Thiomer solidification of an ASR bottom ash: Optimization based on compressive strength and the characterization of heavy metal leaching

This study examines the function of Thiomer solidification as a novel environment friendly construction material and its immobilization capacity over heavy metals in the automotive shredder residue (ASR) bottom ash. The morphology of the mixture using a field emission-scanning electron microscopy co...

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Main Authors: Son, Jae Hyop, Baek, Jin Woong, Choi, Angelo Earvin Sy, Park, Hung Suck
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Published: Animo Repository 2017
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Online Access:https://animorepository.dlsu.edu.ph/faculty_research/1980
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Institution: De La Salle University
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spelling oai:animorepository.dlsu.edu.ph:faculty_research-29792021-08-06T07:16:49Z Thiomer solidification of an ASR bottom ash: Optimization based on compressive strength and the characterization of heavy metal leaching Son, Jae Hyop Baek, Jin Woong Choi, Angelo Earvin Sy Park, Hung Suck This study examines the function of Thiomer solidification as a novel environment friendly construction material and its immobilization capacity over heavy metals in the automotive shredder residue (ASR) bottom ash. The morphology of the mixture using a field emission-scanning electron microscopy consistently illustrated the effective bonding between Thiomer and sand towards ASR bottom ash due to acting as fillers to reduce the gaps in its surface during Thiomer solidification. A D-optimal mixture design was further utilized in order to evaluate and optimize the parameters of Thiomer (25–35 wt%), ASR bottom ash (30–45 wt%) and sand (30–40 wt%) on the response of compressive strength. Result showed that optimum compressive strength of 55.9 MPa can be attained at 33.6, 36.4 and 30.0 wt% of Thiomer, ASR bottom ash and sand, respectively. The solidified Thiomer specimen showed superior structural strength over ordinary Portland cement concrete at curing time of 1 and 7 days. Furthermore, a mean heavy metal concentrations of 0.055 ppm Cu2+, 0.105 ppm Zn2+, 0.045 ppm Pb2+, 0.078 ppm Cr6+ and 0.002 ppm Cd2+ were achieved at various mixture designs in the heavy metal immobilization which satisfies stringent environmental standards. Thus, the application of Thiomer proves to be a promising construction material that can pose as an alternative over common cement due to promoting high durability and being eco-friendly. © 2017 Elsevier Ltd 2017-11-10T08:00:00Z text https://animorepository.dlsu.edu.ph/faculty_research/1980 Faculty Research Work Animo Repository Clinker brick Solidification Heavy metals Chemical Engineering
institution De La Salle University
building De La Salle University Library
continent Asia
country Philippines
Philippines
content_provider De La Salle University Library
collection DLSU Institutional Repository
topic Clinker brick
Solidification
Heavy metals
Chemical Engineering
spellingShingle Clinker brick
Solidification
Heavy metals
Chemical Engineering
Son, Jae Hyop
Baek, Jin Woong
Choi, Angelo Earvin Sy
Park, Hung Suck
Thiomer solidification of an ASR bottom ash: Optimization based on compressive strength and the characterization of heavy metal leaching
description This study examines the function of Thiomer solidification as a novel environment friendly construction material and its immobilization capacity over heavy metals in the automotive shredder residue (ASR) bottom ash. The morphology of the mixture using a field emission-scanning electron microscopy consistently illustrated the effective bonding between Thiomer and sand towards ASR bottom ash due to acting as fillers to reduce the gaps in its surface during Thiomer solidification. A D-optimal mixture design was further utilized in order to evaluate and optimize the parameters of Thiomer (25–35 wt%), ASR bottom ash (30–45 wt%) and sand (30–40 wt%) on the response of compressive strength. Result showed that optimum compressive strength of 55.9 MPa can be attained at 33.6, 36.4 and 30.0 wt% of Thiomer, ASR bottom ash and sand, respectively. The solidified Thiomer specimen showed superior structural strength over ordinary Portland cement concrete at curing time of 1 and 7 days. Furthermore, a mean heavy metal concentrations of 0.055 ppm Cu2+, 0.105 ppm Zn2+, 0.045 ppm Pb2+, 0.078 ppm Cr6+ and 0.002 ppm Cd2+ were achieved at various mixture designs in the heavy metal immobilization which satisfies stringent environmental standards. Thus, the application of Thiomer proves to be a promising construction material that can pose as an alternative over common cement due to promoting high durability and being eco-friendly. © 2017 Elsevier Ltd
format text
author Son, Jae Hyop
Baek, Jin Woong
Choi, Angelo Earvin Sy
Park, Hung Suck
author_facet Son, Jae Hyop
Baek, Jin Woong
Choi, Angelo Earvin Sy
Park, Hung Suck
author_sort Son, Jae Hyop
title Thiomer solidification of an ASR bottom ash: Optimization based on compressive strength and the characterization of heavy metal leaching
title_short Thiomer solidification of an ASR bottom ash: Optimization based on compressive strength and the characterization of heavy metal leaching
title_full Thiomer solidification of an ASR bottom ash: Optimization based on compressive strength and the characterization of heavy metal leaching
title_fullStr Thiomer solidification of an ASR bottom ash: Optimization based on compressive strength and the characterization of heavy metal leaching
title_full_unstemmed Thiomer solidification of an ASR bottom ash: Optimization based on compressive strength and the characterization of heavy metal leaching
title_sort thiomer solidification of an asr bottom ash: optimization based on compressive strength and the characterization of heavy metal leaching
publisher Animo Repository
publishDate 2017
url https://animorepository.dlsu.edu.ph/faculty_research/1980
_version_ 1707787068704292864