Microorganism precipitation in enhancing concrete properties

Microorganism is an unique living element and has the ability to precipitate minerals through the process of biomineralisation. The precipitation process occured naturally and most of the precipitated products are very important compound composed of such as carbon, nitrogen, oxygen, sulphur, phospho...

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Published in:Applied Mechanics and Materials
Main Author: Afifudin H.; Hamidah S.M.; Noor Hana H.; Kartini K.
Format: Conference paper
Language:English
Published: 2011
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-80053480564&doi=10.4028%2fwww.scientific.net%2fAMM.99-100.1157&partnerID=40&md5=412862dc0a6341648e0f3ab0eb25eb48
id 2-s2.0-80053480564
spelling 2-s2.0-80053480564
Afifudin H.; Hamidah S.M.; Noor Hana H.; Kartini K.
Microorganism precipitation in enhancing concrete properties
2011
Applied Mechanics and Materials
99-100

10.4028/www.scientific.net/AMM.99-100.1157
https://www.scopus.com/inward/record.uri?eid=2-s2.0-80053480564&doi=10.4028%2fwww.scientific.net%2fAMM.99-100.1157&partnerID=40&md5=412862dc0a6341648e0f3ab0eb25eb48
Microorganism is an unique living element and has the ability to precipitate minerals through the process of biomineralisation. The precipitation process occured naturally and most of the precipitated products are very important compound composed of such as carbon, nitrogen, oxygen, sulphur, phosphorus and silica. So far, concrete incorporated with microorganism that able to precipitate calcium carbonate (calcite) was reported. However, little information on silica precipitation and its effect on concrete properties has been revealed. In this present study, the concrete specimens were incorporated with Bacillus subtilis silica adsorbed in their cell wall. Concrete specimens with five different concentration of Bacillus subtilis cell which are 10 4, 10 5, 10 6 and 10 7 cell/ml and control (without Bacillus subtilis) were cast. The experimental investigation aims to prove that the silica precipitated by this microorganism can enhance the concrete properties namely its compressive strength and resistance to carbonation. The microstructure of the concrete contained Bacillus subtilis was also examined. It appears that the inclusion of Bacillus subtilis into the concrete enhanced the compressive strength. The concentration of 10 6 cell/ml was found to be the optimum concentration to give most enhanced effect to the compressive strength. However the effect of including Bacillus subtilis to the resistance to carbonation of the concrete specimen is found to be insignificant. © (2011) Trans Tech Publications.

16627482
English
Conference paper

author Afifudin H.; Hamidah S.M.; Noor Hana H.; Kartini K.
spellingShingle Afifudin H.; Hamidah S.M.; Noor Hana H.; Kartini K.
Microorganism precipitation in enhancing concrete properties
author_facet Afifudin H.; Hamidah S.M.; Noor Hana H.; Kartini K.
author_sort Afifudin H.; Hamidah S.M.; Noor Hana H.; Kartini K.
title Microorganism precipitation in enhancing concrete properties
title_short Microorganism precipitation in enhancing concrete properties
title_full Microorganism precipitation in enhancing concrete properties
title_fullStr Microorganism precipitation in enhancing concrete properties
title_full_unstemmed Microorganism precipitation in enhancing concrete properties
title_sort Microorganism precipitation in enhancing concrete properties
publishDate 2011
container_title Applied Mechanics and Materials
container_volume 99-100
container_issue
doi_str_mv 10.4028/www.scientific.net/AMM.99-100.1157
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-80053480564&doi=10.4028%2fwww.scientific.net%2fAMM.99-100.1157&partnerID=40&md5=412862dc0a6341648e0f3ab0eb25eb48
description Microorganism is an unique living element and has the ability to precipitate minerals through the process of biomineralisation. The precipitation process occured naturally and most of the precipitated products are very important compound composed of such as carbon, nitrogen, oxygen, sulphur, phosphorus and silica. So far, concrete incorporated with microorganism that able to precipitate calcium carbonate (calcite) was reported. However, little information on silica precipitation and its effect on concrete properties has been revealed. In this present study, the concrete specimens were incorporated with Bacillus subtilis silica adsorbed in their cell wall. Concrete specimens with five different concentration of Bacillus subtilis cell which are 10 4, 10 5, 10 6 and 10 7 cell/ml and control (without Bacillus subtilis) were cast. The experimental investigation aims to prove that the silica precipitated by this microorganism can enhance the concrete properties namely its compressive strength and resistance to carbonation. The microstructure of the concrete contained Bacillus subtilis was also examined. It appears that the inclusion of Bacillus subtilis into the concrete enhanced the compressive strength. The concentration of 10 6 cell/ml was found to be the optimum concentration to give most enhanced effect to the compressive strength. However the effect of including Bacillus subtilis to the resistance to carbonation of the concrete specimen is found to be insignificant. © (2011) Trans Tech Publications.
publisher
issn 16627482
language English
format Conference paper
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