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Control and Automation of Fluid Flow, Mass Transfer and Chemical Reactions in Microscale Segmented Flow.

机译:微型分段流中流体流动,传质和化学反应的控制和自动化。

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摘要

Flowing trains of uniformly sized bubbles/droplets (i.e., segmented flows) and the associated mass transfer enhancement over their single-phase counterparts have been studied extensively during the past fifty years. Although the scaling behaviour of segmented flow formation is increasingly well understood, the predictive adjustment of the desired flow characteristics that influence the mixing and residence times, remains a challenge. Currently, a time consuming, slow and often inconsistent manual manipulation of experimental conditions is required to address this task.;In my thesis, I have overcome the above-mentioned challenges and developed an experimental strategy that for the first time provided predictive control over segmented flows in a hands-off manner. A computer-controlled platform that consisted of a real-time image processing module within an integral controller, a silicon-based microreactor and automated fluid delivery technique was designed, implemented and validated. In a first part of my thesis I utilized this approach for the automated screening of physical mass transfer and solubility characteristics of carbon dioxide (CO2) in a physical solvent at a well-defined temperature and pressure and a throughput of 12 conditions per hour. Second, by applying the segmented flow approach to a recently discovered CO2 chemical absorbent, frustrated Lewis pairs (FLPs), I determined the thermodynamic characteristics of the CO2-FLP reaction. Finally, the segmented flow approach was employed for characterization and investigation of CO2-governed liquid-liquid phase separation process.;The second part of my thesis utilized the segmented flow platform for the preparation and shape control of high quality colloidal nanomaterials (e.g., CdSe/CdS) via the automated control of residence times up to approximately 5 minutes. By introducing a novel oscillatory segmented flow concept, I was able to further extend the residence time limitation to 24 hours. A case study of a slow candidate reaction, the etching of gold nanorods during up to five hours, served to illustrate the utility of oscillatory segmented flows in assessing the shape evolution of colloidal nanomaterials on-chip via continuous optical interrogation at only one sensing location. The developed cruise control strategy will enable plug'n play operation of segmented flows in applications that include flow chemistry, material synthesis and in-flow analysis and screening.
机译:在过去的五十年中,对均一大小的气泡/液滴(即分段流)的流动和与其单相对应物相关的传质增强进行了广泛的研究。尽管人们对分段流形成的结垢行为越来越了解,但是影响混合和停留时间的所需流特性的预测性调整仍然是一个挑战。当前,需要耗时,缓慢且经常不一致的实验条件手动操作来解决此任务。;在我的论文中,我克服了上述挑战并开发了一种实验策略,该策略首次提供了对分段的预测控制以放手的方式流动。设计,实施和验证了一个计算机控制平台,该平台由集成控制器内的实时图像处理模块,基于硅的微反应器和自动流体输送技术组成。在论文的第一部分中,我利用这种方法对物理传质和二氧化碳(CO2)在物理溶剂中以明确定义的温度和压力以及每小时12个条件的通量进行自动筛选。其次,通过对最近发现的CO2化学吸收剂,沮丧的Lewis对(FLP)应用分段流动方法,我确定了CO2-FLP反应的热力学特征。最后,采用分段流动方法表征和研究了CO2控制的液-液相分离过程。;论文的第二部分利用分段流动平台制备和控制了高质量的胶体纳米材料(如CdSe) / CdS),最多可自动控制停留时间约5分钟。通过引入新颖的振荡分段流动概念,我能够将停留时间限制进一步扩展到24小时。一个缓慢的候选反应的案例研究,即在长达五个小时的时间内蚀刻金纳米棒,可以说明振荡分段流在仅通过一个感测位置通过连续光学询问来评估片上胶体纳米材料的形状演变时的效用。所开发的巡航控制策略将使分段流的即插即用操作在包括流化学,材料合成以及流中分析和筛选的应用中进行。

著录项

  • 作者

    Abolhasani, Milad.;

  • 作者单位

    University of Toronto (Canada).;

  • 授予单位 University of Toronto (Canada).;
  • 学科 Mechanical engineering.;Nanotechnology.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 278 p.
  • 总页数 278
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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