SWS Academic Research eLibraryEarth & Planetary Sciences

Scholarly record

THE INFLUENCE OF MICROWAVES ON THE LEACHING KINETICS OF ZINC FROM BASIC OXYGEN FURNACE DUST

Veres, Jan, Lovas, Michal, Hredzak, Slavomir, Stefusova, Katarina, Kovacova, Milota, Oroszova, Lenka

First published: 2012-06-18https://doi.org/10.5593/sgem2012/s21.v4018View metrics

Publication Impact Profile

PlumX
  • Captures
  • Mendeley - Readers: 2

Publication details

Title
THE INFLUENCE OF MICROWAVES ON THE LEACHING KINETICS OF ZINC FROM BASIC OXYGEN FURNACE DUST
Authors
Veres, Jan, Lovas, Michal, Hredzak, Slavomir, Stefusova, Katarina, Kovacova, Milota, Oroszova, Lenka
Proceedings
SGEM International Multidisciplinary Scientific GeoConference EXPO Proceedings; SGEM2012 12th International Multidisciplinary Scientific GeoConference
Publisher
Stef92 Technology
Year
2012
Pages
777 - 786 pp
ISSN
1314-2704
ISBN
Not available yet
Language
en
Publication type
Conference Paper
References42
  1. . 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.

  2. . Al-Harahsheh, M., Kingman S.: Microwave leaching - a review. Hydrometallurgy 73(3), (2004), 189-203.

  3. . 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.

  4. . 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.

  5. . Coats, A.V., Redfern, J.P.: Kinetic parameters from thermogravimetric data. Nature 201 (1964), 68-69.

  6. . 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

  7. . Haque, K.E.: Microwave energy for mineral treatment processes - a brief review. Int. J. Miner. Process 57 (1999), 1-24.

  8. . 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.

  9. . Hua, Y., Lin, Z., Yan, Z.: Application of microwave irradiation to quick leaching of zinc silicate ore. Minerals Engineering 15 (6), (2002) 451-456.

  10. . 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) .

  11. . 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).

  12. . 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.

  13. . 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 .

  14. . 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.

  15. . 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.

  16. . 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.

  17. . 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.

  18. . 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.

  19. . Xia, D.K., Pickles, C.A.: Microwave caustic leaching of electric arc furnace dust. Minerals Engineering 13 (2000), 79-94.

  20. . 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

  21. . 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

  22. . 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.

  23. . Al-Harahsheh, M., Kingman S.: Microwave leaching - a review. Hydrometallurgy 73(3), (2004), 189-203.

  24. . 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.

  25. . 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.

  26. . Coats, A.V., Redfern, J.P.: Kinetic parameters from thermogravimetric data. Nature 201 (1964), 68-69.

  27. . 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

  28. . Haque, K.E.: Microwave energy for mineral treatment processes - a brief review. Int. J. Miner. Process 57 (1999), 1-24.

  29. . 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.

  30. . Hua, Y., Lin, Z., Yan, Z.: Application of microwave irradiation to quick leaching of zinc silicate ore. Minerals Engineering 15 (6), (2002) 451-456.

  31. . 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) .

  32. . 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).

  33. . 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.

  34. . 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 .

  35. . 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.

  36. . 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.

  37. . 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.

  38. . 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.

  39. . 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.

  40. . Xia, D.K., Pickles, C.A.: Microwave caustic leaching of electric arc furnace dust. Minerals Engineering 13 (2000), 79-94.

  41. . 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

  42. . 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

View or Download full articleAccess options
Full paper accessChoose SWS login, librarian support, or instant article download.

SWS access login

Login as SWS Scientific Committee

Authors and approved SWS contributors will read and export their own linked papers after identity matching by SWS profile, email and SGEM GlobalID.

For librarian assistance: [email protected]

Purchase Instant Access

48-hour online accessComing soon
Online-only accessComing soon
Download the full article in PDF formatEUR 35
  • Article can be downloaded after successful payment.
  • Article may be used according to SWS library access terms.
  • Article cannot be redistributed.
Get full paper

Back to publication list