Antimony production by carbothermic reduction of stibnite in the presence of lime

Experimental work on the carbothermic reduction of Sb2S3 in the presence of lime was carried out in the temperature range of 973 to 1123 K to produce antimony in an environmentally friendly manner. The results demonstrated the technical feasibility of producing antimony by this method witho...

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Main Authors: Padilla R., Chambi L.C., Ruiz M.C.
Format: Article
Language:English
Published: Technical Faculty, Bor 2014-01-01
Series:Journal of Mining and Metallurgy. Section B: Metallurgy
Subjects:
Online Access:http://www.doiserbia.nb.rs/img/doi/1450-5339/2014/1450-53391400003P.pdf
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spelling doaj-7f0f8801f20d460f907d8891d4eaab362020-11-24T22:40:15ZengTechnical Faculty, BorJournal of Mining and Metallurgy. Section B: Metallurgy1450-53392014-01-0150151310.2298/JMMB130604003P1450-53391400003PAntimony production by carbothermic reduction of stibnite in the presence of limePadilla R.0Chambi L.C.1Ruiz M.C.2University of Concepcion, Department of Metallurgical Engineering, Concepción, ChileUniversidad Mayor de San Andres, Department of Metallurgical and Materials Engineering, La Paz, BoliviaUniversity of Concepcion, Department of Metallurgical Engineering, Concepción, ChileExperimental work on the carbothermic reduction of Sb2S3 in the presence of lime was carried out in the temperature range of 973 to 1123 K to produce antimony in an environmentally friendly manner. The results demonstrated the technical feasibility of producing antimony by this method without producing SO2 gas. Complete conversion of Sb2S3 was obtained at 1023 K in about 1000 seconds and at 1123 K in less than 250 seconds using stibnite-carbon-lime mixtures with molar ratios Sb2S3:CaO:C = 1:3:3. It was found that the reduction proceeds through the formation of an intermediate oxide SbO2, which is subsequently reduced by CO(g) to yield antimony metal and CaS. The kinetics of the Sb2S3 reduction was analyzed by using the equation ln(1-X) = -kt. The activation energy was 233 kJ mol-1 in the temperature range of 973 to 1123 K. This value would correspond to an antimony catalyzed carbon oxidation by CO2.http://www.doiserbia.nb.rs/img/doi/1450-5339/2014/1450-53391400003P.pdfantimony sulfidestibnitecarbothermic reductiondirect reduction
collection DOAJ
language English
format Article
sources DOAJ
author Padilla R.
Chambi L.C.
Ruiz M.C.
spellingShingle Padilla R.
Chambi L.C.
Ruiz M.C.
Antimony production by carbothermic reduction of stibnite in the presence of lime
Journal of Mining and Metallurgy. Section B: Metallurgy
antimony sulfide
stibnite
carbothermic reduction
direct reduction
author_facet Padilla R.
Chambi L.C.
Ruiz M.C.
author_sort Padilla R.
title Antimony production by carbothermic reduction of stibnite in the presence of lime
title_short Antimony production by carbothermic reduction of stibnite in the presence of lime
title_full Antimony production by carbothermic reduction of stibnite in the presence of lime
title_fullStr Antimony production by carbothermic reduction of stibnite in the presence of lime
title_full_unstemmed Antimony production by carbothermic reduction of stibnite in the presence of lime
title_sort antimony production by carbothermic reduction of stibnite in the presence of lime
publisher Technical Faculty, Bor
series Journal of Mining and Metallurgy. Section B: Metallurgy
issn 1450-5339
publishDate 2014-01-01
description Experimental work on the carbothermic reduction of Sb2S3 in the presence of lime was carried out in the temperature range of 973 to 1123 K to produce antimony in an environmentally friendly manner. The results demonstrated the technical feasibility of producing antimony by this method without producing SO2 gas. Complete conversion of Sb2S3 was obtained at 1023 K in about 1000 seconds and at 1123 K in less than 250 seconds using stibnite-carbon-lime mixtures with molar ratios Sb2S3:CaO:C = 1:3:3. It was found that the reduction proceeds through the formation of an intermediate oxide SbO2, which is subsequently reduced by CO(g) to yield antimony metal and CaS. The kinetics of the Sb2S3 reduction was analyzed by using the equation ln(1-X) = -kt. The activation energy was 233 kJ mol-1 in the temperature range of 973 to 1123 K. This value would correspond to an antimony catalyzed carbon oxidation by CO2.
topic antimony sulfide
stibnite
carbothermic reduction
direct reduction
url http://www.doiserbia.nb.rs/img/doi/1450-5339/2014/1450-53391400003P.pdf
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