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Adhesion And Friction Of A Bio-Inspired Dry Adhesive And Van Der Waals Interactions

机译:生物启发的干胶与范德华相互作用的粘附力和摩擦力

摘要

This dissertation contains two parts. The part I is on the theory of adhesion and friction behaviors of dry adhesives. Many synthetic bio-inspired adhesives consist of an array of micro-fibrils attached to an elastic backing layer, resulting in a tough and compliant structure. In this part, we first present a three dimensional (3D) model for adhesion enhancement that occurs due to trapping of the interfacial crack in the region between fibrils. Energy release to the crack tip is attenuated because it has to go through the compliant terminal film between fibrils. Using perturbation theory Our model and a finite element method (FEM) we solve for the shape of crack front. also allows us to study how adhesion enhancement depends on the arrangement of fibrils. Then, we examine the nonlinear deformation of a single fibril subjected to a combination of shear and normal loads. An exact closed-form solution is obtained using elliptic functions. The prediction of our model compares well with the results of an indentation experiment. Finally, we model the response of a film-terminated micro-fibril array subjected to shear through contact with a rigid cylindrical indenter. The model matches the experimentally measured shear-force response. The second part is on van der Waals interactions. Van der Waals (vdW) forces are forces between neutral atoms or molecules and are present in all materials. Lifshitz theory of van der Waals interactions is reviewed in the first chapter of this part. It is often assumed that Lifshitz's theory is equivalent to the surface mode method proposed by van Kampen et al. A revisit of van der Waals force between two parallel plates shows that certain procedures in the surface mode method are inconsistent with Lifshitz's theory. Finally, numerical techniques (boundary element method and finite element analysis) to compute vdW forces are formulated. In principle, these numerical approaches can be used to evaluate the van der Waals force between dielectric solids with arbitrary shapes.
机译:本文分为两个部分。第一部分是关于干胶粘着力和摩擦行为的理论。许多合成生物启发型粘合剂由附着在弹性背衬层上的微纤维阵列组成,从而形成坚韧而顺应的结构。在这一部分中,我们首先介绍用于附着力增强的三维(3D)模型,该模型是由于在原纤维之间的区域中存在界面裂纹而发生的。释放到裂纹尖端的能量减少了,因为它必须穿过原纤维之间的顺应性终端膜。使用扰动理论我们的模型和有限元方法(FEM)解决了裂纹前沿的形状。还可以让我们研究粘附增强如何取决于原纤维的排列。然后,我们研究了在剪切力和法向载荷共同作用下单个原纤维的非线性变形。使用椭圆函数可以获得精确的封闭形式解。我们模型的预测与压痕实验的结果很好地比较。最后,我们模拟了通过与刚性圆柱压头接触而受到剪切作用的膜终止微纤维阵列的响应。该模型与实验测量的剪力响应相匹配。第二部分是范德华相互作用。范德华力(vdW)是中性原子或分子之间的力,存在于所有材料中。本部分的第一章回顾了范德华相互作用的Lifshitz理论。人们通常认为,李夫希茨的理论与van Kampen等人提出的表面模式方法等效。对两个平行板之间的范德华力的再研究表明,表面模式方法中的某些程序与Lifshitz的理论不一致。最后,阐述了计算vdW力的数值技术(边界元法和有限元分析)。原则上,这些数值方法可用于评估任意形状的介电固体之间的范德华力。

著录项

  • 作者

    Liu Jingzhou;

  • 作者单位
  • 年度 2009
  • 总页数
  • 原文格式 PDF
  • 正文语种 en_US
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