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Hydrometallurgy

  • Annual Review: Metallurgical Processes
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References

  1. Kuhn, M. C., “Hydrometallurgy,” Min Eng, SME-AIME, February, 1977, pp. 79–82.

    Google Scholar 

  2. Wadsworth, M. E., “Hydrometallurgy,” J. of Metals, TMS-AIME, March, 1977, pp. 8–13.

    Google Scholar 

  3. Shock, D’Arcy A., “Solution Mining,” Min Eng, SME-AIME, February, 1977, pp. 46–48.

    Google Scholar 

  4. Herbert, I. C., “Extractive Metallurgy,” Mining Annual Review, June 1977, pp. 269–285.

    Google Scholar 

  5. Huggins, D. A. and McAndrew, R. T., “Recent Developments of Hydrometallurgy,” CIM Bull. Vol. 70, No. 780, April, 1977, pp. 146–149.

    Google Scholar 

  6. “ISEC ’77,” International Solvent Extraction Conference, Chemistry and Industry, Vol. 19, November 1977, pp. 911–916.

  7. “Sherritt-Cominco Process for Copper Ores Ready for Commercial Use by the Industry.” The Northern Miner, April 1977, B3.

  8. “New Copper Process from Cyprus is Billed as «Technological Breakthrough»,” EMJ, Vol. 178, No. 10, 1977, p. 33.

  9. “Inco Inaugurates Laterite Nickel Project on Indonesia’s Sulawesi Island”, EMJ, Vol. 178, No. 5, pp. 23–24.

  10. Hoppe, R. W., “Amax’s Port Nickel Refines the Only Pure Nickel in the U.S.,” EMJ, Vol. 178, No. 5, pp. 76–79.

  11. Hoppe, R. W. “Cuba: Planning Growth in Nickel,” EMJ, Vol. 178, No. 5, pp. 123–126.

  12. Hopkins, W. R., “Anamax Oxide Plant: a new U.S. Dimension in Solvent Extraction.” EMJ, Vol. 178, No. 2, pp. 56–64.

  13. Power, L. F. and Geiger, G. H., “The Application of the Reduction Roast-Ammoniacal Ammonium Carbonate Leach to Nickel Laterites,” Min. Sci. Eng., Vol. 9, No. 1, 1977, pp. 32–51.

    Google Scholar 

  14. Siemens, R. E. and Corrick, J. D., “Process for Nickel, Cobalt and Copper from Domestic Latentes.” Min Congress J., January, 1977, pp. 30–34.

    Google Scholar 

  15. Chou, E. C., Queaneau, P. B. and Richard, R. S., “Sulfuric Acid Pressure Leaching of Nickeliferous Limonites,” Met. Trans. B., AIME, Vol. 8B, December 1977, pp. 547–554.

    Article  Google Scholar 

  16. Wood, J. T., Kern, P. L. and Ashdown, N. C., “Electrolytic Recovery of Zinc from Oxidized Ores,” J. of Metals, November 1977, pp. l7–11.

    Google Scholar 

  17. Matthew, I. G., and Eisner, D., “The Hydrometallurgical Treatment of Zinc Silicate Ores,” Met. Trans. B., AIME, Vol. 8B, March 1977, pp. 73–83.

    Article  Google Scholar 

  18. Van Den Neste, E., “Metallurgie Hoboken-Overpelt’s Zinc Electrowinning Plant,” CIM Bull., August 1977, pp. 173–185.

    Google Scholar 

  19. Giles, Dion E., and Boden, A., “Hydrometallurgical Treatment of Port Kembla Copper-Smelter Fume,” Proc. Australas, Inst. Min. Metall, No. 262, June 1977, pp. 39–47.

    Google Scholar 

  20. Holt, G. and Pearson, D., “Hydrometallurgical Process for Recovery of Tin from Low-grade Concentrates,” IMM Trans., Vol. 86, June 1977, pp. C77–81.

    Google Scholar 

  21. Pearson, D., Holt, G., and Winter, D. G., “Development of a Hydrometallurgical Process for Tin Recovery from Low-grade Concentrates: 1-Preparation of a Leachable Glass,” IMM Trans., Vol. 86, September 1977, pp. C140–146.

