Environmentally degradable starch filled low density polyethylene active packaging materials

Fibre reinforced polymer composites have many applications as a class of structural materials because of their ease of fabrication, relatively low cost and superior mechanical properties compared to polymer resins. Pineapple peel fibres (PAPF) have good potential as reinforcement in thermoplastic co...

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Main Author: Abu Bakar, Aznizam
Format: Monograph
Published: Faculty of Chemical and Natural Resource Engineering 2009
Online Access:http://eprints.utm.my/9150/
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author Abu Bakar, Aznizam
author_facet Abu Bakar, Aznizam
author_sort Abu Bakar, Aznizam
building UTeM Institutional Repository
collection Online Access
description Fibre reinforced polymer composites have many applications as a class of structural materials because of their ease of fabrication, relatively low cost and superior mechanical properties compared to polymer resins. Pineapple peel fibres (PAPF) have good potential as reinforcement in thermoplastic composite. It is the objective of the current research to develop a new formulation of PAPF biodegradable reinforced high density polyethylene as the material. Both HDPE and PAPF were compounded using extruder machine and then prepared for tensile test (ASTM D638), flexural test (ASTM D790) and impact test (ASTM D256) by using injection moulding machine. The PAPF/HDPE composites were characterized using Melt Flow Index (MFI), Scanning Electron Microscopy (SEM) and Fourier Transform Infra-Red (FTIR). MFI values of PAPF/HDPE composites decreased as the content of PAPF increased. SEM analysis clarified that the structure of 30 wt % PAPF/HDPE has fewer voids introduced by fibre pull out. FTIR results showed that O-H peak become broader with the increment of the fibre loading. As the PAPF loading in HDPE increased in term of wt%, the Young’s Modulus increased with fibre loading at the beginning and experienced optimum raise at 30 wt % of fibre loading. Conversely, it is found that the tensile strength declined as the fibre concentration in composite increased. It was also observed that the flexural modulus and strength of PAPF reinforced HDPE composite increased linearly with increment of fibre loadings. This trend was different for impact strength where it decreased as the fibre loading increased. The study concluded that the optimum fibre loading for the best performance of the composite is at 30 wt% fibre loading.
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format Monograph
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institution Universiti Teknologi Malaysia
institution_category Local University
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publishDate 2009
publisher Faculty of Chemical and Natural Resource Engineering
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spelling utm-91502017-08-15T00:33:32Z http://eprints.utm.my/9150/ Environmentally degradable starch filled low density polyethylene active packaging materials Abu Bakar, Aznizam Fibre reinforced polymer composites have many applications as a class of structural materials because of their ease of fabrication, relatively low cost and superior mechanical properties compared to polymer resins. Pineapple peel fibres (PAPF) have good potential as reinforcement in thermoplastic composite. It is the objective of the current research to develop a new formulation of PAPF biodegradable reinforced high density polyethylene as the material. Both HDPE and PAPF were compounded using extruder machine and then prepared for tensile test (ASTM D638), flexural test (ASTM D790) and impact test (ASTM D256) by using injection moulding machine. The PAPF/HDPE composites were characterized using Melt Flow Index (MFI), Scanning Electron Microscopy (SEM) and Fourier Transform Infra-Red (FTIR). MFI values of PAPF/HDPE composites decreased as the content of PAPF increased. SEM analysis clarified that the structure of 30 wt % PAPF/HDPE has fewer voids introduced by fibre pull out. FTIR results showed that O-H peak become broader with the increment of the fibre loading. As the PAPF loading in HDPE increased in term of wt%, the Young’s Modulus increased with fibre loading at the beginning and experienced optimum raise at 30 wt % of fibre loading. Conversely, it is found that the tensile strength declined as the fibre concentration in composite increased. It was also observed that the flexural modulus and strength of PAPF reinforced HDPE composite increased linearly with increment of fibre loadings. This trend was different for impact strength where it decreased as the fibre loading increased. The study concluded that the optimum fibre loading for the best performance of the composite is at 30 wt% fibre loading. Faculty of Chemical and Natural Resource Engineering 2009-02-04 Monograph NonPeerReviewed Abu Bakar, Aznizam (2009) Environmentally degradable starch filled low density polyethylene active packaging materials. Project Report. Faculty of Chemical and Natural Resource Engineering, Skudai, Johor. (Unpublished)
spellingShingle Abu Bakar, Aznizam
Environmentally degradable starch filled low density polyethylene active packaging materials
title Environmentally degradable starch filled low density polyethylene active packaging materials
title_full Environmentally degradable starch filled low density polyethylene active packaging materials
title_fullStr Environmentally degradable starch filled low density polyethylene active packaging materials
title_full_unstemmed Environmentally degradable starch filled low density polyethylene active packaging materials
title_short Environmentally degradable starch filled low density polyethylene active packaging materials
title_sort environmentally degradable starch filled low density polyethylene active packaging materials
url http://eprints.utm.my/9150/