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Deriving the ideal ore texture for microwave treatment of metalliferous ores

机译:得出用于含金属矿石微波处理的理想矿石质地

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摘要

High power density microwave treatments on metalliferous ores have historically been shown to reduce ore competency prior to beneficiation at economically feasible energy inputs. However, the relationship between mineralogical textural features and the extent of the microwave-induced fracturing had previously been limited to qualitative descriptions or simplistic two-phase numerical models, which could not account for the complex mineral assemblages in real ores. In this paper, mineralogy, grain size, dissemination, textural consistency and mineral associations were determined for 13 commercially exploited nickel, copper and lead-zinc ores using a Mineral Liberation Analyser (MLA). The ores were subjected to high power density microwave treatments at up to 25kW in a single mode cavity with microwave energy inputs of approximately 0.5-10kWh/t, and the subsequent reductions in ore competency were measured by the Point Load Test. The ores that demonstrated the greatest reductions in strength typically contained between approximately 2%wt to 20%wt of highly microwave-absorbing minerals, with a native grain size d50 greater than approximately 500µm, constrained by hard matrix minerals such as quartz and feldspar. Texturally consistent ores with a high proportion of amenable textures also demonstrated the highest average reductions in strength. These findings support the qualitative descriptions and numerical modelling results available in the literature and provide a baseline for selecting likely candidate ores for microwave treatments in the future.
机译:历史上已经证明,对含金属矿石进行高功率密度微波处理会降低其在经济上可行的能源输入之前的选矿能力。然而,矿物结构特征和微波致裂程度之间的关系以前仅限于定性描述或简单的两相数值模型,这不能解释真实矿石中复杂的矿物组合。在本文中,使用矿物解放分析仪(MLA)确定了13种商业开采的镍,铜和铅锌矿石的矿物学,晶粒度,分布,质地一致性和矿物关联。在单模腔中对矿石进行高达25kW的高功率密度微波处理,微波能量输入约为0.5-10kWh / t,随后通过点负荷试验测量了矿石能力的降低。表现出最大强度降低的矿石通常包含约2%wt至20%wt的高度吸收微波的矿物,其天然晶粒尺寸d50大于约500μm,受硬质基体矿物(如石英和长石)的约束。质地一致的矿石具有较高比例的令人满意的质地,也显示出平均强度下降最高。这些发现支持文献中的定性描述和数值模拟结果,并为将来选择可能的微波处理矿石提供了基准。

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