    Google Scholar 

  22. Davis, J. F., “U. S. Uranium Industry Continues Active Development Despite Nuclear Uncertainties,” EMJ, Vol. 178, No. 8, 1977, pp. 91–94.

    Google Scholar 

  23. “Geology, Mining and Extractive Processing of Uranium Ores,” Mining Magazine, Vol. 136, No. 3, March 1977, pp. 189–195.

  24. “Uranium Mining at Lisbon, Utah,” Mining Magazine, Vol. 136, No. 8, August 1977, pp. 106–112.

  25. Jackson, D., “Rapid Building Program Puts RMEC into Production of U3O8 in Powder River Basin,” EMJ, Vol. 178, No. 10, October 1977, pp. 76–80.

    Google Scholar 

  26. Manchee, R. J., “Laboratory-scale Bacterially Assisted Leaching of Canadian Uranium Ores,” IMM, Vol. 86, September 1977, pp. C126–C133.

    Google Scholar 

  27. Maysilles, J. H., Nichols, I. L., and Seidel, D. C., “Extracting Uranium From a Wyoming Granite,” U.S.B.M., RI 8219, 1977.

    Google Scholar 

  28. Seeley, F. G., “Problems in the Separation of Radium From Uranium Ore Tailings,” Hydrometallurgy, Vol. 2, 1976-77, pp. 249–263.

    Article  MathSciNet  Google Scholar 

  29. Snell, G. J. and Sze, M. C., “New Oxidative Leaching Process Uses Silver to Enhance Copper Recovery,” EMJ, Vol. 178, No. 10, October 1977, pp. 100–105.

    Google Scholar 

  30. Habashi, F. and Yostos, B. I., “Copper from Chalcopyrite by Direct Reduction,” J. of Metals, July, 1977, pp. 11–16.

    Google Scholar 

  31. Haas, L. A., Schluter, R. B. and Mahan, W. M., “Leaching Duluth Complex Concentrates, Mattes, and Roasted Mattes with H2SO4,” EMJ, Vol. 178, No. 4, April, 1977, pp. 80–92.

    Google Scholar 

  32. Linge, H. G., “Reactivity Comparison of Australian Chalcopyrite Concentrates in Acidified Ferric Solution,” Hydrometallurgy, Vol. 2, (1976-77) pp. 219–233.

    Article  Google Scholar 

  33. Ammou-Chokroum, M., Cambazoglu, M., and Steinmetz, D., “Oxydation Menagee de la Chalcopyrite en Solution Acide: Analyse Cinetique des Reactions. I. Modeles Chimiques,” Minerai. Cristallogr Bull., (1977) 100, 149–161.

    Google Scholar 

  34. Ammou-Chokroum, M., Cambazoglu, M., and Steinmetz, D., “Oxydation Menagee de la Chalcopyrite en Solution Acide: Analyse Cinetique des Reactions. II Modeles Diffusionnels,” Minerai. Cristallogr Bull., (1977) 100, 161–177.

    Google Scholar 

  35. Beckstead, L. W. and Miller, J. E., “Ammonia, Oxidation Leaching of Chalcopyrite—Reaction Kinetics,” Met. Trans. B., AIME, Vol. 8B, March 1977, pp. 19–29.

    Article  Google Scholar 

  36. Beckstead, L. W. and Miller, J. E., “Ammonia, Oxidation Leaching of Chalcopyrite—Surface Deposits Effects,” Met. Trans. B., AIME, Vol. 8B, March 1977, pp. 31–38.

    Article  Google Scholar 

  37. Reilly, I. G. and Scott, D. S., “The Leaching of a Chalcopyrite Concentrate in Ammonia,” Can J Chem Eng, Vol. 55, October 1977, pp. 527–533.

    Article  Google Scholar 

  38. Shantz, R. and Fisher, W. W., “The Kinetics of the Dissolution of Chalcocite in Alkaline Cyanide Solution,” Met. Trans. B., AIME, Vol. 8B, June 1977, pp. 253–260.

