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Canadian Metallurgical Quarterly
The Canadian Journal of Metallurgy and Materials Science
Volume 63, 2024 - Issue 2
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Extractive Hydrometallurgy

Kinetic mechanism of selenium leaching from selenium-rich acid sludge in NaOH solution

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Pages 563-575 | Received 18 Oct 2022, Accepted 20 Mar 2023, Published online: 11 Apr 2023

References

  • Yao FY, Guo DW. Inorganic chemistry (Vol. 5). Beijing: Science Press; 1998.
  • Tan ZZ, Mei GG, Li WJ. Metallurgy of manganese. Changsha: Central South University Press; 2004; 345.
  • Wallin E, Malm U, Jarmar T, et al. World record Cu (In, Ga) Se2 based thin film sub module with 17.4% rate. Prog Photovoltaics Res Appl. 2012;20(7):851–854.
  • Jackson P, Hariskos D, Lotter E, et al. New world record rate for Cu (In, Ga) Se2 thin-film solar cells beyond 20%. Prog Photovoltaics Res Appl. 2011;19(7):894–897.
  • Zai X J. Scattered metals. Beijing: Press of University of Science and Technology of China. 2009: 237.
  • Anderson C S, Selenium and Tellurium. 2013 Minerals Yearbook. US Geological Survey. 2015.
  • Mistry HD, Pipkin FB, Redman CWG, et al. Selenium in reproductive health. Am J Obstet Gynecol. 2012;206(1):21–30.
  • Geoffroy N, Demopoulos GP. The elimination of selenium(IV) from aqueous solution by precipitation with sodium sulfide. J Hazard Mater. 2011;185:148–154.
  • Hoffmann J E. Recovering selenium and tellurium from copper refinery slimes. J Miner Mater Soc. 1989;41(7):33–38.
  • Abdollahy M, Shafaei S Z. Optimized leaching conditions for selenium from Sar-Cheshmeh copper anode slimes. Iran J Chem and Chem Eng. 2004;23(2):101–108.
  • Li BL. Pollution characteristics and risk analysis of mercury-containing waste in a zinc smelting enterprise. Annual Scientific and Technical Conference of the Chinese Society of Environmental Sciences, 2017.
  • Chernyshev AA, Petrov GV, Belen KAM, et al. Recycling copper-bearing sludge: status and prospects. Metallurgist. 2009;53(5−6):296–299.
  • Pumure I, Renton J J, Smart R B. Accelerated aqueous leaching of selenium and arsenic from coal associated rock samples with selenium speciation using ultrasound leaching. Environ Geol. 2009;56:985–991.
  • Wang X W, Fan X X, Li Y X. Research on extraction of selenium from acid Mud containing selenium. Hydrometallurgy of China. 2013;32(5):316–318.
  • Lei X, Zhong Y, Wu H G, et al. Separationand recovery of selenium and mercury from complex mercury bearing selenium residue. Nonferr Metals (Extr M. 2017;4:48–51.
  • Chen Y W, Li L, D’ulivo A, et al. Leaching and determination of elemental selenium in sediments—A comparatives tudy. Anal Chim Acta. 2006;577:126–133.
  • Zheng Y J, Chen K K. Selective leaching Se from selenium residue by Na2SO3 solutions and leaching kinetics. Chinese J Nonferr Metals. 2012;22(2):585–591.
  • Dong Z L, Jiang T, Xu Yjk, et al. Comprehensive recoveries of selenium, copper, gold, silver and lead from a copper anode slime with a clean and economical hydrometallurgical process. Chem Eng J. 2020;393:124762.
  • Liu WF, Yang TZ, Zhang DC, et al. Pretreatment of copper anode slime with alkaline pressure oxidative leaching. Int J Miner Process. 2014;28:48–54.
  • Yasin K, Guldem K, Servet T. An investigation of copper and selenium recovery from copper anode slimes. Int J Miner Process. 2013;124:75–82.
  • Peng Y L, Ma Y B, Zhang F Y, et al. Thermodynamic and experimental study on selenium and tellurium separation from platinum and palladium concentrate by oxidative alkaline leaching with hydrogen peroxide. The Chinese J Nonferr Metals. 2017;27(2):430–438.
  • Huang Y, Dou Z, Zhang T, et al. Leaching kinetics of rare earth elements and fluoride from mixed rare earth concentrate after roasting with calcium hydroxide and sodium hydroxide. Hydrometallurgy. 2017;173:15–21.
  • Shalchian H, Khaki J, Babakhani A, et al. An enhanced dissolution rate of molybdenite and variable activation energy. Hydrometallurgy. 2018;175:52–63.
  • Brittan M. Variable activation energy model for leaching kinetics. Int J Miner Process. 1975;2(4):321–331.
  • Ishida M, Wen C. Comparison of kinetic and diffusional models for solid-gas reactions. AIChE J. 1968;14:311–317.
  • Šatava V, Škvára F. Mechanism and kinetics of the decomposition of solids by a thermogravimetric method. J. Am. Ceram. Soc. 1969;52(11):591–595.
  • Ye D, Agnew J, Hang D. Gasification of a south Australian low-rank coal with carbon dioxide and steam: kinetics and reactivity studies. Fuel. 1998;77(11):1209–1219.
  • Vamvuka D, Karouki E, Sfakiotakis S. Gasification of waste biomass chars by carbon dioxide via thermogravimetry. part I: effect of mineral matter. Fuel. 2011;90(3):1120–1127.
  • Alvarez J, Lopez G, Amutio M, et al. Kinetic study of carbon dioxide gasification of rice husk fast pyrolysis char. Energy Fuels. 2015;29(5):3198–3207.
  • Zhang Y, Yao M, Gao S, et al. Reactivity and kinetics for steam gasification of petroleum coke blended with black liquor in a micro fluidized bed. Appl Energy. 2015;160:820–828.
  • Tran K, Bui H, Luengnaruemitchai A, et al. Isothermal and nonisothermal kinetic study on CO2 gasification of torrefied forest residues. Biomass Bioenerg. 2016;91:175–185.
  • Mahinpey N, Gomez A. Review of gasification fundamentals and new findings: reactors, feedstock, and kinetic studies. Chem Eng Sci. 2016;148:14–31.
  • Karagöz Ö, Çopur M, Kocakerim M. Kinetic analysis of retention of SO2 using waste ulexite ore in an aqueous medium. J Hazard Mater. 2018;353:214–226.
  • Hua Z, Jiang E, Ma X. Microwave pretreatment on microalgae: effect on thermogravimetric analysis and kinetic characteristics in chemical looping gasification. Energy Convers Manage. 2018;160:375–383.
  • Kim Y, Seo D, Hwang J. Study of the effect of coal type and particle size onchar–CO2 gasification via gas analysis. Energy Fuels. 2011;25(11):5044–5054.
  • Houzelot V, Ranc B, Laubie B, et al. Agromining of hyperaccumulator biomass: study of leaching kinetics of extraction of nickel, magnesium, potassium, phosphorus, iron, and manganese from Alyssum murale ashes by sulfuric acid. Chem Eng Res Des. 2018;129:1–11.
  • Kishore K. Rapid estimation of the activation energy for the decomposition of a solid using isothermal data. Thermochim Acta. 1977;19(2):226–231.

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