Pretreatment of Bituminous Coal By-Products for the Hydrometallurgical Extraction of Rare Earth Elements

被引:6
|
作者
Gupta, Tushar [1 ]
Nawab, Ahmad [2 ]
Honaker, Rick [2 ]
机构
[1] MP Mat Mt Pass Mine, 67750 Bailey Rd, Mt Pass, CA 92366 USA
[2] Univ Kentucky, Dept Min Engn, Lexington, KY 40506 USA
关键词
low-temperature plasma oxidation; high-temperature oxidation; rare earth elements; leaching; roasting; FIRE-CLAY COAL; MINERAL-MATTER; ALASKAN COAL; RECOVERY; DECOMPOSITION; YTTRIUM;
D O I
10.3390/min13050614
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
Low-temperature plasma (LTP) oxidation has been widely used to study the mineralogy of the mineral matter existing in coal sources. The current study investigated the potential of LTP oxidation as a pre-treatment method to improve rare earth element (REE) leachability from coal and its by-products. Representative density-fractionated samples of Baker and Fire Clay coarse refuse seam materials were ground to a top size of 180 mu m and subjected to low-temperature plasma oxidation. Subsequently, the treated samples were leached at 1% w/v solids concentration and 75 degrees C for 5 h using (i) de-ionized (DI) water, (ii) 0.1 mol/L of ammonium sulfate, and (iii) 1.2 mol/L of sulfuric acid. It was determined that LTP treatment improved REE leaching characteristics, especially the leaching of heavy REEs (HREE), existing in the lighter density fractions of the Baker seam coarse refuse material. For instance, the HREE recovery for the 1.6 specific gravity (SG) float fraction increased from 8% to 33% using 0.1 mol/L of ammonium sulfate solution after 32 h of LTP treatment. This finding indicated that HREEs associated with the organic matter were released by the LTP treatment and adsorbed onto the surfaces of highly negative charged mineral matter and was exchanged with ammonium to allow their recovery. Similarly, when using 1.2 mol/L of sulfuric acid, the HREE recovery increased from 23% to 53% for the 1.6 SG float fraction. Interestingly, LTP oxidation did not provide significant improvement in REE recovery from the 2.2 sink density fractions, which was likely due to its lower organic content. No significant benefits were observed when treating the Fire Clay coarse refuse material, which was likely due to the lack of organic affinity and the difficult-to-leach REE minerals associated with the coal source such as monazite, xenotime, and zircon. Conversely, high-temperature oxidation within a temperature range of 600-750 degrees C significantly improved REE leaching characteristics for both coal sources. Improvement in REE recovery was due to decarbonization of the material, clay dehydroxylation and subsequent conversion of liberated REE-bearing minerals into a more leachable form. However, increasing the temperature above 800 degrees C decreased REE recovery due to the conversion of meta-kaolinite into mullite, which is chemically stable.
引用
收藏
页数:16
相关论文
共 50 条
  • [41] Characterization of rare earth elements by XRT sorting products of a South African coal seam
    Akdogan, G.
    Bradshaw, S.
    Dorfling, C.
    Bergmann, C.
    Ghosh, T.
    Campbell, Q.
    INTERNATIONAL JOURNAL OF COAL PREPARATION AND UTILIZATION, 2022, 42 (04) : 1071 - 1087
  • [42] Extraction and Production of Rare Earth Elements from Coal-Seam Bedrock and Caprock
    Gordon, John
    ENERGY TECHNOLOGY 2018: CARBON DIOXIDE MANAGEMENT AND OTHER TECHNOLOGIES, 2018, : 571 - 585
  • [43] Coal and Coal By-Products as Unconventional Lithium Sources: A Review of Occurrence Modes and Hydrometallurgical Strategies for Metal Recovery
    Rudnik, Ewa
    MINERALS, 2024, 14 (08)
  • [44] Major element composition controls rare earth element solubility during leaching of coal fly ash and coal by-products
    Middleton, Andrew
    Park, Dan M.
    Jiao, Yongqin
    Hsu-Kim, Heileen
    INTERNATIONAL JOURNAL OF COAL GEOLOGY, 2020, 227
  • [45] The Occurrence and Concentration of Rare Earth Elements in Acid Mine Drainage and Treatment By-products: Part 1—Initial Survey of the Northern Appalachian Coal Basin
    Christopher R. Vass
    Aaron Noble
    Paul F. Ziemkiewicz
    Mining, Metallurgy & Exploration, 2019, 36 (5) : 903 - 916
  • [46] Thermogravimetric analysis of co-combustion of a bituminous coal and coffee industry by-products
    Garcia, Eduardo
    Ejim, Ikechukwu F.
    Liu, Hao
    THERMOCHIMICA ACTA, 2022, 715
  • [47] Solvent extraction kinetics of rare earth elements
    Gao, JZ
    Peng, B
    Fan, HY
    Kang, JW
    TALANTA, 1996, 43 (10) : 1721 - 1725
  • [48] Extraction Chromatography for Separation of Rare Earth Elements
    Sanku, Meher
    Forsberg, Kerstin
    Svard, Michael
    RARE METAL TECHNOLOGY 2021, 2021, : 155 - 161
  • [49] A biosorption-based approach for selective extraction of rare earth elements from coal byproducts
    Park, Dan
    Middleton, Andrew
    Smith, Ryan
    Deblonde, Gauthier
    Laudal, Dan
    Theaker, Nolan
    Hsu-Kim, Heileen
    Jiao, Yongqin
    SEPARATION AND PURIFICATION TECHNOLOGY, 2020, 241
  • [50] Techno-economic analysis of supercritical extraction of rare earth elements from coal ash
    Das, Saptarshi
    Gaustad, Gabrielle
    Sekar, Ashok
    Williams, Eric
    JOURNAL OF CLEANER PRODUCTION, 2018, 189 : 539 - 551