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Articles

Insight into the kinetic analysis of acid mine drainage treated by carbonate rock

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Pages 393-403 | Received 07 Apr 2022, Accepted 05 Aug 2022, Published online: 18 Aug 2022

References

  • Amiri F, Mousavi SM, Yaghmaei S, et al. Bioleaching kinetics of a spent refinery catalyst using Aspergillus niger at optimal conditions. Biochem Eng J. 2012;67:208–217.
  • Hallberg RO, Granhagen JR, Liljemark A. A fly ash/biosludge dry cover for the mitigation of AMD at the falun mine. Chemie Der Erde-Geochemistry. 2005;65:43–63.
  • Nordstrom DK, Blowes DW, Ptacek CJ. Hydrogeochemistry and microbiology of mine drainage: an update. Appl Geochem. 2015;57:3–16.
  • Ouakibi O, Loqman S, Hakkou R, et al. The potential SSE of phosphatic limestone wastes in the passive treatment of AMD: a laboratory study. Mine Water Environ. 2013;32(4):266–277.
  • Kefeni KK, Msagati TAM, Mamba BB. Acid mine drainage: prevention: treatment options, and resource recovery: a review. J Cleaner Prod. 2017;151:475–493.
  • Moreno N, Querol X, Ayora C, et al. Utilization of zeolites synthesized from coal fly ash for the purification of acid mine waters. Environ Sci Technol. 2001;35(17):3526–3534.
  • Sprynskyy M, Buszewski B, Terzyk AP, et al. Study of the selection mechanism of heavy metal (Pb2+, Cu2+, Ni2+, and Cd2+) adsorption on clinoptilolite. J Colloid Interface Sci. 2006;304(1):21–28.
  • Park I, Tabelin CB, Jeon S, et al. A review of recent strategies for acid mine drainage prevention and mine tailings recycling. Chemosphere. 2019;219:588–606.
  • Taylor, J., Pape, S., Murphy, N. A summary of passive and active treatment technologies for acid and metalliferous drainage (AMD): In: 5th Australian Workshop on Acid Mine Drainage, Fremantle, Australia; 2005.
  • Sheoran AS, Sheoran V. Heavy metal removal mechanism of acid mine drainage in wetlands: a critical review. Miner Eng. 2006;19(2):105–116.
  • Maree JP, Beer M, Strydom WF, et al. Neutralizing coal mine diffluent with limestone to decrease metals and sulphate concentrations. Mine Water Environ. 2004;23(2):81–86.
  • Geng XH, Geng AS, Xiong YQ, et al. Kinetic study of the hydrocarbon generation from marine carbonate source rocks characterization of products of gas and liquid hydrocarbon. Chin Sci Bull. 2006;51(23):7.
  • Genty T, Bussière B, Potvin R, et al. Dissolution of calcitic marble and dolomitic rock in high iron concentrated acid mine drainage: application to anoxic limestone drains. Environ Earth Sci. 2012;66(8):2387–2401.
  • Hammarstrom JM, Sibrell PL, Belkin HE. Characterization of limestone reacted with acid-mine drainage in a pulsed limestone bed treatment system at the Friendship Hill National Historical Site: Pennsylvania, USA. Appl Geochem. 2003;18(11):1705–1721.
  • Zhdanov SV, Kurilenko VV. Quantitative groundwater estimation of Izhora Plateau, Russian Federation using thermodynamic and kinetic methods for carbonate rock interaction in identified karst terrain. Carbonates Evaporites. 2017;32(3):403–414.
  • Zhang XB, Guo J, Hu QH, et al. Effects of Fe-rich acid mine drainage on percolation features and pore structure in carbonate rocks. J Hydrol. 2020;591:125771.
  • Shi YF, Zuo Q, Liu D, et al. Dissolution kinetics of malachite in trichloroacetic acid solution. J Iran Chem Soc. 2022;19(6):2581–2590.
  • Kim CJ, Yoon HS, Chung KW, et al. Leaching kinetics of lanthanum in sulfuric acid from rare earth element (REE) slag. Hydrometallurgy. 2014;146:133–137.
