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Mechanics of Micro- and Nano-Textured Systems: Nanofibers, Nanochannels, Nanoparticles and Slurries.

机译:微结构和纳米结构系统的力学:纳米纤维,纳米通道,纳米颗粒和浆料。

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摘要

The first chapter of this work deals with bundles of microscopically long carbon nanochannels, which were assembled as a nanofluidic device to study bi-layer flows of n-decane and air. These experiments were accompanied and supported by theoretical considerations. The study paradoxically showed that it is possible to deliver more liquid through the nanochannels if they are partially filled with liquid in comparison to those which are completely filled with liquid.;In the following chapter these nanochannels were used to produce thermoresponsive nanoparticles (∼400 nm in diameter) at a very high production rate of 107 particles/sec. These nanoparticles were loaded with a low molecular weight dye to study the thermoresponsive release profile experimentally. The experiments were accompanied and guided by theoretical work. In the third part of the work, a rigorous electron microscopy revealed the 2-nm islands of thermoresponsive hydrogels nanofibers produced by electrospinning and cross-linking of electropun PNIPAM-containing nanofibers. These islands were found to be responsible for positive thermosensitivity in dye release experiments.;In the following chapters meltblowing was studied both experimentally and theoretically. The role of air turbulence in this process was elucidated experimentally by blowing a solid flexible threadline in high-speed gas flow. Using this information, theoretical understanding of polymer jet/gas jet turbulent interactions was achieved and a theory of small (linearized) and large (nonlinear) bending perturbations of polymer jets was developed. This theory was extended to simulate numerically multiple polymer jets being deposited on a screen moving normally to the blowing direction.;In the subsequent chapter, a novel method, solution blowing, for producing monolithic and core-shell nanofibers was developed. The core-shell fibers were also converted into hollow carbon nanotubes. The carbon nanofiber mats produced by this method were used as an electrode in a microbial fuel cell, which showed a higher current density in comparison to standard polycrystalline graphite rods. In addition, solution blowing was used to form soy-protein-containing biodegradable nanofibers.;In the next chapter, a novel method of intercalating wax and butter en masse into carbon nanotubes was demonstrated. It was shown that by manipulating the intercalated solute the working temperature range of phase-change materials (PCM) can be significantly widened, while the response time reduced to minimum.;In the final part of the work the elongational rheology of gypsum slurries was also studied and corroborated using the data from the corresponding shear rheological studies. It was shown that the gypsum slurries approximately follow the tensorial Ostwald-de-Waele (power law) constitutive equation.
机译:这项工作的第一章涉及成束的微观长碳纳米通道,这些束被组装成纳米流体装置,用于研究正癸烷和空气的双层流动。这些实验伴随着理论上的考虑并得到支持。矛盾的是,研究表明,与完全充满液体的纳米通道相比,如果部分充满液体,可以通过纳米通道输送​​更多的液体。在下一章中,这些纳米通道用于生产热响应性纳米粒子(〜400 nm)。直径)以非常高的107粒子/秒的生产率。这些纳米颗粒装有低分子量染料,以通过实验研究热响应释放曲线。实验是伴随理论工作而进行的。在工作的第三部分中,严格的电子显微镜检查揭示了通过电纺和交联含PNIPAM的纳米纤维的电纺丝和交联产生的2纳米岛的热敏水凝胶纳米纤维。在染料释放实验中,发现这些岛对正热敏性起着作用。在以下各章中,对熔喷进行了实验和理论研究。通过在高速气流中吹实的柔性螺纹线,实验阐明了湍流在此过程中的作用。利用该信息,对聚合物射流/气体射流湍流相互作用进行了理论理解,并建立了聚合物射流的小(线性)和大(非线性)弯曲扰动理论。扩展了该理论以模拟在垂直于吹塑方向移动的屏幕上沉积的多个聚合物射流的数值。在下一章中,开发了一种新的方法,即溶液吹塑,用于生产整体式和核壳式纳米纤维。核-壳纤维也被转化为中空的碳纳米管。通过这种方法生产的碳纳米纤维毡被用作微生物燃料电池中的电极,与标准的多晶石墨棒相比,它具有更高的电流密度。另外,溶液吹塑被用来形成含大豆蛋白的可生物降解的纳米纤维。在下一章中,将介绍一种将蜡和黄油大量嵌入碳纳米管的新方法。结果表明,通过控制插层溶质,相变材料(PCM)的工作温度范围可以大大拓宽,而响应时间却可以降至最小。在工作的最后部分,石膏浆料的流变性也得到了扩展。使用相应的剪切流变学研究数据进行了研究和证实。结果表明,石膏浆液近似遵循张量的Ostwald-de-Waele(幂定律)本构方程。

著录项

  • 作者

    Sinha Ray, Suman.;

  • 作者单位

    University of Illinois at Chicago.;

  • 授予单位 University of Illinois at Chicago.;
  • 学科 Engineering Mechanical.;Nanotechnology.
  • 学位 Ph.D.
  • 年度 2011
  • 页码 293 p.
  • 总页数 293
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 遥感技术;
  • 关键词

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