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Process mineralogy of Bayan Obo rare earth ore by MLA

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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
The maximum recovery of rare earth resource from the Bayan Obo ore deposit is a difficult task, especially without the sufficient data of mineralogy. In this paper the mineralogy of Bayan Obo ore deposit by comprehensively research with the application of mineral liberation analyzer (MLA) is reported. The MLA was applied to quantitatively analyze the complicated element/mineral compositions, the REE occurrence, the size distribution and the degree of liberation of the Bayan Obo ore. Mineralogical analysis of the rare earth ore has shown that REEs are present mainly as bastnaesite and monazite-(Ce) to a small extent as parisite-(Ce). 5.85% of the REEs, 34.99% of iron and 0.12% of niobium occur in the ore sample. There are 76.99% of iron occurred in hematite and the remaining iron is mainly distributed in magnetite and goethite. The degree of liberation of bastnaesite and monazite(Ce) was 79.65% and 75.67% respectively when the grinding fineness was 83.57% passing 75 μm sieves. Un-liberated or partly liberated rare earth minerals are associated closely mainly with other rare earth minerals and gangues. These theoretical data could be employed to further comprehensively utilize the rare earth ore.
Słowa kluczowe
Rocznik
Strony
737--745
Opis fizyczny
Bibliogr. 35 poz., rys., tab.
Twórcy
autor
  • School of Minerals Processing and Bioengineering, Central South University, Changsha, 410083, Hunan province, China
autor
  • Key Laboratory of Green Chemical Process of Ministry of Education, School of Xingfa Mining Engineering, Wuhan Institute of Technology, Wuhan, 430073, Hubei province, China
autor
  • School of Chemistry and Chemical Engineering, Yan’an University, Yan’an 716000, Shaanxi province, China
  • Hubei Weichen Environment Technology Co.,Ltd ., Huangshi, 435000, Hubei province, China
autor
  • Key Laboratory of Green Chemical Process of Ministry of Education, School of Xingfa Mining Engineering, Wuhan Institute of Technology, Wuhan, 430073, Hubei province, China
autor
  • Key Laboratory of Novel Reactor and Green Chemical Technology of Hubei Province, School of Chemical Engineering and Pharmacy, Wuhan Institute of Technology, Wuhan, 430205, Hubei province, China
autor
  • Key Laboratory of Green Chemical Process of Ministry of Education, School of Xingfa Mining Engineering, Wuhan Institute of Technology, Wuhan, 430073, Hubei province, China
Bibliografia
  • ABDOU, A. A., ABDELFATTAH, N. A., HANY LOTFY WEHEISH. (2019). Development of a procedure for spectrophotometric determination of Pr(III) from rare earth elements (REEs) concentrate. SN Applied Sciences, 1(5), 479.
  • ARRAMBIDE, C., ARRACHART, G., BERTHALON, S., WEHBIE, M., PELLET-ROSTAING, S. (2019). Extraction and recovery of rare earths by chelating phenolic copolymers bearing diglycolamic acid or diglycolamide moieties. Reactive & Functional Polymers, 142, 147-158.
  • CARDOSO, C. E. D., ALMEIDA, J. C., LOPES, C. B., TRINDADE, T., VALE, C., PEREIRA, E. (2019). Recovery of Rare Earth Elements by Carbon-Based Nanomaterials-A Review. Nanomaterials, 9(6).
  • CELEP, O., YAZICI, E. Y., ALTINKAYA, P., DEVECI, H. (2019). Characterization of a refractory arsenical silver ore by mineral liberation analysis (MLA) and diagnostic leaching. Hydrometallurgy, 189.
  • CHE, L.-P., YU, Y.-F., PANG, J.-X., YUAN, J.-Z., WANG, X.-T. (2004). Synthesis, properties and role mechanism of hydroximic acid as collectors of RE mineral flotation. Chinese Rare Earths, 25(6), 74-79+83.
  • CHEN, H.-C. (2014). Beneficiation study on Bayan obo rare earth ore. Chinese Rare Earths, 35(4), 78-83.
  • CHEN, Z., XU, J., SANG, F., WANG, Y. (2018). Efficient extraction and stripping of Nd(III), Eu(III) and Er(III) by membrane dispersion micro-extractors. Journal of Rare Earths, 36(8), 851-856.
  • CHI, R.-A., WANG, D.-Z. (2014). Rare earth mineral processing. Beijing: Science Press.
  • FANDRICH, R., GU, Y., BURROWS, D., MOELLER, K. (2007). Modern SEM-based mineral liberation analysis. International Journal of Mineral Processing, 84(1), 310-320.
  • FU, Y., LI, Z., ZHOU, A., XIONG, S., YANG, C. (2019). Evaluation of coal component liberation upon impact breakage by MLA. Fuel, 258.
  • HE, Z., ZHANG, Z., CHI, R. A., XU, Z., YU, J., WU, M., BAI, R. (2017). Leaching hydrodynamics of weathered elutiondeposited rare earth ore with ammonium salts solution. Journal of Rare Earths, 35(8), 824-830.
  • HU, L., LI, Y.-K., WU, Z.-J., BAI, Y., WANG, A.-J. (2019). Two metasomatic events recorded in apatite from the ore-hosting dolomite marble and implications for genesis of the giant Bayan Obo REE deposit, Inner Mongolia, Northern China. Journal of Asian Earth Sciences, 172, 56-65.
  • KOVALENKO, O. V., BAULIN, V. E., BAULIN, D. V., TSIVADZE, A. Y. (2019). Separation of La(III), Eu(III), and Ho(III) with Sorbents Impregnated by Mixtures of Acidic Phosphoryl Podands and Amines in Nitric Acid Solutions. Solvent Extraction and Ion Exchange, 37(5), 392-409.
