Nickel recovery in ferronickel concentrate by green selective reduction of nickel laterite

被引:2
作者
Sari, Yuliana [1 ,2 ]
Manaf, Azwar [2 ]
Astuti, Widi [1 ]
Nurjaman, Fajar [1 ]
Susanti, Diah [3 ]
Sipahutar, Wahyu Solafide [4 ]
Bahfie, Fathan [1 ]
机构
[1] Natl Res & Innovat Agcy BRIN, Res Ctr Min Technol, Lampung, Indonesia
[2] Univ Indonesia, Fac Math & Nat Sci, Dept Phys, Postgrad Program Mat Sci Study, Depok 16424, Indonesia
[3] Inst Teknol Sepuluh Nopember, Fac Ind Technol & Syst Engn, Met & Mat Engn Dept, Bldg MT 2nd Floor,Kampus ITS Sukolilo, Surabaya 60111, East Java, Indonesia
[4] Inst Teknol Sumatra, Mat Dept, Jalan Terusan Ryacudu, Lampung 35365, Indonesia
来源
ENGINEERING SCIENCE AND TECHNOLOGY-AN INTERNATIONAL JOURNAL-JESTECH | 2024年 / 57卷
关键词
Biomass reductant; Ferronickel; Nickel laterite ore; Selective reduction; LIFE-CYCLE ASSESSMENT; CARBOTHERMIC REDUCTION; SODIUM-SULFATE; ORE; EXTRACTION; CHARCOAL; BIOMASS; TRANSFORMATION; EMISSIONS; FE;
D O I
10.1016/j.jestch.2024.101798
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Nickel laterite is typically processed into ferronickel through a pyrometallurgical method involving high temperatures and the use of fossil fuels, such as coals or cokes. Unfortunately, this process releases emissions like CO2, 2 , SO2, 2 , and NOx x into the environment. This study explores a sustainable approach for nickel laterite processing by investigating low-temperature selective reduction using various biomass reductants. The materials, including saprolitic nickel ore and biomass types (palm kernel shell charcoal or PSC, lamtoro wood charcoal, coconut shell charcoal, and rubber wood charcoal), undergo pelletization, selective reduction at 1150 degrees C, and wet magnetic separation. PSC biomass is superior to other biomass due to its 217.2 m2/g 2 /g specific surface area value. Optimal conditions were achieved using 0.3 stoichiometric PSC, along with the addition of 10 wt% of sodium sulfate as an additive. This has led to a nickel mass fraction of 26.0 wt% and a recovery rate of 27.4 %.
引用
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页数:11
相关论文
共 56 条
[1]   Reduction of low grade iron ore pellet using palm kernel shell [J].
Abd Rashid, Rusila Zamani ;
Salleh, Hamzah Mohd ;
Ani, Mohd Hanafi ;
Yunus, Nurul Azhani ;
Akiyama, Tomohiro ;
Purwanto, Hadi .
RENEWABLE ENERGY, 2014, 63 :617-623
[2]   Separation and recovery of cobalt and nickel from end of life products via solvent extraction technique: A review [J].
Alvial-Hein, Guillermo ;
Mahandra, Harshit ;
Ghahreman, Ahmad .
JOURNAL OF CLEANER PRODUCTION, 2021, 297
[3]  
[Anonymous], 2009, MINERAL COMMODITY SU, DOI DOI 10.3133/MCS2022
[4]   Biomass for a sustainable bioeconomy: An overview of world biomass production and utilization [J].
Antar, Mohammed ;
Lyu, Dongmei ;
Nazari, Mahtab ;
Shah, Ateeq ;
Zhou, Xiaomin ;
Smith, Donald L. .
RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2021, 139
[5]   Life cycle assessment of ferronickel production in Greece [J].
Bartzas, Georgios ;
Komnitsas, Kostas .
RESOURCES CONSERVATION AND RECYCLING, 2015, 105 :113-122
[6]   Preparation of charcoal briquette from palm kernel shells: case study in Ghana [J].
Bonsu, Betty Osei ;
Takase, Mohammed ;
Mantey, Jones .
HELIYON, 2020, 6 (10)
[7]  
Cao C., 2016, Int. J. Nonferrous Metall., V5, P9
[8]   The Effect of Bio-Coal on the Carbothermic Reduction of Laterite Ores [J].
Chen, Guan-Jhou ;
Hwang, Weng-Sing ;
Liu, Shih-Hsien ;
Shiau, Jia-Shyan .
MATERIALS TRANSACTIONS, 2015, 56 (04) :550-555
[9]   Determination of the specific surface areas of non-porous and macroporous carbons [J].
Choma, J ;
Jaroniec, M .
ADSORPTION SCIENCE & TECHNOLOGY, 2001, 19 (09) :765-776
[10]  
Chrismast G., 2024, JAmbura Geosci Rev., V6, P1, DOI [10.37905/jgeosrev.v6i1.21119, DOI 10.37905/JGEOSREV.V6I1.21119]