Effects of Steel Slag Substitution in Geopolymer Concrete on Compressive Strength and Corrosion Rate of Steel Reinforcement in Seawater and an Acid Rain Environment

The effect of steel slag substitution as coarse aggregate on compressive strength in fly ash based-geopolymer concrete was studied. The compressive strength was evaluated by measuring the maximum acceptable load using compression testing equipment. Compressive strength depends on several factors, su...

Full description

Bibliographic Details
Main Authors: Henki Wibowo Ashadi, Boy Ahmad Aprilando, Sotya Astutiningsih
Format: Article
Language:English
Published: Universitas Indonesia 2015-04-01
Series:International Journal of Technology
Online Access:http://ijtech.eng.ui.ac.id/article/view/1351
id doaj-d91f352a53ed4418949289d9289d6836
record_format Article
spelling doaj-d91f352a53ed4418949289d9289d68362020-11-25T02:28:57ZengUniversitas IndonesiaInternational Journal of Technology2086-96142087-21002015-04-016222723510.14716/ijtech.v6i2.13511351Effects of Steel Slag Substitution in Geopolymer Concrete on Compressive Strength and Corrosion Rate of Steel Reinforcement in Seawater and an Acid Rain EnvironmentHenki Wibowo Ashadi0Boy Ahmad Aprilando1Sotya Astutiningsih2Department of Civil Engineering, Faculty of Engineering, Universitas Indonesia, Kampus UI Depok 16424, IndonesiaDepartment of Civil Engineering, Faculty of Engineering, Universitas Indonesia, Kampus UI Depok 16424, IndonesiaDepartment of Metallurgical and Materials, Faculty of Engineering, Universitas Indonesia, Kampus UI Depok 16424, IndonesiaThe effect of steel slag substitution as coarse aggregate on compressive strength in fly ash based-geopolymer concrete was studied. The compressive strength was evaluated by measuring the maximum acceptable load using compression testing equipment. Compressive strength depends on several factors, such as time and temperature of curing and the mixing proportion. The compressive strength of geopolymer concrete with steel slag substitution was higher compared to geopolymer concrete with gravel aggregate. The optimum compressive strength was found on the third day of curing at a temperature of 60oC for both the geopolymer concrete with steel slag substitution and normal geopolymer concrete. Reinforcement corrosion was evaluated by measuring the corrosion current density using a linear polarization potentiostatic scan. The corrosion rate of reinforcing steel in geopolymer concrete with steel slag substitution was found to be higher compared to normal geopolymer concrete without steel slag in seawater medium, whereas in an acid rain environment, steel slag substitution increased corrosion resistance. The corrosion rate of geopolymer concrete with steel slag substitution was found to be lower compared to normal geopolymer concrete. The corrosion rate was found to be very high at an early stage and decreased with time.http://ijtech.eng.ui.ac.id/article/view/1351
collection DOAJ
language English
format Article
sources DOAJ
author Henki Wibowo Ashadi
Boy Ahmad Aprilando
Sotya Astutiningsih
spellingShingle Henki Wibowo Ashadi
Boy Ahmad Aprilando
Sotya Astutiningsih
Effects of Steel Slag Substitution in Geopolymer Concrete on Compressive Strength and Corrosion Rate of Steel Reinforcement in Seawater and an Acid Rain Environment
International Journal of Technology
author_facet Henki Wibowo Ashadi
Boy Ahmad Aprilando
Sotya Astutiningsih
author_sort Henki Wibowo Ashadi
title Effects of Steel Slag Substitution in Geopolymer Concrete on Compressive Strength and Corrosion Rate of Steel Reinforcement in Seawater and an Acid Rain Environment
title_short Effects of Steel Slag Substitution in Geopolymer Concrete on Compressive Strength and Corrosion Rate of Steel Reinforcement in Seawater and an Acid Rain Environment
title_full Effects of Steel Slag Substitution in Geopolymer Concrete on Compressive Strength and Corrosion Rate of Steel Reinforcement in Seawater and an Acid Rain Environment
title_fullStr Effects of Steel Slag Substitution in Geopolymer Concrete on Compressive Strength and Corrosion Rate of Steel Reinforcement in Seawater and an Acid Rain Environment
title_full_unstemmed Effects of Steel Slag Substitution in Geopolymer Concrete on Compressive Strength and Corrosion Rate of Steel Reinforcement in Seawater and an Acid Rain Environment
title_sort effects of steel slag substitution in geopolymer concrete on compressive strength and corrosion rate of steel reinforcement in seawater and an acid rain environment
publisher Universitas Indonesia
series International Journal of Technology
issn 2086-9614
2087-2100
publishDate 2015-04-01
description The effect of steel slag substitution as coarse aggregate on compressive strength in fly ash based-geopolymer concrete was studied. The compressive strength was evaluated by measuring the maximum acceptable load using compression testing equipment. Compressive strength depends on several factors, such as time and temperature of curing and the mixing proportion. The compressive strength of geopolymer concrete with steel slag substitution was higher compared to geopolymer concrete with gravel aggregate. The optimum compressive strength was found on the third day of curing at a temperature of 60oC for both the geopolymer concrete with steel slag substitution and normal geopolymer concrete. Reinforcement corrosion was evaluated by measuring the corrosion current density using a linear polarization potentiostatic scan. The corrosion rate of reinforcing steel in geopolymer concrete with steel slag substitution was found to be higher compared to normal geopolymer concrete without steel slag in seawater medium, whereas in an acid rain environment, steel slag substitution increased corrosion resistance. The corrosion rate of geopolymer concrete with steel slag substitution was found to be lower compared to normal geopolymer concrete. The corrosion rate was found to be very high at an early stage and decreased with time.
url http://ijtech.eng.ui.ac.id/article/view/1351
work_keys_str_mv AT henkiwibowoashadi effectsofsteelslagsubstitutioningeopolymerconcreteoncompressivestrengthandcorrosionrateofsteelreinforcementinseawaterandanacidrainenvironment
AT boyahmadaprilando effectsofsteelslagsubstitutioningeopolymerconcreteoncompressivestrengthandcorrosionrateofsteelreinforcementinseawaterandanacidrainenvironment
AT sotyaastutiningsih effectsofsteelslagsubstitutioningeopolymerconcreteoncompressivestrengthandcorrosionrateofsteelreinforcementinseawaterandanacidrainenvironment
_version_ 1724835381560475648