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Attachment of fine gas bubbles onto a solid surface and electrokinetics of gas bubbles.

机译:细小气泡附着在固体表面上以及气泡的电动动力学。

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摘要

Study of bubble attachment onto a solid surface (collector) is of fundamental importance to particle hydrodynamics and interfacial science. Interests in this subject stem from its relevance to flotation processes used extensively in many separation processes such as mineral extraction, potable water and wastewater treatment, and bitumen recovery. Despite decades of operation, questions (e.g., selective flotation) still remain regarding mechanisms behind bubble attachment process. In light of this, the attachment of fine bubbles onto model collector surfaces was quantitatively investigated using a well-controlled experimental system that is analogous to bubble-particle attachments in real flotation processes. Such an approach allows elucidation of the effects of colloidal forces on bubble attachment as well as the roles of hydrodynamics and gravity in bubble transport and capture.; This thesis presents results of both experimental investigation and theoretical modeling. On the experimental side, the well-established impinging jet technique is extended to the study of bubble attachment onto solid substrates. The experimental system is designed in such a way that fine bubbles (either Hydrogen or Oxygen bubbles) generated by electrodes are carried by flowing solution to go through a capillary tube and to impinge onto a collector surface. Thorough experiments were carried out to investigate bubble attachment under a wide range of hydrodynamic and physicochemical conditions. Moreover, as no commercial instrument was available for measuring the zeta potential of gas bubbles which is an important parameter for quantifying the electrostatic double layer interaction, an electrophoresis apparatus was therefore devised for such a purpose.; On the theoretical side of this study, an Eulerian based approach was used to derive a bubble transport equation that includes contributions from hydrodynamic convection, Brownian diffusion, migration under gravitational buoyancy force and DLVO colloidal forces (e.g., the van der Waals and electrical double layer interactions). It was found that the theoretical predictions are generally in reasonable agreement with the corresponding experimental data of bubble attachment to methylated glass, suggesting validation of the bubble transport model. However, the proposed model failed to predict bubble attachment onto untreated glass at low Reynolds numbers. Several possible mechanisms are suggested to account for such a discrepancy.
机译:研究气泡附着在固体表面(收集器)上对粒子流体动力学和界面科学至关重要。该主题的兴趣源于它与许多分离过程中广泛使用的浮选过程的相关性,例如矿物提取,饮用水和废水处理以及沥青回收。尽管进行了数十年的操作,但仍然存在关于气泡附着过程背后的机制的问题(例如,选择性浮选)。有鉴于此,使用良好控制的实验系统定量研究了细小气泡附着在模型收集器表面上的情况,该系统类似于真实浮选过程中的气泡-颗粒附着。这种方法可以阐明胶体力对气泡附着的影响,以及流体动力学和重力在气泡运输和捕获中的作用。本文介绍了实验研究和理论建模的结果。在实验方面,完善的冲击射流技术扩展到了将气泡附着在固体基质上的研究。实验系统的设计方式是使溶液产生的电极上产生的细小气泡(氢气或氧气气泡)通过流动的溶液通过毛细管并撞击收集器表面。进行了彻底的实验,以研究在各种流体动力学和物理化学条件下的气泡附着。而且,由于没有商业仪器可用来测量气泡的ζ电势,它是定量静电双层相互作用的重要参数,因此,为此目的设计了一种电泳设备。在这项研究的理论方面,基于欧拉的方法被用来导出气泡输运方程,该方程包括流体动力对流,布朗扩散,重力浮力作用下的迁移以及DLVO胶体力(例如,范德华力和双电层)的贡献。互动)。发现理论预测与气泡附着在甲基化玻璃上的相应实验数据基本吻合,表明了气泡传输模型的有效性。但是,提出的模型无法预测低雷诺数下气泡在未处理玻璃上的附着。建议了几种可能的机制来解决这种差异。

著录项

  • 作者

    Yang, Chun.;

  • 作者单位

    University of Alberta (Canada).;

  • 授予单位 University of Alberta (Canada).;
  • 学科 Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2000
  • 页码 272 p.
  • 总页数 272
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 机械、仪表工业;
  • 关键词

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