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THE INFLUENCE OF MICROWAVES ON THE LEACHING KINETICS OF ZINC FROM BASIC OXYGEN FURNACE DUST
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References42
. Al-Harahsheh, M., Kingman, S.: The influence of microwaves on the leaching of sphalerite in ferric chloride. Chemical Engineering and Processing: Process Intensification 46 (2007), 883-888.
. Al-Harahsheh, M., Kingman S.: Microwave leaching - a review. Hydrometallurgy 73(3), (2004), 189-203.
. Chen, H.J., Lai, K.M.: Methods for determining the kinetics parameters from nonisothermal thermogravimetry, J. of Chem. Eng. of Japan, 37(9), (2004), 1172- 1178.
. Ebrahimi-Kahrizsangi, R., Abbasi, M.H.: Evaluation of reliability of Coats- Redfern method for kinetic analysis of non-isothermal TGA. Trans. Nonferrous Met. Soc. China 18 (2008), 217-221.
. Coats, A.V., Redfern, J.P.: Kinetic parameters from thermogravimetric data. Nature 201 (1964), 68-69.
. Gao, X., Chen, D., Dollimore, D.: The correlation between the value of α at the maximum reaction rate and the reaction mechanisms: A theoretical study. Thermochimica Acta 223 (1993), 75-82. SGEM2012 - DOI: 10.5593/sgem2012 www.sgem.org Recycling
. Haque, K.E.: Microwave energy for mineral treatment processes - a brief review. Int. J. Miner. Process 57 (1999), 1-24.
. Hoang Trung, Z., Kukurugya, F., Taká čová, Z., Orá č, D., Laubertová, M., Miškufova, A., Havlík, T.: Acidic leaching both of zinc and iron from basic oxygen furnace sludge. Journal of Hazardous Materials 192 (2011) 1100-1107.
. Hua, Y., Lin, Z., Yan, Z.: Application of microwave irradiation to quick leaching of zinc silicate ore. Minerals Engineering 15 (6), (2002) 451-456.
. Kuo, C.Y., Wu, C.H., Lo S.L.: Leaching efficiency of copper from industrial sludge with traditional acid extraction (T AE) and microwave assisted treatment (MAT). Journal of Environmental Science and Health - Part A - Toxic/Hazardous Substances and Environmental Engineering 40 (2005), 2203-2214, (2005a) .
. Kuo, C.Y., Wu, C.H., Lo, S.L.: Removal of copper from industrial sludge by traditional and microwave acid extraction. Journal of Hazardous Materials B 120 (2005), 249-256, (2005b).
. Machado, G.M.S.J., Brehm, F.A., Moraes, C.A.M., dos Santos, C.A. Vilela, A.C.F., Cunha, J.B.M.: Chemical, Physical, Structural and Morphological characterization of the electric arc furnace dust. Journal of Hazardous Materials 136 (3), (2006), 953-960.
. Peng, J., Liu, CH.: Kinetics of sphalerite leached by FeCl 3 in microwave field. The Chinese Journal of Nonferrous Metals 2(1) (1992), 46-49 .
. Perez-Cid, B., Lavilla, I., Bendicho, C.: Application of microwave extraction for partitioning of heavy metals in sewage sludge. Anal. Chim. Acta 378 (1999), 201- 210.
. Vereš, J., Lovás, M., Jakabský, Š., Hredzák, S.: Non-isothermal microwave leaching kinetics of zinc removal from basic oxygen furnace dust, Acta Montanistica Slovaca, 15(3), (2010), 204-211.
. Vereš, J., Jakabský, Š., Lovás, M.: Zinc recovery from iron and steel making wastes by conventional and microwave assisted leaching, Acta Montanistica Slovaca 16 (2011) 185-191.
. Vyazovkin, S., Wight, C.A.: Isothermal and non-isothermal kinetics of thermally stimulated reactions of solids. International Reviews in Physical Chemistry 17 (3) (1998), 407-433.
. Vyazovkin, S., Wight, C.A.: Model-free and model fitting approaches to kinetic analysis of isothermal and nonisothermal data. Termochinica Acta 340-341 (1999), 53-68.
. Xia, D.K., Pickles, C.A.: Microwave caustic leaching of electric arc furnace dust. Minerals Engineering 13 (2000), 79-94.
. Xia, H., Peng, J., Niu, H., Huang, M., Zhang, Z., Zhang, Z., Huang, M.: Non- isothermal microwave leaching kinetics and absorption characteristics of primary titanium-rich materials. Trans. Nonferrous Met. Soc. China 20 (2010), 721-726. SGEM2012 - DOI: 10.5593/sgem2012 www.sgem.org 12th International Multidisciplinary Scientific GeoConference SGEM 2012
. Zhai, X.J., Fu, Y., Zhang, X., Ma, L.Z., Xi e, F.: Intensification of sulphation and pressure acid leaching of nickel laterite by microwave radiation. Hydrometallurgy 99 (3/4), (2009), 189-193. SGEM2012 - DOI: 10.5593/sgem2012 www.sgem.org
. Al-Harahsheh, M., Kingman, S.: The influence of microwaves on the leaching of sphalerite in ferric chloride. Chemical Engineering and Processing: Process Intensification 46 (2007), 883-888.
