首页> 外文期刊>Applied Geochemistry: Journal of the International Association of Geochemistry and Cosmochemistry >The biogeochemical reactivity of phosphate during bioleaching of bornite-chalcocite ore
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The biogeochemical reactivity of phosphate during bioleaching of bornite-chalcocite ore

机译:Bigate-Chalcocite Ore生物酰化期间磷酸盐的生物地球化学反应性

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摘要

The interaction of acidophilic iron and sulphur-oxidising bacteria (A. ferrooxidans, L. ferrooxidans and A. thiooxidans) with a bornite-chalcocite ore at pH 4 and pH 2 was examined to determine the effect of secondary mineral coatings on bioleaching/copper solubilisation. Rock sample chips were suspended in the bacterial consortium for 24 h (providing a limited window for colonisation) to select for bacteria that could attach to mineral surfaces, and then transferred to fresh media to promote growth, i.e., colony formation and bioleaching. After 4 weeks, the ore possessed colonies on all bornite-chalcocite surfaces, evenly scattered individual cells on non-sulphidic minerals, and secondary copper phosphate at pH 4 versus iron phosphate at pH 2. Viable cell counts in both systems were two orders of magnitude higher than the original inoculum by the end of the experiment, indicating that bacteria are released from mineralised biofilms. At pH 4, the lack of iron in solution and in the precipitates formed on the ore sample indicates preferential leaching of chalcocite, with no significant solubilisation of bornite. While secondary mineral formation, i.e., copper-phosphate formed at pH 4, can limit the recovery of copper, iron phosphate mineral coatings formed at pH 2 did not impact bacterial growth or copper recovery.
机译:检查嗜酸铁和硫 - 氧化菌(A.Ferrooxidans,L.Ferrooxidans和A.硫代氧化物)在pH 4和pH 2中的双核酸矿石的相互作用,以确定二次矿物涂层对生物浸出/铜溶解的影响。将岩体样品芯片悬浮在细菌联盟中24小时(提供有限的植物,用于定子化),以选择可以连接到矿物表面的细菌,然后转移到新鲜培养基中以促进生长,即菌落形成和生物浸渍。经过4周后,矿石在所有铁矿石核细胞表面上具有菌落,在非硫酸矿物上均匀散射单个细胞,并在pH4的次级磷酸盐与pH的磷酸铁磷酸盐。两个系统中的活细胞计数是两个数量级在实验结束时高于原始接种物,表明细菌从矿化生物膜中释放。在pH4中,溶液中缺乏铁和在矿石样品上形成的沉淀物表明Chalocite的优先浸出,没有显着的辉腾溶解。虽然次级矿物质形成,即在pH 4时形成的铜 - 磷酸盐,可以限制铜的回收,在pH2处形成的磷酸铁矿涂层没有冲击细菌生长或铜回收。

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