Synthesis of electron beam irradiated hydrogel beads for disaster relief applications

When natural disaster occurred without warning, it destroyed almost everything including water facilities and infrastructures. Restoring infrastructures or transporting necessities into affected areas would take a period of time. Light-weight, ease of use and ease of transport, water purification me...

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Main Author: Oh, Jessica Si Jia
Other Authors: School of Materials Science and Engineering
Format: Final Year Project
Language:English
Published: 2012
Subjects:
Online Access:http://hdl.handle.net/10356/48741
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-487412023-03-04T15:37:39Z Synthesis of electron beam irradiated hydrogel beads for disaster relief applications Oh, Jessica Si Jia School of Materials Science and Engineering Huang YiZhong DRNTU::Engineering::Materials::Biomaterials When natural disaster occurred without warning, it destroyed almost everything including water facilities and infrastructures. Restoring infrastructures or transporting necessities into affected areas would take a period of time. Light-weight, ease of use and ease of transport, water purification method was needed in disaster area to provide potable water. This research focuses on the synthesis of electron beam irradiated hydrogel beads that would be suitable for disaster relief application. Biocompatible, non-toxic and biodegradable materials alginate and chitosan were used to fabricate hydrogel beads. The effect of electron beam radiation on swelling capability, reusability and bacteria exclusion capability of the hydrogel were determined and was found to play a dominant role in determining the swelling capability, reusability and bacteria exclusion capability of the hydrogel beads. Hydrogel beads irradiated with electron beam of dose 5 Mrad gives highest swelling ratio percentage of 231.4 % and hydrogel beads irradiated with dose of 15 Mrad were able to remove bacteria up to 86.7 % after three cycles of absorption/compression. Hydrogel beads synthesized were capable of reuse up to a maximum of only two times, further optimization is needed to produce hydrogels of higher mechanical properties to meet the needs of disaster relief application. Preliminary morphological characterization of hydrogel beads were provided with the use of optical microscopy and remarkable difference was observed in the surface structure between swelled and unswelled hydrogel beads. Higher magnification analysis with use of SEM was not possible as hydrogel beads dehydrated under vacuum condition in the SEM chamber. Bachelor of Engineering (Materials Engineering) 2012-05-09T01:27:22Z 2012-05-09T01:27:22Z 2012 2012 Final Year Project (FYP) http://hdl.handle.net/10356/48741 en Nanyang Technological University 43 p. application/pdf
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic DRNTU::Engineering::Materials::Biomaterials
spellingShingle DRNTU::Engineering::Materials::Biomaterials
Oh, Jessica Si Jia
Synthesis of electron beam irradiated hydrogel beads for disaster relief applications
description When natural disaster occurred without warning, it destroyed almost everything including water facilities and infrastructures. Restoring infrastructures or transporting necessities into affected areas would take a period of time. Light-weight, ease of use and ease of transport, water purification method was needed in disaster area to provide potable water. This research focuses on the synthesis of electron beam irradiated hydrogel beads that would be suitable for disaster relief application. Biocompatible, non-toxic and biodegradable materials alginate and chitosan were used to fabricate hydrogel beads. The effect of electron beam radiation on swelling capability, reusability and bacteria exclusion capability of the hydrogel were determined and was found to play a dominant role in determining the swelling capability, reusability and bacteria exclusion capability of the hydrogel beads. Hydrogel beads irradiated with electron beam of dose 5 Mrad gives highest swelling ratio percentage of 231.4 % and hydrogel beads irradiated with dose of 15 Mrad were able to remove bacteria up to 86.7 % after three cycles of absorption/compression. Hydrogel beads synthesized were capable of reuse up to a maximum of only two times, further optimization is needed to produce hydrogels of higher mechanical properties to meet the needs of disaster relief application. Preliminary morphological characterization of hydrogel beads were provided with the use of optical microscopy and remarkable difference was observed in the surface structure between swelled and unswelled hydrogel beads. Higher magnification analysis with use of SEM was not possible as hydrogel beads dehydrated under vacuum condition in the SEM chamber.
author2 School of Materials Science and Engineering
author_facet School of Materials Science and Engineering
Oh, Jessica Si Jia
format Final Year Project
author Oh, Jessica Si Jia
author_sort Oh, Jessica Si Jia
title Synthesis of electron beam irradiated hydrogel beads for disaster relief applications
title_short Synthesis of electron beam irradiated hydrogel beads for disaster relief applications
title_full Synthesis of electron beam irradiated hydrogel beads for disaster relief applications
title_fullStr Synthesis of electron beam irradiated hydrogel beads for disaster relief applications
title_full_unstemmed Synthesis of electron beam irradiated hydrogel beads for disaster relief applications
title_sort synthesis of electron beam irradiated hydrogel beads for disaster relief applications
publishDate 2012
url http://hdl.handle.net/10356/48741
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