    Article  Google Scholar 

  39. Scheiner, B. J., Thompson, D. C., Smyres, G. A., and Lindstrom, R. E., “Chlorine Oxygen Leaching of Complex Sulfide Concentrates,” U.S.B.M., in-house report, Reno, Nevada Metallurgy Center, 1977.

    Google Scholar 

  40. Fossi, P., Gandon, L., Bozec, G., and Demarthe, J. M., “Refining of High-Nickel Concentrates,” CIM Bull., Vol. 70, No. 783, pp. 188–197.

  41. King, W. E. and Perlmutter, D. D., “Pyrite Oxidation in Aqueous Ferric Chloride,” AIChE J., Vol. 23, No. 5, 1977, pp. 679–685.

    Article  Google Scholar 

  42. Hepel, M. and Hepel, T., “The Anodic Dissolution of Chalcocite in an Ammoniacal Environment,” J. Electroanal. Chem., Vol. 81, (1977) pp. 161–170.

    Article  Google Scholar 

  43. Biegler, T. and Swift, D. A., “Dissolution Kinetics of Copper Sulphide Anodes,” Hydrometallurgy, Vol. 2, (1976-77), pp. 335–349.

    Article  Google Scholar 

  44. Hepel, T. and Hepel, M., “Metastable Equilibria in the System Copper Sulphide-Sulphuric Acid-Ammonia-Water at 25°C.” Electrochimica Acta, 1977, Vol. 22, pp. 295–303.

    Article  Google Scholar 

  45. Paul, R. L., Nicol, M. J., Diggle, J. W. and Saunders, A. P., “The Electrochemical Dissolution of Galena in Aqueous Solutions,” NIM, South Africa, Report 1878, May 1977, 48 p.

    Google Scholar 

  46. Barr, D. S., Scheiner, B.J. and Hendrix, J. L., “Examination of the Chlorate Factor in Electro-Oxidation Leaching of Molybdenum Concentrates Using Flow-Through Cells,” Int. J. Min Proc, Vol. 4, (1977) pp. 83–88.

    Article  Google Scholar 

  47. Vu, C., and Han, K. N., “Leaching Behavior of Cobalt in Ammonia Solutions,” IMM Trans., Vol. 86, September 1977, pp. C119–C125.

    Google Scholar 

  48. Harvey, W. W. and Dudas, F. O., “Hydrochloric Acid Leach Processes for Copper Concentrates,” Trans., SME-AIME, Vol. 262, March 1977, pp. 46–57.

    Google Scholar 

  49. “In-situ Uranium Leaching Operations Flourish in Southern Texas,” EMJ, Vol. 178, No. 6, June 1977, p. 23.

  50. “Solution Uranium Mine Starts Production,” Mining Magazine, September 1977, p. 191.

  51. “The Feasibility of In-situ Uranium Mining,” EMJ, Vol. 178, No. 9, September 1977, p. 9.

  52. Howell, E. P. and Grant, O. J., U.S. Patent 4,032,194, June 28, 1977.

    Google Scholar 

  53. Brooke, J. N., “Uranium Recovery From Copper Leaching Operations,” Mining Congress Journal, Vol. 63, No. 8, 1977, pp. 38–41.

    Google Scholar 

  54. Galichon, P., Schechter, R. S., Cowley, A. and Breland, M., “Chemical Factors in Insitu Uranium Leach Mining,” In-Situ, 1(2), 1977, pp. 125–146.

    Google Scholar 

  55. Wadsworth, M. E., “Interfacing Technologies in Solution Mining,” Min. Eng., December 1977, pp. 30–33.

    Google Scholar 

  56. “OxyMin Proposed Underground In-situ Leaching,” EMJ, December 1977, p. 43.

  57. D’Andrea, D. V., Larson, W. C., Fletcher, L. R., Chamberlain, P. G. and Engelmann, W. H., “In Situ Leaching Research in a Copper Deposit at the Emerald Isle Mine,” U.S.B.M., RI 8236, 1977, 43 p.

