Moulding of Water-Free Thermoplastic Starch Blends

Thermoplastic starch (TPS) is one of a number of biodegradable polymers which have become increasingly attractive in recent times as substitutes for petrochemicals. Starch is seen as particularly useful as both a low-cost filler and a promoter of biodegradation processes. A novel water-free TPS blen...

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Main Author: Lescher, Peter Edward
Other Authors: Jayaraman, Krishnan
Published: ResearchSpace@Auckland 2011
Online Access:http://hdl.handle.net/2292/6632
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spelling ndltd-AUCKLAND-oai-researchspace.auckland.ac.nz-2292-66322012-03-21T22:50:17ZMoulding of Water-Free Thermoplastic Starch BlendsLescher, Peter EdwardThermoplastic starch (TPS) is one of a number of biodegradable polymers which have become increasingly attractive in recent times as substitutes for petrochemicals. Starch is seen as particularly useful as both a low-cost filler and a promoter of biodegradation processes. A novel water-free TPS blend suitable for rotational moulding and other conventional thermoplastic manufacturing processes is presented here. A method for producing water-free TPS blends in a single extrusion with commodity polymer processing equipment has been developed. Selected mechanical properties of blends with a rotomoulding-grade polyethylene (PE) have been characterized, using different total TPS content, plasticizer type and amount. Extruded, injection moulded and rotomoulded samples were tested, both fresh and after aging, and compatibilizing additives were investigated. Completely biodegradable blends of TPS, poly(lactic acid) (PLA) and polybutylene succinate (PBS) were also demonstrated as rotomouldable and characterized in terms of mechanical properties. The ultimate tensile strength (UTS) of TPS/PE blends was found to be relatively consistent across TPS formulations and manufacturing methods, and not as high as PE alone. Tensile modulus was found to be more variable and could be raised or lowered with relation to PE. Compatibilizers had noticable but small effects. An increase in UTS was found to coincide with a TPS/PE modulus matching that of the PE alone, and a decrease in elongation to break. The impact strength of rotomoulded TPS/PE was low compared to the PE reference. Water-free blends have also been investigated in terms of electrical conductivity and oxygen barrier properties. Compression-moulded TPS/PE films were found to be an improvement on PE, and the TPS alone was demonstrated as an excellent oxygen barrier even when highly plasticized. The electrical conductivity of TPS was found to improve with the addition of either salts or dispersed conductive particles, despite the lack of water, indicating potential as a cheap electroactive polymer.ResearchSpace@AucklandJayaraman, KrishnanBhattacharyya, Debes2011-03-23T02:10:35Z2011-03-23T02:10:35Z2010Thesishttp://hdl.handle.net/2292/6632PhD Thesis - University of AucklandUoA2110032Items in ResearchSpace are protected by copyright, with all rights reserved, unless otherwise indicated. Previously published items are made available in accordance with the copyright policy of the publisher.https://researchspace.auckland.ac.nz/docs/uoa-docs/rights.htmCopyright: The author
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description Thermoplastic starch (TPS) is one of a number of biodegradable polymers which have become increasingly attractive in recent times as substitutes for petrochemicals. Starch is seen as particularly useful as both a low-cost filler and a promoter of biodegradation processes. A novel water-free TPS blend suitable for rotational moulding and other conventional thermoplastic manufacturing processes is presented here. A method for producing water-free TPS blends in a single extrusion with commodity polymer processing equipment has been developed. Selected mechanical properties of blends with a rotomoulding-grade polyethylene (PE) have been characterized, using different total TPS content, plasticizer type and amount. Extruded, injection moulded and rotomoulded samples were tested, both fresh and after aging, and compatibilizing additives were investigated. Completely biodegradable blends of TPS, poly(lactic acid) (PLA) and polybutylene succinate (PBS) were also demonstrated as rotomouldable and characterized in terms of mechanical properties. The ultimate tensile strength (UTS) of TPS/PE blends was found to be relatively consistent across TPS formulations and manufacturing methods, and not as high as PE alone. Tensile modulus was found to be more variable and could be raised or lowered with relation to PE. Compatibilizers had noticable but small effects. An increase in UTS was found to coincide with a TPS/PE modulus matching that of the PE alone, and a decrease in elongation to break. The impact strength of rotomoulded TPS/PE was low compared to the PE reference. Water-free blends have also been investigated in terms of electrical conductivity and oxygen barrier properties. Compression-moulded TPS/PE films were found to be an improvement on PE, and the TPS alone was demonstrated as an excellent oxygen barrier even when highly plasticized. The electrical conductivity of TPS was found to improve with the addition of either salts or dispersed conductive particles, despite the lack of water, indicating potential as a cheap electroactive polymer.
author2 Jayaraman, Krishnan
author_facet Jayaraman, Krishnan
Lescher, Peter Edward
author Lescher, Peter Edward
spellingShingle Lescher, Peter Edward
Moulding of Water-Free Thermoplastic Starch Blends
author_sort Lescher, Peter Edward
title Moulding of Water-Free Thermoplastic Starch Blends
title_short Moulding of Water-Free Thermoplastic Starch Blends
title_full Moulding of Water-Free Thermoplastic Starch Blends
title_fullStr Moulding of Water-Free Thermoplastic Starch Blends
title_full_unstemmed Moulding of Water-Free Thermoplastic Starch Blends
title_sort moulding of water-free thermoplastic starch blends
publisher ResearchSpace@Auckland
publishDate 2011
url http://hdl.handle.net/2292/6632
work_keys_str_mv AT lescherpeteredward mouldingofwaterfreethermoplasticstarchblends
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