Cargando…
The Solidification of Lead-Zinc Smelting Slag through Bentonite Supported Alkali-Activated Slag Cementitious Material
The proper disposal of Lead-Zinc Smelting Slag (LZSS) having toxic metals is a great challenge for a sustainable environment. In the present study, this challenge was overcome by its solidification/stabilization through alkali-activated cementitious material i.e., Blast Furnace Slag (BFS). The diffe...
Autores principales: | , , , , , , , |
---|---|
Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
MDPI
2019
|
Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6479324/ https://www.ncbi.nlm.nih.gov/pubmed/30925811 http://dx.doi.org/10.3390/ijerph16071121 |
_version_ | 1783413319299760128 |
---|---|
author | Mao, Yanhong Muhammad, Faheem Yu, Lin Xia, Ming Huang, Xiao Jiao, Binquan Shiau, YanChyuan Li, Dongwei |
author_facet | Mao, Yanhong Muhammad, Faheem Yu, Lin Xia, Ming Huang, Xiao Jiao, Binquan Shiau, YanChyuan Li, Dongwei |
author_sort | Mao, Yanhong |
collection | PubMed |
description | The proper disposal of Lead-Zinc Smelting Slag (LZSS) having toxic metals is a great challenge for a sustainable environment. In the present study, this challenge was overcome by its solidification/stabilization through alkali-activated cementitious material i.e., Blast Furnace Slag (BFS). The different parameters (water glass modulus, liquid-solid ratio and curing temperature) regarding strength development were optimized through single factor and orthogonal experiments. The LZSS was solidified in samples that had the highest compressive strength (after factor optimization) synthesized with (AASB) and without (AAS) bentonite as an adsorbent material. The results indicated that the highest compressive strength (AAS = 92.89MPa and AASB = 94.57MPa) was observed in samples which were prepared by using a water glass modulus of 1.4, liquid-solid ratio of 0.26 and a curing temperature of 25 °C. The leaching concentrations of Pb and Zn in both methods (sulfuric and nitric acid, and TCLP) had not exceeded the toxicity limits up to 70% addition of LZSS due to a higher compressive strength (>60 MPa) of AAS and AASB samples. While, leaching concentrations in AASB samples were lower than AAS. Conclusively, it was found that the solidification effect depends upon the composition of binder material, type of leaching extractant, nature and concentration of heavy metals in waste. The XRD, FTIR and SEM analyses confirmed that the solidification mechanism was carried out by both physical encapsulation and chemical fixation (dissolved into a crystal structure). Additionally, bentonite as an auxiliary additive significantly improved the solidification/stabilization of LZSS in AASB by enhancing the chemical adsorption capacity of heavy metals. |
format | Online Article Text |
id | pubmed-6479324 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2019 |
publisher | MDPI |
record_format | MEDLINE/PubMed |
spelling | pubmed-64793242019-04-29 The Solidification of Lead-Zinc Smelting Slag through Bentonite Supported Alkali-Activated Slag Cementitious Material Mao, Yanhong Muhammad, Faheem Yu, Lin Xia, Ming Huang, Xiao Jiao, Binquan Shiau, YanChyuan Li, Dongwei Int J Environ Res Public Health Article The proper disposal of Lead-Zinc Smelting Slag (LZSS) having toxic metals is a great challenge for a sustainable environment. In the present study, this challenge was overcome by its solidification/stabilization through alkali-activated cementitious material i.e., Blast Furnace Slag (BFS). The different parameters (water glass modulus, liquid-solid ratio and curing temperature) regarding strength development were optimized through single factor and orthogonal experiments. The LZSS was solidified in samples that had the highest compressive strength (after factor optimization) synthesized with (AASB) and without (AAS) bentonite as an adsorbent material. The results indicated that the highest compressive strength (AAS = 92.89MPa and AASB = 94.57MPa) was observed in samples which were prepared by using a water glass modulus of 1.4, liquid-solid ratio of 0.26 and a curing temperature