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MINERALS BIOOXIDATION/BIOLEACHING: GUIDE TO DEVELOPING AN ECONOMICALLY VIABLE PROCESS

机译:矿物生物氧化/生物浸渍:在经济上可行的过程的指南

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A considerable economic and technical knowledge base has been amassed with the successful and sustained operation of commercial minerals bioleaching/biooxidation plants to extract copper from chalcocite ore and enhance precious metal recovery from sulfidic refractory ores and concentrates. Economic evaluation of bio-processing must consider the value of the ore, the sulfide-sulfur requiring oxidation to achieve significant metal recovery, the time required for the biological process and, in the case of precious metal feed-stocks, the down-stream reagent consumption. Of these considerations oxygen requirement for the biologically-catalyzed oxidation of sulfide minerals is the prevailing determinant in the capital and operating costs of aerated, stirred-tank reactors for processing concentrates and bio-heaps for processing ores. Oxygen requirement is dictated by the amount of sulfide-sulfur requiring oxidation to achieve desired metal recovery. The testwork program to evaluate a project for application of biooxidation/bioleaching must be designed to insure that factors critical to economic assessment are fully quantified.
机译:了可观的经济和技术知识基础已经积累了从矿石铜矿矿产商业浸矿/生物氧化厂的成功和持续经营来提取铜和提高从硫化物难选矿石和精矿贵金属回收。生物处理的经济评价必须考虑矿石的值,需要氧化以达到显著金属回收硫化物硫,所需的生物过程的时间,并且在贵金属馈股的情况下,下游试剂消耗。对于无机硫化物的生物催化的氧化这些考虑氧的要求是在首都现行行列式和用于处理的浓缩物和生物堆用于处理矿石充气,搅拌釜反应器的运行成本。氧需求通过要求氧化以获得所需的金属回收硫化物的硫的量决定的。试验工作程序,以评估生物氧化/浸出的应用程序的项目的设计必须保证因素,经济评估的关键是完全量化。

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