全部 标题 作者
关键词 摘要

OALib Journal期刊
ISSN: 2333-9721
费用:99美元

查看量下载量

相关文章

更多...

Applicability of Gravity Separation Method on the Ashashire Gold Ore Deposit from Benishangul Gumuz Region, Western Ethiopia

DOI: 10.4236/ijnm.2024.112002, PP. 21-31

Keywords: Ore, Gangue, Ashashire, Gravity Method, Gold, Telluride, Concentration, Knelson

Full-Text   Cite this paper   Add to My Lib

Abstract:

The study was conducted to determine the applicability of gravity separation method on the Ashashire gold ore deposit Benishangul gumuz region, western Ethiopia. The Ashashire composite was produced to provide sufficient mass for this study and experiment, including sample preparation, mineralogical analysis of gold and associated elements, gravity concentration, and data interpretation and analysis. During the study, a grind optimization was conducted on the composites sample with varying grind size to evaluate the effect of grind size on gold recovery. The ore was moderately ground to the standard grind size of 80%, passing 106 μm, 75 μm, 53 μm and this nominal size was selected for the preliminary assessment for concentration optimization for this deposit. The gravity testing comprised three-stage concentration using Knelson concentrator. High recovery of gold from the gravity concentrates was achieved from the second gravity concentration. Based on the laboratory experimental result analysis, a grind size of P80 75 μm is selected as optimal size for the Ashashire gold deposit. Increasing the grind size from P80 of 75 μm to 106 μm decreases the recovery rate from 75% to 54%, or decreasing the grind size from P80 of 75 μm to 53 μm decreases the gold recovery rate to 37%. The native gold grain in the ores is mostly associated with quartz and fine gold is closely associated with pyrite. According to analysis of the fire assay, chemical, and mineralogical data, only gold and telluride is commercially valuable elements in the ores. Predominantly gold was occurred in the native form of Au-Te. The sample subjected to gravity separation assayed about 2.6 g/t Au.