. Al-Harahsheh, M., Kingman S.: Microwave leaching - a review. Hydrometallurgy 73(3), (2004), 189-203.
. Chen, H.J., Lai, K.M.: Methods for determining the kinetics parameters from nonisothermal thermogravimetry, J. of Chem. Eng. of Japan, 37(9), (2004), 1172- 1178.
. Ebrahimi-Kahrizsangi, R., Abbasi, M.H.: Evaluation of reliability of Coats- Redfern method for kinetic analysis of non-isothermal TGA. Trans. Nonferrous Met. Soc. China 18 (2008), 217-221.
. Coats, A.V., Redfern, J.P.: Kinetic parameters from thermogravimetric data. Nature 201 (1964), 68-69.
. Gao, X., Chen, D., Dollimore, D.: The correlation between the value of α at the maximum reaction rate and the reaction mechanisms: A theoretical study. Thermochimica Acta 223 (1993), 75-82. SGEM2012 - DOI: 10.5593/sgem2012 www.sgem.org Recycling
. Haque, K.E.: Microwave energy for mineral treatment processes - a brief review. Int. J. Miner. Process 57 (1999), 1-24.
. Hoang Trung, Z., Kukurugya, F., Taká čová, Z., Orá č, D., Laubertová, M., Miškufova, A., Havlík, T.: Acidic leaching both of zinc and iron from basic oxygen furnace sludge. Journal of Hazardous Materials 192 (2011) 1100-1107.
. Hua, Y., Lin, Z., Yan, Z.: Application of microwave irradiation to quick leaching of zinc silicate ore. Minerals Engineering 15 (6), (2002) 451-456.
. Kuo, C.Y., Wu, C.H., Lo S.L.: Leaching efficiency of copper from industrial sludge with traditional acid extraction (T AE) and microwave assisted treatment (MAT). Journal of Environmental Science and Health - Part A - Toxic/Hazardous Substances and Environmental Engineering 40 (2005), 2203-2214, (2005a) .
. Kuo, C.Y., Wu, C.H., Lo, S.L.: Removal of copper from industrial sludge by traditional and microwave acid extraction. Journal of Hazardous Materials B 120 (2005), 249-256, (2005b).
. Machado, G.M.S.J., Brehm, F.A., Moraes, C.A.M., dos Santos, C.A. Vilela, A.C.F., Cunha, J.B.M.: Chemical, Physical, Structural and Morphological characterization of the electric arc furnace dust. Journal of Hazardous Materials 136 (3), (2006), 953-960.
. Peng, J., Liu, CH.: Kinetics of sphalerite leached by FeCl 3 in microwave field. The Chinese Journal of Nonferrous Metals 2(1) (1992), 46-49 .
. Perez-Cid, B., Lavilla, I., Bendicho, C.: Application of microwave extraction for partitioning of heavy metals in sewage sludge. Anal. Chim. Acta 378 (1999), 201- 210.
. Vereš, J., Lovás, M., Jakabský, Š., Hredzák, S.: Non-isothermal microwave leaching kinetics of zinc removal from basic oxygen furnace dust, Acta Montanistica Slovaca, 15(3), (2010), 204-211.
. Vereš, J., Jakabský, Š., Lovás, M.: Zinc recovery from iron and steel making wastes by conventional and microwave assisted leaching, Acta Montanistica Slovaca 16 (2011) 185-191.
. Vyazovkin, S., Wight, C.A.: Isothermal and non-isothermal kinetics of thermally stimulated reactions of solids. International Reviews in Physical Chemistry 17 (3) (1998), 407-433.
. Vyazovkin, S., Wight, C.A.: Model-free and model fitting approaches to kinetic analysis of isothermal and nonisothermal data. Termochinica Acta 340-341 (1999), 53-68.
. Xia, D.K., Pickles, C.A.: Microwave caustic leaching of electric arc furnace dust. Minerals Engineering 13 (2000), 79-94.
. Xia, H., Peng, J., Niu, H., Huang, M., Zhang, Z., Zhang, Z., Huang, M.: Non- isothermal microwave leaching kinetics and absorption characteristics of primary titanium-rich materials. Trans. Nonferrous Met. Soc. China 20 (2010), 721-726. SGEM2012 - DOI: 10.5593/sgem2012 www.sgem.org 12th International Multidisciplinary Scientific GeoConference SGEM 2012
. Zhai, X.J., Fu, Y., Zhang, X., Ma, L.Z., Xi e, F.: Intensification of sulphation and pressure acid leaching of nickel laterite by microwave radiation. Hydrometallurgy 99 (3/4), (2009), 189-193. SGEM2012 - DOI: 10.5593/sgem2012 www.sgem.org
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