  • Peng SC, Huang CH, Chen TH, et al. Kinetics of acid-dissolution of palygorskite deposited in Jiangsu and Anhui provinces. J Chin Ceram Soc. 2004;32(11):7.
  • Iakovleva E, Makila E, Salonen J, et al. Acid mine drainage (AMD) treatment: neutralization and toxic elements removal with unmodified and modified limestone. Ecol Eng. 2015;81:30–40.
  • Cravotta CA. Size and performance of anoxic limestone drains to neutralize acidic mine drainage. J Environ Qual. 2004;33(3):1164–1164.
  • Molahid VLM, Mohd Kusin F, Madzin Z. Role of multiple substrates (spent mushroom compost: ochre, steel slag, and limestone) in passive remediation of metal-containing acid mine drainage. Environ Technol. 2019;40(10):1323–1336.
  • Muhammad SN, Kusin FM, Zahar MM, et al. Passive bioremediation technology incorporating lignocellulosic spent mushroom compost and limestone for metal- and sulfate-rich acid mine drainage. Environ Technol. 2017;38(16):2003–2012.
  • Mulopo J, Radebe V. Recovery of calcium carbonate from waste gypsum and utilization for remediation of acid mine drainage from coal mines. Water Sci Technol J Int Assoc Water Pollut Res. 2012;66(6):1296.
  • Stumm W, Morgan JJ. Aquatic chemistry: chemical equilibria and rates in natural waters. 3rd ed New York: John Wiley & Sons; 1996. p. 1022.
  • Santomartino S, Webb JAJAG. Estimating the longevity of limestone drains in treating acid mine drainage containing high concentrations of iron. Appl Geochem. 2007;22(11):2344–2361.
  • Carrero S, Pérez-López R, Fernandez-Martinez A, et al. The potential role of aluminium hydroxysulphates in the removal of contaminants in acid mine drainage. Chem Geol. 2015;417:414–423.
  • Kefeni KK, Msagati TM, Maree JP, et al. Metals and sulphate removal from acid mine drainage in two steps via ferrite sludge and barium sulphate formation. Miner Eng. 2015;81:79–87.
  • Merchichi A, Hamou MO, Edahbi M, et al. Passive treatment of acid mine drainage from the Sidi-Kamber mine wastes (Mediterranean coastline, Algeria) using neighbouring phosphate material from the Djebel Onk mine. Sci Total Environ. 2022;807(Pt 3):151002.
  • Choi J, Kwon D, Yang JS, et al. Comparison of Fe and Mn removal using treatment agents for acid mine drainage. Environ Technol. 2009;30(5):445–454.
  • Loekitowati HP, Salni S, Fahma R. Combination of CaCO3 and Ca(OH)2 as agents for treatment acid mine drainage. MATEC Web of Conferences. 2017;101:02004.
  • Rao SM. Comparison of alkaline treatment of lead contaminated wastewater using lime and sodium hydroxide. J Water Resour Prot. 2010;02(3):282–290.
  • Song JY, Shi PY, Wang YG, et al. Kinetics study on the effect of NaCl on the CaSO4 dissolution behavior. IOP Conf Ser: Mater Sci Eng. 2018;301:012154.
  • Zhang SH, Zhang RX, Wu P, et al. Research progress on interactions between carbonate and acid mine drainage and its passive treatment technology. Environ Eng. 2021;39(11):52–61.
  • Balistrieri LS, Seal RR, Piatak NM, et al. Assessing the concentration: speciation, and toxicity of dissolved metals during mixing of acid-mine drainage and ambient river water downstream of the Elizabeth Copper Mine, Vermont, USA. Appl Geochem. 2007;22(5):930–952.
  • Yu JY, Heo B, Choi IK, et al. Apparent solubilities of schwertmannite and ferrihydrite in natural stream waters polluted by mine drainage. Geochim Cosmochim Acta. 1999;63(19-20):3407–3416.
  • Komnitsas K, Xenidis A, Adam KJME. Oxidation of pyrite and arsenopyrite in sulphidic spoils in Lavrion. Miner Eng. 1995;8(12):1443–1454.
  • Liu HP, Yang ZH. Hydrometallurgy leaching technology. 2nd ed. Beijing: Metallurgical Industry Press; 2016.

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