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Development and characterization of amorphous acrylate networks for use as switchable adhesives inspired from shapememory behavior.

机译:无定形丙烯酸酯网络的开发和表征,受形状记忆行为的启发,用作可转换粘合剂。

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摘要

Several types of insects and animals such as spiders and geckos are inherently able to climb along vertical walls and ceilings. This remarkable switchable adhesive behavior has been attributed to the fibrillar structures on their feet, with size ranging from few nanometers to a few micrometers depending on the species. Several studies have attempted to create synthetic micro-patterned surfaces trying to imitate this adhesive behavior seen in nature. The experimental procedures are scattered, with sole purpose of trying to increase adhesion, thereby making direct comparison between studies very difficult. There is a lack of fundamental understanding on adhesion of patterned surfaces. The influence of critical parameters like material modulus, glass transition temperature, viscoelastic effects, temperature and water absorption on adhesion is not fully explored and characterized. These parameters are expected to have a decisive influence on adhesion behavior of the polymer. Previous studies have utilized conventional "off-the-shelf" materials like epoxy, polyurethanes etc. It is however, impossible to change the material modulus, glass transition temperature etc. of these polymer systems without changing the base constituents itself, thereby explaining the gaps in the current research landscape.;The purpose of this study was to use acrylate shape-memory polymers (SMPs) for their ability to be tailored to specific mechanical properties by control of polymer chemistry, without changing the base constituents. Polymer networks with tailorable glass transition, material modulus, water absorption etc. were developed and adhesion studies were performed to investigate the influence of temperature, viscoelastic effects, material modulus on the adhesion behavior of flat acrylate polymer surfaces. The knowledge base gained from these studies was utilized to better understand the fundamental mechanisms associated with adhesion behavior of patterned acrylate surfaces. Thermally induced switchable adhesion and water induced switchable adhesion of patterned acrylate surfaces was investigated. The viscoelastic energy dissipation occurring during the detachment phase was shown to dramatically increase adhesion under both thermally induced and water induced conditions. This effect was most pre-dominant at the glass transition temperature of the material. Increase in pre-load force and unloading velocity were also shown to increase the adhesive capability of the patterned acrylate SMPs.
机译:几种昆虫和动物,例如蜘蛛和壁虎,固有地能够沿着垂直的墙壁和天花板攀爬。这种显着的可切换粘合行为归因于其脚上的原纤维结构,其大小范围从几纳米到几微米,具体取决于种类。多项研究已尝试创建合成的微图案表面,以模仿自然界中的这种粘合行为。实验程序是分散的,其唯一目的是试图增加粘附力,从而使研究之间的直接比较非常困难。对图案表面的粘附性缺乏基本的了解。尚未充分研究和表征材料模量,玻璃化转变温度,粘弹性效应,温度和吸水率等关键参数对附着力的影响。预期这些参数对聚合物的粘附行为具有决定性的影响。先前的研究已经利用了常规的“现成”材料,例如环氧树脂,聚氨酯等。但是,在不改变基础成分本身的情况下,不可能改变这些聚合物体系的材料模量,玻璃化转变温度等,从而解释了这些差距。在当前的研究领域。本研究的目的是使用丙烯酸酯形状记忆聚合物(SMP),因为它们能够通过控制聚合物化学来适应特定的机械性能,而不改变基本成分。研究了具有可调整的玻璃化转变,材料模量,吸水率等特性的聚合物网络,并进行了粘合研究,以研究温度,粘弹性效应,材料模量对丙烯酸酯聚合物平板表面粘合行为的影响。从这些研究中获得的知识库被用来更好地理解与图案化丙烯酸酯表面粘附行为相关的基本机理。对图案化丙烯酸酯表面的热诱导可转换粘合性和水诱导可转换粘合性进行了研究。在分离阶段发生的粘弹性能耗散被显示出在热诱导和水诱导条件下都显着增加了粘附力。在材料的玻璃化转变温度下,这种影响最为明显。还显示出预加载力和卸载速度的增加可增加图案化丙烯酸酯SMP的粘合能力。

著录项

  • 作者

    Lakhera, Nishant.;

  • 作者单位

    University of Wyoming.;

  • 授予单位 University of Wyoming.;
  • 学科 Engineering Mechanical.;Chemistry Polymer.;Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 260 p.
  • 总页数 260
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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