    Google Scholar 

  58. Coursen, D. L., U.S. Patent 3,999,803, December 28, 1976.

    Google Scholar 

  59. Lingane, P. J., Cathles, L. M., Hsueh, L., U.S. Patent 4,043,599, August 23, 1977.

    Google Scholar 

  60. Bruynesteyn, A., Duncan, E. W. and Ballard, J. K., “An Evaluation of the Leaching Characteristics of Butte Leaching Ore,” Hydrometallurgy, 2 (1976-77), pp. 235–248.

    Article  Google Scholar 

  61. Roach, G. I. D. and Prosser, A. P., “Predicting the Rates of Recovery From Selective Chemical Reactions of Ores—A Specific Example: Leaching of Chalcopyrite in Acid with Oxygen,” Hydrometallurgy, 2 (1976-77), pp. 211–218.

    Article  Google Scholar 

  62. Duncan, D. M. and Smolick, T. J., “How Cortez Gold Mines Heap-Leached Low Grade Gold Ores at Two Nevada Properties,” EMJ, Vol. 128, No. 7, July 1977, pp. 65–69.

    Google Scholar 

  63. “Heap Leaching Will Produce 85,000 oz/year of Dore Bullion for Smokey Valley Mining,” EMJ, Vol. 178, No. 7, July 1977, p. 70–72.

  64. Davidson, R.J. and Duncanson, D., “The Elution of Gold from Activated Carbon Using Deionized Water,” J. So. African Inst Min Met., July, 1977, Vol. 77, No. 12, pp. 254–261.

    Google Scholar 

  65. Whewell, R. J., “The Importance of Kinetics in the Solvent Extraction of Copper,” Chemistry and Industry, Vol. 17, September, 1977, pp. 755–760.

    Google Scholar 

  66. Cognet, M. C. and Renon, H., “Influence of Aqueous Phase Composition Upon Copper Extraction by Cationic Extradants: A Thermodynamic Interpretation,” Hydrometallurgy, 2, (1976-77), pp. 305–314.

    Article  Google Scholar 

  67. Tammi, T. T., “Separation of the Isomers of the Commercial α-Hydroxy-Oxime LIX 63,” Hydrometallurgy, 2, (1976-77), pp. 371–380.

    Article  MathSciNet  Google Scholar 

  68. Cognet, M. C., Vaissiere, G., and Renon, H., “Copper Extraction by LIX 64N: Comparison of Chloride and Sulfate Solutions According to pH and Acid Concentration,” Hydrometallurgy, 2, (1976-77) pp. 265–274.

    Article  Google Scholar 

  69. Kordosky, G. A., MacKay, K. D., and Virnig, M. J., “A New Generation Copper Extractant,” Trans., SME-AIME, Vol. 262, March 1977, pp. 36–42.

    Google Scholar 

  70. Jones, R. L., “Cyprus Bagdad’s Solvent Exchange Process,” Min. Eng., September 1977, pp. 38–42.

    Google Scholar 

  71. Miller, J. W., and Harper, D. O., “Enhancement of Liquid Extraction by an Instantaneous, Irreversible Reaction,” Can. J. Chem. Eng., Vol. 55, October 1977, pp. 534–537.

    Article  Google Scholar 

  72. Nicol, A. W., Hawkins, A. and Kennedy, J. F., “Poly(4-and 5-acrylamidosalicylic Acids). Part V. Effect of Counter Anion and Salicylate Complex Stability on Cation Exchange From Aqueous Solution,” Hydrometallurgy, 2, (1976-77) pp. 381–393.

    Article  Google Scholar 

  73. Rice, N. M. and Nedved, M., “On the Mechanism of Metal Extraction by Hydroxyoximes,” Hydrometallurgy, 2, (1976-77) pp. 361–370.

    Article  Google Scholar 

  74. Vieux, A. S., Bassolila, L. and Rutagengwa, N., “Extraction of Tungsten (VI) From Hydrochloric and Nitric Acid Solutions by Tri-Isooctylamine in Various Organic Diluents,” Hydrometallurgy, 2, (1976-77) pp. 351–360.

