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Enhanced fluidization of nanoparticle agglomerates.

机译:增强纳米颗粒附聚物的流化。

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摘要

Gas fluidization of nanoparticle agglomerates has recently received much attention due to the excellent way in which these novel nanomaterials can be dispersed in a gaseous medium. Nanopowders have a very high surface area to volume ratio which allows them have unique chemical and physical properties especially at the surface. Fluidization is a popular technique for the continuous dispersal of solid materials in the fluidlike state.;Recently it has been found that nanoparticles exist in a highly agglomerate state which allow them to become fluidizable. The fluidization behavior of the nanopowders is dependent on the bulk and material properties of the powder. Although some nanopowders can become fluidized in the particulate fluidization state, others are unable to be fluidized homogeneously.;Nitrogen and neon were used as fluidizing gases to study the affect of gas viscosity on the fluidization state of nanopowders. For the nanopowders used, it was found that the increased viscosity of the fluidizing gas helps to dampen any disturbances to the flow structure of the fluidized bed. A more viscous gas minimizes the size of bubbles, thereby extending the regime of homogeneous fluidization by suppressing the onset of the bubbling regime. Laser-based imaging and microscopy techniques were also used to study the agglomerate size and structure within the fluidized bed.;Vibration and electrostatic fields were applied to a fluidized bed of nanopartide agglomerates to observe any changes in bed expansion and flow behavior. Applied vibrational intensities were found to increase the expansion of the fluidized bed, although large bubbles were observed at low vibrational frequencies. Electrostatic fields were found to decrease the expansion of the fluidized bed due to the induced charge on the powder and their migration to the fluidization cell walls. Combined vibration and electrostatic fields were applied and it was observed that the bed height of the fluidized bed can be controlled as a function of the strengths of the external fields.;Three different arrangements of alternating electric fields were used to enhance the fluidization of a nanofluidized bed. All arrangements were found to increase bed expansion of the fluidized bed. In particular, the non-uniform electric field arrangement was found to be successful in fluidizing a wide range of agglomerate size distributions of the nanopowder.
机译:由于这些新颖的纳米材料可以在气态介质中分散的极好方式,纳米颗粒附聚物的气体流化最近受到了广泛的关注。纳米粉具有非常高的表面积体积比,这使其具有独特的化学和物理特性,尤其是在表面。流态化是用于将固体材料以流体状状态连续分散的流行技术。最近,已经发现纳米颗粒以高度团聚的状态存在,这使它们变得可流化。纳米粉末的流化行为取决于粉末的体积和材料性质。尽管一些纳米粉体可以在颗粒状流化状态下流化,但其他纳米粉体不能均匀地流化。氮气和氖气被用作流化气体,研究气体粘度对纳米粉体流化状态的影响。对于所使用的纳米粉末,发现流化气体粘度的增加有助于减轻对流化床流动结构的任何干扰。粘性更大的气体可最大程度地减小气泡的大小,从而通过抑制起泡状态的出现而扩展了均匀流化的状态。还使用基于激光的成像和显微镜技术研究流化床内的团聚体尺寸和结构。将振动和静电场应用于纳米粒子团聚体的流化床,以观察床层膨胀和流动行为的任何变化。尽管在低振动频率下观察到大气泡,但发现施加的振动强度会增加流化床的膨胀。发现静电场由于粉末上的感应电荷及其向流化池壁的迁移而减少了流化床的膨胀。施加了振动和静电的组合场,观察到流化床的床高可以根据外部场的强度进行控制。;使用三种不同的交变电场布置来增强纳米流化床的流化床。发现所有布置都增加了流化床的床膨胀。特别地,发现非均匀电场布置成功地流化了纳米粉末的各种附聚物尺寸分布。

著录项

  • 作者

    Lepek, Daniel.;

  • 作者单位

    New Jersey Institute of Technology.;

  • 授予单位 New Jersey Institute of Technology.;
  • 学科 Engineering Chemical.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 156 p.
  • 总页数 156
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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