Characterisation of Zinc Plant, Cold-Purification Filter Cake and Leaching of Indium by Aqueous Sulphuric Acid Solution

The filter cake, generated from the cold-purification stage in a zinc electrowinning plant and considered as a hazardous waste containing heavy metals, was characterized for its chemical and mineralogical compositions by inductively couple plasma – optical emission spectroscopy (ICP-OES), X-rays dif...

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Main Authors: Sankum Nusen, Noppadol Yottawee, Chu Yong Cheng, Torranin Chairuangsri
Language:English
Published: Science Faculty of Chiang Mai University 2019
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Online Access:http://it.science.cmu.ac.th/ejournal/dl.php?journal_id=5963
http://cmuir.cmu.ac.th/jspui/handle/6653943832/66149
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spelling th-cmuir.6653943832-661492019-08-21T09:18:22Z Characterisation of Zinc Plant, Cold-Purification Filter Cake and Leaching of Indium by Aqueous Sulphuric Acid Solution Sankum Nusen Noppadol Yottawee Chu Yong Cheng Torranin Chairuangsri hazardous waste zinc plant filter cake zinc plant residue leaching indium The filter cake, generated from the cold-purification stage in a zinc electrowinning plant and considered as a hazardous waste containing heavy metals, was characterized for its chemical and mineralogical compositions by inductively couple plasma – optical emission spectroscopy (ICP-OES), X-rays diffractometry (XRD) and scanning electron microscopy – energy dispersive X-rays spectrometry (SEM-EDS). Leaching of indium from the filter cake was consequently studied using aqueous sulphuric acid solution as leachant. Leaching parameters including temperature, time, solid-to-liquid ratio and stirring speed have been investigated and ICP-OES was used to determine the metal content in the leachate. Dissolution kinetics was studied using 1 M aqueous sulphuric acid solution, the temperature range of 40-80 ºC, and the time up to 360 min, and it was found to be controlled mainly by diffusion through porous product following the spherical shrinking-core model. The optimum leaching temperature and time for indium is 40 ºC and 90 min, respectively. The solid-to-liquid ratio higher than 1/4 g/ml is ineffective and the solid-to-liquid ratio of 1/12 g/ml was the optimum. Increasing the stirring speed over 700 rpm had little effects on indium dissolution, hence the stirring speed of 700 rpm was considered as the optimum. Copper and lead were hardly leached out by sulphuric acid solution. The results indicated that the cold-purification filter cake in the zinc electrowinning plant can be an intermediate source of indium, and that recovery of indium from this hazardous waste is important from the environmental point of view. 2019-08-21T09:18:22Z 2019-08-21T09:18:22Z 2015 Chiang Mai Journal of Science 42, 3 (July 2015), 718 - 729 0125-2526 http://it.science.cmu.ac.th/ejournal/dl.php?journal_id=5963 http://cmuir.cmu.ac.th/jspui/handle/6653943832/66149 Eng Science Faculty of Chiang Mai University
institution Chiang Mai University
building Chiang Mai University Library
country Thailand
collection CMU Intellectual Repository
language English
topic hazardous waste
zinc plant filter cake
zinc plant residue
leaching
indium
spellingShingle hazardous waste
zinc plant filter cake
zinc plant residue
leaching
indium
Sankum Nusen
Noppadol Yottawee
Chu Yong Cheng
Torranin Chairuangsri
Characterisation of Zinc Plant, Cold-Purification Filter Cake and Leaching of Indium by Aqueous Sulphuric Acid Solution
description The filter cake, generated from the cold-purification stage in a zinc electrowinning plant and considered as a hazardous waste containing heavy metals, was characterized for its chemical and mineralogical compositions by inductively couple plasma – optical emission spectroscopy (ICP-OES), X-rays diffractometry (XRD) and scanning electron microscopy – energy dispersive X-rays spectrometry (SEM-EDS). Leaching of indium from the filter cake was consequently studied using aqueous sulphuric acid solution as leachant. Leaching parameters including temperature, time, solid-to-liquid ratio and stirring speed have been investigated and ICP-OES was used to determine the metal content in the leachate. Dissolution kinetics was studied using 1 M aqueous sulphuric acid solution, the temperature range of 40-80 ºC, and the time up to 360 min, and it was found to be controlled mainly by diffusion through porous product following the spherical shrinking-core model. The optimum leaching temperature and time for indium is 40 ºC and 90 min, respectively. The solid-to-liquid ratio higher than 1/4 g/ml is ineffective and the solid-to-liquid ratio of 1/12 g/ml was the optimum. Increasing the stirring speed over 700 rpm had little effects on indium dissolution, hence the stirring speed of 700 rpm was considered as the optimum. Copper and lead were hardly leached out by sulphuric acid solution. The results indicated that the cold-purification filter cake in the zinc electrowinning plant can be an intermediate source of indium, and that recovery of indium from this hazardous waste is important from the environmental point of view.
author Sankum Nusen
Noppadol Yottawee
Chu Yong Cheng
Torranin Chairuangsri
author_facet Sankum Nusen
Noppadol Yottawee
Chu Yong Cheng
Torranin Chairuangsri
author_sort Sankum Nusen
title Characterisation of Zinc Plant, Cold-Purification Filter Cake and Leaching of Indium by Aqueous Sulphuric Acid Solution
title_short Characterisation of Zinc Plant, Cold-Purification Filter Cake and Leaching of Indium by Aqueous Sulphuric Acid Solution
title_full Characterisation of Zinc Plant, Cold-Purification Filter Cake and Leaching of Indium by Aqueous Sulphuric Acid Solution
title_fullStr Characterisation of Zinc Plant, Cold-Purification Filter Cake and Leaching of Indium by Aqueous Sulphuric Acid Solution
title_full_unstemmed Characterisation of Zinc Plant, Cold-Purification Filter Cake and Leaching of Indium by Aqueous Sulphuric Acid Solution
title_sort characterisation of zinc plant, cold-purification filter cake and leaching of indium by aqueous sulphuric acid solution
publisher Science Faculty of Chiang Mai University
publishDate 2019
url http://it.science.cmu.ac.th/ejournal/dl.php?journal_id=5963
http://cmuir.cmu.ac.th/jspui/handle/6653943832/66149
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