of 25 °C. The leaching concentrations of Pb and Zn in both methods (sulfuric and nitric acid, and TCLP) had not exceeded the toxicity limits up to 70% addition of LZSS due to a higher compressive strength (>60 MPa) of AAS and AASB samples. While, leaching concentrations in AASB samples were lower than AAS. Conclusively, it was found that the solidification effect depends upon the composition of binder material, type of leaching extractant, nature and concentration of heavy metals in waste. The XRD, FTIR and SEM analyses confirmed that the solidification mechanism was carried out by both physical encapsulation and chemical fixation (dissolved into a crystal structure). Additionally, bentonite as an auxiliary additive significantly improved the solidification/stabilization of LZSS in AASB by enhancing the chemical adsorption capacity of heavy metals. MDPI 2019-03-28 2019-04 /pmc/articles/PMC6479324/ /pubmed/30925811 http://dx.doi.org/10.3390/ijerph16071121 Text en © 2019 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/). |
spellingShingle | Article Mao, Yanhong Muhammad, Faheem Yu, Lin Xia, Ming Huang, Xiao Jiao, Binquan Shiau, YanChyuan Li, Dongwei The Solidification of Lead-Zinc Smelting Slag through Bentonite Supported Alkali-Activated Slag Cementitious Material |
title | The Solidification of Lead-Zinc Smelting Slag through Bentonite Supported Alkali-Activated Slag Cementitious Material |
title_full | The Solidification of Lead-Zinc Smelting Slag through Bentonite Supported Alkali-Activated Slag Cementitious Material |
title_fullStr | The Solidification of Lead-Zinc Smelting Slag through Bentonite Supported Alkali-Activated Slag Cementitious Material |
title_full_unstemmed | The Solidification of Lead-Zinc Smelting Slag through Bentonite Supported Alkali-Activated Slag Cementitious Material |
title_short | The Solidification of Lead-Zinc Smelting Slag through Bentonite Supported Alkali-Activated Slag Cementitious Material |
title_sort | solidification of lead-zinc smelting slag through bentonite supported alkali-activated slag cementitious material |
topic | Article |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6479324/ https://www.ncbi.nlm.nih.gov/pubmed/30925811 http://dx.doi.org/10.3390/ijerph16071121 |
work_keys_str_mv | AT maoyanhong thesolidificationofleadzincsmeltingslagthroughbentonitesupportedalkaliactivatedslagcementitiousmaterial AT muhammadfaheem thesolidificationofleadzincsmeltingslagthroughbentonitesupportedalkaliactivatedslagcementitiousmaterial AT yulin thesolidificationofleadzincsmeltingslagthroughbentonitesupportedalkaliactivatedslagcementitiousmaterial AT xiaming thesolidificationofleadzincsmeltingslagthroughbentonitesupportedalkaliactivatedslagcementitiousmaterial AT huangxiao thesolidificationofleadzincsmeltingslagthroughbentonitesupportedalkaliactivatedslagcementitiousmaterial AT jiaobinquan thesolidificationofleadzincsmeltingslagthroughbentonitesupportedalkaliactivatedslagcementitiousmaterial AT shiauyanchyuan thesolidificationofleadzincsmeltingslagthroughbentonitesupportedalkaliactivatedslagcementitiousmaterial AT lidongwei thesolidificationofleadzincsmeltingslagthroughbentonitesupportedalkaliactivatedslagcementitiousmaterial AT maoyanhong solidificationofleadzincsmeltingslagthroughbentonitesupportedalkaliactivatedslagcementitiousmaterial AT muhammadfaheem solidificationofleadzincsmeltingslagthroughbentonitesupportedalkaliactivatedslagcementitiousmaterial AT yulin solidificationofleadzincsmeltingslagthroughbentonitesupportedalkaliactivatedslagcementitiousmaterial AT xiaming solidificationofleadzincsmeltingslagthroughbentonitesupportedalkaliactivatedslagcementitiousmaterial AT huangxiao solidificationofleadzincsmeltingslagthroughbentonitesupportedalkaliactivatedslagcementitiousmaterial AT jiaobinquan solidificationofleadzincsmeltingslagthroughbentonitesupportedalkaliactivatedslagcementitiousmaterial AT shiauyanchyuan solidificationofleadzincsmeltingslagthroughbentonitesupportedalkaliactivatedslagcementitiousmaterial AT lidongwei solidificationofleadzincsmeltingslagthroughbentonitesupportedalkaliactivatedslagcementitiousmaterial |