References

[1]  Gül, A., Kangal, O., Sirkeci, A.A. and Önal, G. (2010) Beneficiation of the Gold Bearing Ore by Gravity and Flotation. International Journal of Minerals, Metallurgy, and Materialsm, 19, 106-110.
[2]  Norgate, T. and Haque, N. (2012) Using Life Cycle Assessment to Evaluate Some Environmental Impacts of Gold Production. Journal of Cleaner Production, 29, 53-63.
https://doi.org/10.1016/j.jclepro.2012.01.042
[3]  Zhou, J., et al. (2004) Establishing the Process Mineralogy of Gold Ores. SGS Minerals, Technical Bulletin 2004-03.
[4]  Liipo, J. (2003) Characterization of the Mode of Occurrence of Gold in Jokisivu Pilot Feed and Products. Minerals Engineering, 16, 1317-1321.
https://doi.org/10.1016/j.mineng.2003.07.010
[5]  Ogundare, O.D., Adeoye, M.O., Adetunji, A.R. and Adewoye, O.O. (2014) Beneficiation and Characterization of Gold from Itagunmodi Gold Ore by Cyanidation. Journal of Minerals and Materials Characterization and Engineering, 2, 300-307.
https://doi.org/10.4236/jmmce.2014.24035 n
[6]  Martinez, G., Restrepo-Baena, O.J. and Veiga, M.M. (2021) The Myth of Gravity Concentration to Eliminate Mercury Use in Artisanal Gold Mining. The Extractive Industries and Society, 8, 477-485.
https://doi.org/10.1016/j.exis.2021.01.002
[7]  Pulungan, L., Pramusanto, P. and Hermana, F.A. (2019) The Research of Gold Processing from Tailings of Iron Sand Processing from South Kalimantan by Using Amalgamation Methods in West Java. Journal of Physics: Conference Series, 1375, 012047.
https://doi.org/10.1088/1742-6596/1375/1/012047
[8]  Youlton, K.L., Kinnaird, J.A. and Youlton, B.J. (2021) Depositional Environment—The Original Control on Gold Processing. Journal of the Southern African Institute of Mining and Metallurgy, 121, 267-276.
https://doi.org/10.17159/2411-9717/811/2021
[9]  Korte, F., Spiteller, M. and Coulston, F. (2000) The Cyanide Leaching Gold Recovery Process Is a Nonsustainable Technology with Unacceptable Impacts on Ecosystems and Humans: The Disaster in Romania. Ecotoxicology and Environmental Safety, 46, 241-245.
https://doi.org/10.1006/eesa.2000.1938
[10]  Hylander, L.D., et al. (2006) Comparison of Different Gold Recovery Methods with Regard to Pollution Control and Efficiency. CLEANSoil, Air, Water, 35, 52-61.
[11]  Murphy, B., van Zyl, J. and Domingo, G. (2012) Underground Preconcentration by Ore Sorting and Coarse Gravity Separation.
https://www.semanticscholar.org/paper/Underground-Preconcentration-by-Ore-Sorting-and-Murphy-Zyl/8990351cec86d0447819eeae07c60cb749b1e622
[12]  Meza, L.A., Hartmann, W. and Escobar, C. (2004) Recovery of Placer Gold Using the Knelson Concentrator.
https://www.flsmidth.com/en-gb/company/about-us/product-brands
[13]  Egbe, E.A.P., Mudiare, E., Abubakre, O.K. and Ogunbajo, M.I. (2013) Effectiveness of Gravity Separation Methods for the Beneficiation of Baban Tsauni (Nigeria) Lead-Gold Ore. International Journal of Scientific and Research Publications, 3, No. 5.
[14]  Wotruba, H. and Müller, W. (2004) Dichtesortierung von primären golderzen als alternative zur laugung. Sortieren Innovationen und Anwendungen, Vortraege zum 2, Kolloquium Sortieren, Berlin, 169.
[15]  Xiao, Z.X. (2001) Developing Simple Regressions for Predicting Gold Gravity Recovery in Grinding Circuit. Master’s Thesis, McGill University.
[16]  Erkan, E., Ekmekçi, Z. and Altun, E. (2022) Comparison of Flash Flotation and Gravity Separation Performance in a Greenfield Gold Project. Physicochemical Problems of Mineral Processing, 58, Article ID: 146979.
https://doi.org/10.37190/ppmp/146979
[17]  Das, A. and Sarkar, B. (2018) Advanced Gravity Concentration of Fine Particles: A Review. Mineral Processing and Extractive Metallurgy Review, 39, 359-394.
[18]  Jelenc, D. (1966) Mineral Occurrences of Ethiopia. Ministry of Mines.
[19]  United Nation Development Program (UNDP) (1972) Mineral Survey in Two Selected Areas, Ethiopia. Technical Report Vol. I and II, United Nations, New York.
[20]  Metal Mining Agency of Japan (1974) Report on Geological Survey of Wollega Area, Western Ethiopia.
[21]  Chewaka, S. and De Wit, M.J. (1981) Plate Tectonics and Metallogenesis: Some Guidelines to Ethiopian Mineral Deposits. Ethiopian Institute of Geological Surveys.
[22]  (1982) Ethiopian Mineral Resource Development Committee 1982.
[23]  Jembere, M. (1984) Geochemical exploration of Shingu-Shide, Belaute-Dul Gule & Edemgash Area: Wollega Province, 810-351-07. EIGS.
[24]  Ethiopian Institute of Geological Survey (EIGS) (1991/1995) Geology of the Kurmuk and Asosa Area.
[25]  Golden Star Resources Limited, Ethiopia (1996) Dul Gold Exploration Annual Report No. 041-351-43.
[26]  Benzu Gold Mining Plc. (2013) Independent Technical Report of Dul-Menghe and Agusha Liecense, Benshangul Gumuz Region, Ethiopia.
[27]  Bedasa, A. (2014) Geology Geochemistry Genesis of Gold Mineralization in Ashashire Prospect Benishangul-Gumz Region Western Ethiopian.
https://etd.aau.edu.et
[28]  Amane, L. (2016) Geology and Genesis of Gold Mineralization in Kushmagane Area, Assosa Woreda, Western Ethiopia.
https://etd.aau.edu.et
[29]  Yenesew, S. (2020) Determination of Genesis of Orogenic Gold and Sulfide Prospects at Ashashire Western Ethiopia.
https://etd.aau.edu.et

Full-Text

comments powered by Disqus

Contact Us

service@oalib.com

QQ:3279437679

WhatsApp +8615387084133

WeChat 1538708413