Recycling effects on the bending, rheological, and structural properties of glass fiber-reinforced isotactic polypropylene composites

In the present work, a combination of virgin polypropylene and E-glass fiber was subjected to ten (10) reprocessing cycles via extrusion and compression molding techniques to mimic recycling and its impacts on the bending properties of the composites. The samples were characterized using Fourier tra...

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Published in:Journal of Reinforced Plastics and Composites
Main Author: Achukwu E.O.; Owen M.M.; Danladi A.; Dauda B.M.; Romli A.Z.; Shuib S.B.; Ishiaku U.S.; Hazizan A.M.
Format: Article
Language:English
Published: SAGE Publications Ltd 2024
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85152460821&doi=10.1177%2f07316844231167552&partnerID=40&md5=54dfa794aaa45075b3c51cfe1d3b885a
id 2-s2.0-85152460821
spelling 2-s2.0-85152460821
Achukwu E.O.; Owen M.M.; Danladi A.; Dauda B.M.; Romli A.Z.; Shuib S.B.; Ishiaku U.S.; Hazizan A.M.
Recycling effects on the bending, rheological, and structural properties of glass fiber-reinforced isotactic polypropylene composites
2024
Journal of Reinforced Plastics and Composites
43
9-Oct
10.1177/07316844231167552
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85152460821&doi=10.1177%2f07316844231167552&partnerID=40&md5=54dfa794aaa45075b3c51cfe1d3b885a
In the present work, a combination of virgin polypropylene and E-glass fiber was subjected to ten (10) reprocessing cycles via extrusion and compression molding techniques to mimic recycling and its impacts on the bending properties of the composites. The samples were characterized using Fourier transform infrared (FTIR) spectroscopy, x-ray diffraction (XRD), scanning electron microscopy (SEM), and melt flow index (MFI). The results revealed a gradual depreciation in flexural properties after each reprocessing cycle. The XRD analysis indicated a substantial reduction of peak intensities, degrees of crystallinities, and average crystallite sizes, explaining the lowered flexural properties in addition to a possible reduction in glass fiber lengths (fiber attrition). Melt-processing behavior shows a progressive increase of MFI from 7 to 19.16 g/10 min, confirming the probable damage in molecular weight and loss of complex viscosity. Chemical and structural analysis showed no alteration in the polypropylene major functional groups. It is concluded that the reductions in molecular weight and composites’ properties occurred due to chain scission from recycling effects; hence, glass fiber-reinforced polypropylene composites can be recycled only three (3) times unless it is refreshed by the addition of virgin parts to compensate for the lost property. © The Author(s) 2023.
SAGE Publications Ltd
7316844
English
Article

author Achukwu E.O.; Owen M.M.; Danladi A.; Dauda B.M.; Romli A.Z.; Shuib S.B.; Ishiaku U.S.; Hazizan A.M.
spellingShingle Achukwu E.O.; Owen M.M.; Danladi A.; Dauda B.M.; Romli A.Z.; Shuib S.B.; Ishiaku U.S.; Hazizan A.M.
Recycling effects on the bending, rheological, and structural properties of glass fiber-reinforced isotactic polypropylene composites
author_facet Achukwu E.O.; Owen M.M.; Danladi A.; Dauda B.M.; Romli A.Z.; Shuib S.B.; Ishiaku U.S.; Hazizan A.M.
author_sort Achukwu E.O.; Owen M.M.; Danladi A.; Dauda B.M.; Romli A.Z.; Shuib S.B.; Ishiaku U.S.; Hazizan A.M.
title Recycling effects on the bending, rheological, and structural properties of glass fiber-reinforced isotactic polypropylene composites
title_short Recycling effects on the bending, rheological, and structural properties of glass fiber-reinforced isotactic polypropylene composites
title_full Recycling effects on the bending, rheological, and structural properties of glass fiber-reinforced isotactic polypropylene composites
title_fullStr Recycling effects on the bending, rheological, and structural properties of glass fiber-reinforced isotactic polypropylene composites
title_full_unstemmed Recycling effects on the bending, rheological, and structural properties of glass fiber-reinforced isotactic polypropylene composites
title_sort Recycling effects on the bending, rheological, and structural properties of glass fiber-reinforced isotactic polypropylene composites
publishDate 2024
container_title Journal of Reinforced Plastics and Composites
container_volume 43
container_issue 9-Oct
doi_str_mv 10.1177/07316844231167552
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85152460821&doi=10.1177%2f07316844231167552&partnerID=40&md5=54dfa794aaa45075b3c51cfe1d3b885a
description In the present work, a combination of virgin polypropylene and E-glass fiber was subjected to ten (10) reprocessing cycles via extrusion and compression molding techniques to mimic recycling and its impacts on the bending properties of the composites. The samples were characterized using Fourier transform infrared (FTIR) spectroscopy, x-ray diffraction (XRD), scanning electron microscopy (SEM), and melt flow index (MFI). The results revealed a gradual depreciation in flexural properties after each reprocessing cycle. The XRD analysis indicated a substantial reduction of peak intensities, degrees of crystallinities, and average crystallite sizes, explaining the lowered flexural properties in addition to a possible reduction in glass fiber lengths (fiber attrition). Melt-processing behavior shows a progressive increase of MFI from 7 to 19.16 g/10 min, confirming the probable damage in molecular weight and loss of complex viscosity. Chemical and structural analysis showed no alteration in the polypropylene major functional groups. It is concluded that the reductions in molecular weight and composites’ properties occurred due to chain scission from recycling effects; hence, glass fiber-reinforced polypropylene composites can be recycled only three (3) times unless it is refreshed by the addition of virgin parts to compensate for the lost property. © The Author(s) 2023.
publisher SAGE Publications Ltd
issn 7316844
language English
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