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How to Use Hard Ore Components as Grinding Media

机译:如何使用硬矿石成分作为研磨介质

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摘要

The commonly used SAB, SABC and run-of-mine (ROM) ball mill circuits can achieve high throughputs with good operating stability. However, these circuits consume a substantial amount of grinding media, which can have a substantial impact on the OPEX and the 'carbon footprint', specifically when viewed as an 'embodied' energy input.On the other hand, fully autogenous (AG) circuits can operate at much lower operating costs, but with limited throughput. The control of AG mills, fed by ores with hard and soft components, can also be challenging, due to the sensitivity of the mill to the ratio of hard to soft components. In this paper, a multi-component modelling approach was used to demonstrate that the harder component should be used as grinding media, and its use should be kept to a minimum to avoid reduction in the mill throughput. There is an optimal blend of hard to soft, and any optimal blending condition is both ore-dependent and mill-specific. Establishing this blend is challenging, and consequently discourages the use of autogenous mills. The new modelling approach addresses this challenge by providing a quantitative prediction of the influence of blending soft and hard components in a mill. This prediction can then be used to establish the required blend for maintaining a stable and efficient operation in autogenous grinding mode.
机译:常用的SAB,SABC和扫雷(ROM)球磨机电路可实现高产量并具有良好的操作稳定性。但是,这些回路会消耗大量的研磨介质,这会对OPEX和``碳足迹''产生重大影响,特别是当被视为``具体的''能量输入时;另一方面,全自动(AG)回路可以以低得多的运营成本运行,但是吞吐量有限。由于矿石对硬质和软质成分之比的敏感性,对由含硬质和软质成分的矿石进料的AG磨机的控制也可能具有挑战性。在本文中,采用了多组分建模方法来证明应将较硬的组分用作研磨介质,并且应将其用量保持在最低水平,以免降低工厂的产量。有一个从硬到软的最佳混合,任何最佳混合条件都取决于矿石和工厂特定。建立这种混合物具有挑战性,因此不鼓励使用自磨机。新的建模方法通过提供对工厂中软硬组分混合影响的定量预测来应对这一挑战。然后,可以使用此预测来建立所需的共混物,以在自磨模式下保持稳定高效的运行。

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