  • LI, L. Z., YANG, X. (2016). Chapter 9 - China’s Rare Earth Resources, Mineralogy, and Beneficiation. In I. BORGES DE LIMA & W. LEAL FILHO (Eds.), Rare Earths Industry (pp. 139-150). Boston: Elsevier
  • LI, M., GAO, K., ZHANG, D., DUAN, H., MA, L., HUANG, L. (2018). The influence of temperature on rare earth flotation with naphthyl hydroxamic acid. Journal of Rare Earths, 36(1), 99-107.
  • LIU, X., ZHOU, F., CHI, R. A., FENG, J., DING, Y., LIU, Q. (2019). Preparation of Modified Montmorillonite and Its Application to Rare Earth Adsorption. Minerals, 9(12).
  • MEHMOOD, M. (2018). Rare Earth Elements- A Review. Journal of Ecology & Natural Resources, 2(2), 000128.
  • REN, Y., YANG, X., WANG, S., ÖZTüRK, H. (2019). Mineralogical and geochemical study of apatite and dolomite from the Bayan Obo giant Fe-REE-Nb deposit in Inner Mongolia: New evidences for genesis. Ore Geology Reviews, 109, 381- 406.
  • SCHULZ, B., MERKER, G., GUTZMER, J. (2019). Automated SEM Mineral Liberation Analysis (MLA) with Generically Labelled EDX Spectra in the Mineral Processing of Rare Earth Element Ores. Minerals, 9(9).
  • SMITH, M. P., MOORE, K., KAVECSáNSZKI, D., FINCH, A. A., KYNICKY, J., WALL, F. (2016). From mantle to critical zone: A review of large and giant sized deposits of the rare earth elements. Geoscience Frontiers, 7(3), 315-334.
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  • WANG, J., CAO, Z., LI, J., LI, B., CHENG, J., LIU, Z. (2013). Optimization of Floatation Reagents for Rare Earth Ore in Dressing Plant of Bayan Obo Rare Earth Ore. Metal Mine(11), 74-76+80.
  • WANG, K., FANG, A., ZHANG, J., YU, L., DONG, C., ZAN, J., HAO, M., HU, F. (2019). Genetic relationship between fenitized ores and hosting dolomite carbonatite of the Bayan Obo REE deposit, Inner Mongolia, China. Journal of Asian Earth Sciences, 174, 189-204.
  • WANG, S., LIU, S., ZHANG, J., CAO, Y. (2019). Highly fluorescent nitrogen-doped carbon dots for the determination and the differentiation of the rare earth element ions. Talanta, 198, 501-509.
  • WENG, Z., JOWITT, S. M., MUDD, G. M., HAQUE, N. (2015). A Detailed Assessment of Global Rare Earth Element Resources: Opportunities and Challenges. Economic Geology, 110(8), 1925-1952.
  • WU, C., ZHOU, Z., ZUZA, A. V., WANG, G., LIU, C., JIANG, T. (2018). A 1.9-Ga Melange Along the Northern Margin of the North China Craton: Implications for the Assembly of Columbia Supercontinent. Tectonics, 37(10), 3610-3646.
  • WU, X., ZHOU, F., FENG, J., LIU, X., ZHANG, Z., CHI, R. A. (2019). Direct reuse of rare earth oxalate precipitation mother liquor for rare earth leaching. Physicochemical Problems of Mineral Processing, 55(3), 760-769.
  • XU, C., ZHONG, C., LYU, R., RUAN, Y., ZHANG, Z., CHI, R. A. (2019). Process mineralogy of Weishan rare earth ore by MLA. Journal of Rare Earths, 37(3), 334-338.
  • YANG, X., SATUR, J. V., SANEMATSU, K., LAUKKANEN, J., SAASTAMOINEN, T. (2015). Beneficiation studies of a complex REE ore. Minerals Engineering, 71, 55-64.
  • YU, X.-L., BAI, L., WANG, Q.-C., LIU, J., CHI, M.-Y., WANG, Z.-C. (2012). Recovery of Rare Earths, Niobium, and Thorium from the Tailings of Giant Bayan Obo Ore in China. Metallurgical and Materials Transactions B, 43(3), 485-493.
  • YU, Y., CHEN, Q. (1992). Comprehensive recovery of rare earths from Bayan Obo low and medium-grade oxide ores using a combined flowsheet of low- and high-intensity magnetic separation and flotation. Mining and Metallurgical Engineering, 12(1), 58-61.
  • ZHANG, J. (2005). Present situation and prospect of ore dressing technology in dealing with the Baiyunebointer grown ores. Science & Technology of Baotou Steel(Group) Corporation, 31(4), 1-5.
  • ZHANG, T.-Z., WANG, J.-Y., LI, B.-W., LIU, M.-B., ZHANG, X.-F. (2015). Distribution and association of REE, Nb and Th in Bayan obo ore. Chinese Rare Earths, 36(5), 87-91.
  • ZHANG, Z., SUN, N., HE, Z., CHI, R. A. (2018). Local concentration of middle and heavy rare earth elements in the col on the weathered crust elution-deposited rare earth ores. Journal of Rare Earths, 36(5), 552-558.
  • ZHOU, F., LIU, Q., FENG, J., SU, J., LIU, X., CHI, R. A. (2019). Role of initial moisture content on the leaching process of weathered crust elution-deposited rare earth ores. Separation and Purification Technology, 217, 24-30.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-f088a9c3-804b-4687-a7f9-4c8ebd5ee4c4
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