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Role of Temperature-sensitive Polymers in Hydrophobic Aggregation/Flotation of Silicate Minerals

机译:温度敏感聚合物在硅酸盐矿物疏水聚集/浮选中的作用

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Reverse flotation is usually used for hematite/silica or bauxite/clay flotation separation in which the silica or clay is floated and rejected. Some properties of these silicate minerals such as particle size and surface characteristics have significant effect on their flotation behaviours. Firstly, the silicate mineral particles (especially clay minerals) generally have fine particle size (< 5 microns) in their natural states or due to overgrinding and they display poor flotation kinetics, consequently having low flotation recovery. Secondly, the wettability difference on different particle basal planes influences the affinity for adsorptions of different types of chemicals such as collectors or macromolecule. Common polyacrylamide (PAM) flocculants can be used to minimize the exposure of the most hydrophilic planes of clay particles via hydrogen bonding but they can not efficiently enhance the overall particle surface floatability due to the hydrophilic properties of this type of macromolecules.A novel method to improve both flotation kinetics and surface wettability of silicate minerals has been developed and studied. That is to use a temperature-sensitive polymer, poly (N-isopropyl acrylamide) (PNIPAM), as a process aid in the flotation of silicate minerals. Unlike PAM polymers,PNIPAM can induce a hydrophilic/hydrophobic transition on the particle surface when the temperature is changed to be lower or higher than its critical solution temperature (CST). At a lower temperature, the PNIPAM adsorbs on the particle surface via hydrogen bond similar to PAM. It induces strong hydrophobic aggregation when the temperature is increased above the CST. Thus, both floc size and mineral floatability are greatly increased.The flotation results show very good flotation performance and the addition of conventional flotation collector was no more required because the increased particle surface hydrophobicity induced by PNIPAM. Contact angle measurements explained the role of PNIPAM in manipulating particle surface hydrophilic/hydrophobic transition.
机译:反向浮选通常用于赤铁矿/二氧化硅或铝土矿/粘土的浮选分离,其中将二氧化硅或粘土浮选并丢弃。这些硅酸盐矿物的某些特性(例如粒度和表面特性)对其浮选行为具有重要影响。首先,硅酸盐矿物颗粒(特别是粘土矿物)通常在其自然状态或由于过度磨碎而具有较细的粒度(<5微米),并且浮选动力学较差,因此浮选回收率较低。其次,在不同的粒子基面上的润湿性差异会影响不同类型的化学物质(例如捕收剂或大分子)的吸附亲和力。普通聚丙烯酰胺(PAM)絮凝剂可用于最大程度地减少通过氢键作用使粘土颗粒的最亲水平面暴露,但由于此类大分子的亲水性,它们不能有效地提高整体颗粒表面的漂浮性。已经开发和研究了改善浮选动力学和硅酸盐矿物的表面润湿性的方法。也就是说,使用对温度敏感的聚合物聚(N-异丙基丙烯酰胺)(PNIPAM)作为浮选硅酸盐矿物的加工助剂。与PAM聚合物不同,当温度更改为低于或高于其临界溶液温度(CST)时,PNIPAM可以在颗粒表面引发亲水/疏水转变。在较低的温度下,PNIPAM类似于PAM一样通过氢键吸附在颗粒表面。当温度升高到CST以上时,它会诱导强烈的疏水性聚集。因此,絮凝物的大小和矿物的可浮性都大大增加了。浮选结果显示出很好的浮选性能,并且不再需要添加常规的浮选捕集剂,因为PNIPAM会增加颗粒表面的疏水性。接触角测量解释了PNIPAM在操纵颗粒表面亲水/疏水转变中的作用。

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