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Effects of Multi-Stage Grinding Process and Grinding Fineness on Desulfurization Separation of High-Sulfiirous Iron Ore

机译:多阶段研磨过程和研磨细度对高硫铁矿脱硫分离的影响

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The complex disseminated relationship between pyrrhotite and magnetite as well as poor liberation of finely disseminated sulfurous pyrrhotite was revealed through the mineralogy investigation of certain high-sulfurous iron ore. Grinding process and fineness have been found as significant factors influencing the flotation desulfurization performance of high-sulfurous iron ore. Moreover, the separation tests of multi-stage grinding as well as direct one-stage fine grinding were conducted. The results show that desulfurization effect of the former is much better in comparison with the latter. For one thing, sliming losses and slime influences on the separation process were relieved when the separation process of multi-stage grinding was adopted. For another, the grinding circulating load was effectively reduced while the number of high quality particles was increased, which benefits the liberation of valuable minerals. In conclusion, a technological flowsheet was presented. As a first step, one-stage low intensity magnetic separation of mineral particles to produce rough concentrate of magnetic iron was applied under the condition of grinding fineness 65% -0.074mm. The next step was a fine regrinding of the obtained rough concentrate to 90% -0.045mm. In succession, an activation of ore pulp with combined activators, as well as a reverse flotation of pyrrhotite with combined collectors to produce magnetite concentrate was employed. The reverse flotation consisted of one-stage roughing, three stages of cleaning and one-stage scavenging. Lastly, another low intensity magnetic separation step on the obtained magnetite concentrate was applied to produce the final iron concentrate. The obtained iron concentrate reaches 64.28% Fe and 0.42% S respectively with iron recovery of 53.62% and desulfurization rate of up to 90%. Technical basis can be provided for the industrial desulfurization application of high-sulfurous iron ore due to the favorable separation efficiency.
机译:通过对某些高硫酸矿石的矿物学研究,揭示了Pyrhotite和磁铁矿之间的复杂传播关系以及精细传播的硫酸杀虫素的差的释放。已发现研磨过程和细度作为影响高硫酸铁矿石浮选脱硫性能的重要因素。此外,进行了多级研磨的分离试验以及直接的一级细磨。结果表明,与后者相比,前者的脱硫效果要好得多。对于一件事,当采用多级研磨的分离过程时,释放了对分离过程的削减损失和粘液影响。对于另一个,在增加高质量颗粒的数量的同时有效地降低了研磨循环载荷,这有利于解放有价值的矿物质。总之,提出了一种技术流程。作为第一步,在研磨细度的条件下,矿物颗粒的一级低强度磁性分离以产生磁铁的粗浓缩物65%-0.074mm。下一步骤是将获得的粗浓缩物的精细再研磨至90%-0.045mm。连续地,采用具有组合活化剂的矿石纸浆的活化,以及具有组合收集器的Pyrhotite的反向浮选,以产生磁铁矿浓缩物。反向浮选由单级粗加工组成,三个阶段的清洁和一级清除。最后,施加了所得磁铁矿浓缩物上的另一个低强度磁分离步骤以产生最终的铁浓缩物。所得铁浓缩物分别达到64.28%的Fe和0.42%,铁回收率为53.62%,脱硫率高达90%。由于良好的分离效率,高硫酸铁矿石的工业脱硫应用可以提供技术基础。

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