    Article  Google Scholar 

  75. Van Der Zeeuw, A. J., “Purification of Zinc Calcine Leach Solutions by Exchange Extraction with the Zinc Salt of «Versatic» Acid,” Hydrometallurgy, 2, (1976-77)pp. 275–284.

    Article  Google Scholar 

  76. Helfferich, F. G., “The Promises of Ion Exchange,” CEP, October 1977, pp. 53–61.

    Google Scholar 

  77. Jensen, J. H. and Taylor, A., “Recent Developments in Ion Exchange Engineering,” Min. Congress J., Vol. 63, No. 4, April, 1977, pp. 26–28.

    Google Scholar 

  78. Himsley, A., “Uranium Extraction From Turbid Liquids By Continuous Ion Exchange Processes,” CIM Bull., Vol. 70, No. 785, September 1977, pp. 148–154.

    Google Scholar 

  79. “Cost Benefits Spark South African Work on Uranium Extraction Process,” EMJ, Vol. 178, No. 3, March, 1977, pp. 39–43 and 241.

  80. Warshawsky, A., “The Search for Nickel-Selective Polymers—A Review,” Hydrometallurgy, 2, (1976-77) pp. 197–209.

    Article  Google Scholar 

  81. Rice, N. M. and Nedved, M., “Recovery of Nickel and Copper From Ammoniacal Solution by Use of the Experimental Chelatinglon-exchange Resin Zerolit S-1208,” IMM Trans., Vol. 86, September 1977, pp. CI53–154.

    Google Scholar 

  82. Jones, K. C. and Grinstead, R. R., “Properties and Hydrometallurgical Applications of Two New Chelating Ion Exchange Resins,” Chem. and Ind., Vol. 6, August 1977, pp. 637–641.

    Google Scholar 

  83. Saha, A. K., Shahani, M. J., and Alterkar, V. A., “Adsorption of Cobalt by Lignite,” Hydrometallurgy 2, (1976-77), pp. 285–292.

    Article  Google Scholar 

  84. Martin, T. P. and Davies, G. A., “The Extraction of Copper from Dilute Aqueous Solutions Using a Liquid Membrane Process,” Hydrometallurgy, 2, (1976-77), pp. 315–334.

    Article  Google Scholar 

  85. Power, G. P. and Ritchie, I. M., “Metal Displacement (Cementation)Reactions:The Mercury (II)/Copper System,” Electrochimica Acta, 1977, Vol. 22, pp. 365–371.

    Article  Google Scholar 

  86. Higgs, J. M., Lawson, F., Power, G. P. and Ritchie, I. M., “The Use of Rotating Cylinders in the Study of Metal Displacement (Cementation) Reactions,” Aust. J. Chem., 1977, Vol. 30, pp. 395–399.

    Article  Google Scholar 

  87. Protec Processi e Technologie SpA. British Patent 1,472,176, May, 4, 1977.

  88. Itzkovich, I.J. and Ettel, V. A., Canadian Patent 1,009,461, Assigned to Inco, Ltd, May 3, 1977.

    Google Scholar 

  89. Nielsen, R. D. and Pocock, P., Canadian Patent 1,009,772, Assigned to Kennecott Copper Corp. May 3, 1977.

    Google Scholar 

  90. Piret, N. L., Rabden, H. J., Kudelka, H. and Schmidt, S., U.S. Patent 4,030,990, June 21, 1977.

    Google Scholar 

  91. Guay, R. and Silver, M., “Ferrous Iron Oxidation and Uranium Extraction by Thiobacillus ferrooxidans,” Biotechnology and Bioengineering, Vol. XIX, pp. 727–740, John Wiley and Sons, Inc. (1977).

    Article  Google Scholar 

  92. Prasad, T. P. and Ramasastry, V. V., “Oxidation of Ferrous Hydroxide Suspension, III,” J. Appl. Chem. Biotechnol., 1977, Vol. 27, pp. 409–414.

    Article  Google Scholar 

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Wadsworth, M.E. Hydrometallurgy. JOM 30, 32–36 (1978). https://doi.org/10.1007/BF03354362

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