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A geometallurgical perspective on a high-grade iron ore deposit at Kiirunavaara, northern Sweden

机译:瑞典北部Kirunavaara高档铁矿石矿床的地质钢矿透视

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Luossavaara-Kiirunavaara AB (LKAB) operates one iron ore mine, three concentration plants and three pelletising plants in Kiruna, Sweden. The current methods of separation at the beneficiation plants are low intensity magnetic separation (LIMS) and reverse apatite flotation, where the wet LIMS stage is regarded as the crucial part of silica separation from the ore. Because future silica levels are expected to increase in the incoming material to the beneficiation plants, geometallurgy has become an important area of development and research.A laboratory-scale methodology was developed for the systematic characterisation of the ore for mineral processing, with the focus on the high silica ore type B2 and newly discovered subtypes. This methodology combines mineralogical, geochemical and process mineralogical characteristics. Automated mineralogy (QEMSCAN~R) is used to study the modal mineralogy, the distribution of silicate minerals in different particle size classes after comminution, the deportment of silicon (Si) between various silicates and the degree of liberation and intergrowth of magnetite and silicates. An essential stage in the systematic characterisation of the ore deposit for mineral processing is the estimation and simulation of different parameters from the laboratory scale to the full scale at the concentration plants. This is achieved by using empirical models based on the data collected at the mineral processing plants. As the first step to implement the geometallurgical information, the current geological model is reconstructed with the mineralogy and the two, newly defined subtypes of high silica ore type B2 are separated into different domains.To study the reduction of the SiO_2 content in the magnetite concentrate, a large-scale reverse cationic silicate flotation laboratory test program was initiated in early spring 2016. This program investigated potential silicate flotation in the beneficiation plants at the Kiirunavaara site. The second target is to implant mineral processing parameters into the block model based on the new geological model. This information provides a good basis for making a prognosis for mine planning and a quality prognosis regarding the crude ore for mineral processing.
机译:Luossavaara-kiirunavaara ab(Lkab)在瑞典Kiruna运营一个铁矿石,三种浓度植物和三种造粒植物。当前在受益植物处的分离方法是低强度磁分离(LIMS)和反向磷灰石浮选,其中湿法阶段被认为是与矿石分离的二氧化硅分离的关键部分。由于未来的二氧化硅水平预计将进入矿物植物的入口材料增加,因此GeometalLurgy已成为发展和研究的重要领域。为矿物加工的系统特征开发了实验室规模的方法,并专注于高二氧化硅矿石型B2和新发现的亚型。该方法结合了矿物学,地球化学和工艺矿物学特征。自动化矿物学(QEMScan〜R)用于研究模态矿物学,粉碎后不同粒度类别的硅酸盐矿物质分布,各种硅酸盐与磁铁矿渗透和磁铁晶体之间的硅(Si)的驱逐。用于矿物加工矿床矿床的系统表征的基本阶段是从实验室规模到浓度植物的全规模的不同参数的估计和模拟。这是通过使用基于矿物加工厂收集的数据的经验模型来实现的。作为实现物质冶金信息的第一步,将当前的地质模型与矿物学的重建和二颗粒的高二氧化硅矿床类型B2的第二种地质模型分开到不同的域中。研究磁铁矿浓缩物中的SiO_2含量的降低,大规模的反向阳离子硅酸盐浮选实验室测试程序于2016年初期启动。该计划在Kiirunavaara网站的受益植物中调查了潜在的硅酸盐浮选。第二个目标是基于新地质模型将矿物处理参数植入块模型。该信息为矿山规划预后和有关矿物加工原油矿石的质量预后提供了良好依据。

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