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Impact of doping agent and processing parameters on spray drying the alumina nanocomposite colloidal suspensions.

机译:掺杂剂和工艺参数对氧化铝纳米复合胶体悬浮液喷雾干燥的影响。

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摘要

This thesis was mainly concentrated on achieving the optimized formulation of doped and un-doped alumina suspensions in order to obtain spray-dried granules with the highest solid content, solid spherical morphology and narrow size distribution. The impact of the primary particle size (0.3, 0.6 and 1 μm) and the added amount of doping agent (0.065 and 0.195 vol.%) on the optimized formulation of the suspensions were investigated. The results indicated that the solid content had to be decreased as the primary particle size was reduced. The highest solid content for the suspension of 1 μm powder was 70% (with 0.3 wt% dispersant) whereas, it reached to 50 wt% (with 0.2 wt% dispersant) for the suspension of 0.3 μm powder. Moreover, it was found that any solid content more than the optimized amount resulted into huge irregular, rod shaped and elongated structures whereas any dispersant amount more than the optimized amount ended into donut-shaped or spherical granules with the blow holes on their external surface.The effect of doping agent, graphene oxide (GO), was clearly seen on increasing viscosity of the suspensions which resulted from the electrostatic interaction of neg- atively charged GO sheets and positively charged alumina particles. However, effect of GO on increasing the viscosity of the suspension for micron sized (1 μm) powder was not as strong as it was for the submicron sized powders. This effect was more pronounced when submicron sized primary particles (0.3, 0.6 μm) were used for the alumina suspensions. As a result of the increase in viscosity, 0.3 wt% dispersant was used for the doped suspensions of the submicron sized powder. Furthermore, 10 wt% reduction of solid content of the suspensions was required when the added amount of GO was increased from 0.065 vol.% to 0.195 vol.%.
机译:本论文主要集中在获得掺杂和未掺杂氧化铝悬浮液的优化配方,以获得具有最高固含量,固态球形和窄粒度分布的喷雾干燥颗粒。研究了初级粒径(0.3、0.6和1μm)和掺杂剂的添加量(0.065和0.195 vol。%)对悬浮液优化配方的影响。结果表明,随着初级粒径的减小,固体含量必须降低。 1μm粉末的悬浮液的最高固体含量为70%(使用0.3 wt%的分散剂),而0.3μm粉末的悬浮液的最高固体含量为50 wt%(使用0.2 wt%的分散剂)。此外,发现任何超过优化量的固体含量都会导致巨大的不规则,杆状和细长结构,而任何超过优化量的分散剂最终会变成在其外表面带有气孔的甜甜圈状或球形颗粒。可以明显看出掺杂剂氧化石墨烯(GO)对悬浮液粘度增加的影响,这是由于带负电的GO片和带正电的氧化铝颗粒之间的静电相互作用而引起的。但是,GO对增加微米级(1μm)粉末悬浮液粘度的影响不如亚微米级粉末强。当亚微米尺寸的初级颗粒(0.3、0.6μm)用于氧化铝悬浮液时,这种效果更加明显。作为粘度增加的结果,将0.3重量%的分散剂用于亚微米尺寸粉末的掺杂悬浮液。此外,当GO的添加量从0.065体积%增加到0.195体积%时,要求悬浮液的固体含量减少10重量%。

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  • 作者

    Zakeri Setareh;

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  • 年度 2016
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  • 原文格式 PDF
  • 正文语种 en
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