Sathishkumar3SRM Institute of Science and TechnologySRM Institute of Science and TechnologyUniversity College of EngineeringKongu Engineering CollegeIn the present work, physico-mechanical, chemical composition, and thermal properties of cellulosic fiber extracted from the stem of Hibiscus vitifolius plant have been investigated. The wide characterization was conducted on the Hibiscus vitifolius (HV) fibers and the results proved their potentials for composite applications. Characterization tests on HV fibers confirmed the chemical constituents such as cellulose (75.09 wt. %), lignin (10.42 wt. %), hemicelluloses (13.34 wt. %), wax (0.17 wt. %), ash (0.94 wt. %) and moisture content (11.31 wt. %). The density of HVFs was found to be 1530 kg/m3. X-ray diffraction analysis of HVFs revealed 67.07% crystallinity index and 2.09 nm crystallite size. Tensile strength and percentage of elongation at failure exhibited by HVFs examined through single fiber tensile test was found to be 224.32–716.70 MPa and 3.99–8.77%. Thermo gravimetric analysis revealed thermal stability of HVFs up to 260°C with kinetic activation energy of 126.86 kJ/mol. Cellulose with high crystallinity index, lower wax content, good tensile resistance and better thermal behavior make HV fibers more suitable for composite manufacturing. The morphology of fiber surface studied through SEM images revealed the presence of more roughness at the outer surface which can improve the fiber-matrix bonding during composites preparation.http://dx.doi.org/10.1080/15440478.2021.1941484hibiscus vitifolius fiberscellulosefunctional groupsx-ray diffractionthermal degradation
spellingShingle S. Manivel
N. Pannirselvam
R. Gopinath
T. P. Sathishkumar
Physico-mechanical, Chemical Composition and Thermal Properties of Cellulose Fiber from Hibiscus vitifolius Plant Stalk for Polymer Composites
Journal of Natural Fibers
hibiscus vitifolius fibers
cellulose
functional groups
x-ray diffraction
thermal degradation
title Physico-mechanical, Chemical Composition and Thermal Properties of Cellulose Fiber from Hibiscus vitifolius Plant Stalk for Polymer Composites
title_full Physico-mechanical, Chemical Composition and Thermal Properties of Cellulose Fiber from Hibiscus vitifolius Plant Stalk for Polymer Composites
title_fullStr Physico-mechanical, Chemical Composition and Thermal Properties of Cellulose Fiber from Hibiscus vitifolius Plant Stalk for Polymer Composites
title_full_unstemmed Physico-mechanical, Chemical Composition and Thermal Properties of Cellulose Fiber from Hibiscus vitifolius Plant Stalk for Polymer Composites
title_short Physico-mechanical, Chemical Composition and Thermal Properties of Cellulose Fiber from Hibiscus vitifolius Plant Stalk for Polymer Composites
title_sort physico mechanical chemical composition and thermal properties of cellulose fiber from hibiscus vitifolius plant stalk for polymer composites
topic hibiscus vitifolius fibers
cellulose
functional groups
x-ray diffraction
thermal degradation
url http://dx.doi.org/10.1080/15440478.2021.1941484
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AT tpsathishkumar physicomechanicalchemicalcompositionandthermalpropertiesofcellulosefiberfromhibiscusvitifoliusplantstalkforpolymercomposites