Literature DB >> 29282669

Co-treatment of flotation waste, neutralization sludge, and arsenic-containing gypsum sludge from copper smelting: solidification/stabilization of arsenic and heavy metals with minimal cement clinker.

De-Gang Liu1, Xiao-Bo Min2,3, Yong Ke4,5,6, Li-Yuan Chai1,7, Yan-Jie Liang1,7, Yuan-Cheng Li1, Li-Wei Yao1, Zhong-Bing Wang1.   

Abstract

Flotation waste of copper slag (FWCS), neutralization sludge (NS), and arsenic-containing gypsum sludge (GS), both of which are difficult to dispose of, are major solid wastes produced by the copper smelting. This study focused on the co-treatment of FWCS, NS, and GS for solidification/stabilization of arsenic and heavy metals with minimal cement clinker. Firstly, the preparation parameters of binder composed of FWCS, NS, and cement clinker were optimized to be FWCS dosage of 40%, NS dosage of 10%, cement clinker dosage of 50%, mill time of 1.5 h, and water-to-binder ratio of 0.25. On these conditions, the unconfined compressive strength (UCS) of the binder reached 43.24 MPa after hydration of 28 days. Then, the binder was used to solidify/stabilize the As-containing GS. When the mass ratio of binder-to-GS was 5:5, the UCS of matrix can reach 11.06 MPa after hydration of 28 days, meeting the required UCS level of MU10 brick in China. Moreover, arsenic and other heavy metals in FWCS, NS, and GS were effectively solidified or stabilized. The heavy metal concentrations in leachate were much lower than those in the limits of China standard leaching test (CSLT). Therefore, the matrices were potential to be used as bricks in some constructions. XRD analysis shows that the main hydration products of the matrix were portlandite and calcium silicate hydrate. These hydration products may play a significant role in the stabilization/solidification of arsenic and heavy metals.

Entities:  

Keywords:  Arsenic; Co-treatment; Copper smelting wastes; Heavy metals; Stabilization/solidification

Mesh:

Substances:

Year:  2017        PMID: 29282669     DOI: 10.1007/s11356-017-1084-x

Source DB:  PubMed          Journal:  Environ Sci Pollut Res Int        ISSN: 0944-1344            Impact factor:   4.223


  18 in total

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Authors:  Yuan-Cheng Li; Xiao-Bo Min; Li-Yuan Chai; Mei-Qing Shi; Chong-Jian Tang; Qing-Wei Wang; Yan-Jie Liang; Jie Lei; Wen-Jun Liyang
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10.  Role of iron in controlling speciation and mobilization of arsenic in subsurface environment.

Authors:  Purnendu Bose; Archana Sharma
Journal:  Water Res       Date:  2002-11       Impact factor: 11.236

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5.  Hydrothermal Treatment of Arsenic Sulfide Residues from Arsenic-Bearing Acid Wastewater.

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Journal:  Int J Environ Res Public Health       Date:  2018-08-28       Impact factor: 3.390

6.  Cotreatment of MSWI Fly Ash and Granulated Lead Smelting Slag Using a Geopolymer System.

Authors:  De-Gang Liu; Yong Ke; Xiao-Bo Min; Yan-Jie Liang; Zhong-Bing Wang; Yuan-Cheng Li; Jiang-Chi Fei; Li-Wei Yao; Hui Xu; Guang-Hua Jiang
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8.  Alternative Method for the Treatment of Hydrometallurgical Arsenic-Calcium Residues: The Immobilization of Arsenic as Scorodite.

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  8 in total

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