Role of ore mineralogy in optimizing conditions for bioleaching low-grade complex sulphide ores

来源 :Transactions of Nonferrous Metals Society of China | 被引量 : 0次 | 上传用户:heshuai6212
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The role that ore mineralogy plays in understanding and optimizing the conditions favouring the bioleaching of complex sulphide ore containing high amounts of siderite was studied using mixed cultures of mesophilic bacteria,with emphasis on zinc,lead and copper recoveries.The influencing parameters investigated include particle size,stirring speed,volume of inoculum,pulp density,and pH.The results show that the mixed mesophilic cultures can extract about two and a half times the amount of zinc than copper over an equivalent period of time.The highest zinc and copper recoveries of 89.2% and 36.4% respectively are obtained at particle size of 75 μm,stirring speed of 150 r/min,pulp density of 10% (w/v),12% (v/v) inoculum concentration,and a pH of 1.6.Variations in elemental composition within different particle sizes resulting from the mineralogy of the ore account for the bioleaching behaviour at varying particle sizes.The dissolution at varying pulp density,volume of inoculum,solution pH and the low solution potential observed are also influenced by ore mineralogy. The role that ore mineralogy plays in understanding and optimizing the conditions favouring the bioleaching of complex sulphide ore containing high amounts of siderite was studied using mixed cultures of mesophilic bacteria, with emphasis on zinc, lead and copper recoveries. Influencing parameters include include particle size , stirring speed, volume of inoculum, pulp density, and pH. The results show that the mixed mesophilic cultures can extract about two and a half times the amount of zinc than copper over an equivalent period of time. highest zinc and copper recoveries of 89.2% and 36.4% respectively in particle size of 75 μm, stirring speed of 150 r / min, pulp density of 10% (w / v), 12% (v / v) Variations in elemental composition within different grain sizes resulting from the mineralogy of the ore account for the bioleaching behavior at varying particle sizes. Dissolution of varying pulp density, volume of inoculum, solution pH and the low solution potential observed are also influenced by ore mineralogy.
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