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Microfabrication of hierarchical structures for engineered mechanical materials.

机译:工程机械材料的分层结构的微细加工。

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摘要

Materials found in nature present, in some cases, unique properties from their constituents that are of great interest in engineered materials for applications ranging from structural materials for the construction of bridges, canals and buildings to the fabrication of new lightweight composites for airplane and automotive bodies, to protective thin film coatings, amongst other fields. Research in the growing field of biomimetic materials indicates that the micro-architectures present in natural materials are critical to their macroscopic mechanical properties. A better understanding of the effect that structure and hierarchy across scales have on the material properties will enable engineered materials with enhanced properties. At the moment, very few theoretical models predict mechanical properties of simple materials based on their microstructures. Moreover these models are based on observations from complex biological systems. One way to overcome this challenge is through the use of microfabrication techniques to design and fabricate simple materials, more appropriate for the study of hierarchical organizations and microstructured materials. Arrays of structures with controlled geometry and dimension can be designed and fabricated at different length scales, ranging from a few hundred nanometers to centimeters, in order to mimic similar systems found in nature. In this thesis, materials have been fabricated in order to gain fundamental insight into the complex hierarchical materials found in nature and to engineer novel materials with enhanced mechanical properties. The materials fabricated here were mechanically characterized and compared to simple mechanics models to describe their behavior with the goal of applying the knowledge acquired to the design and synthesis of future engineered materials with novel properties.
机译:在某些情况下,自然界中存在的材料具有独特的特性,这些特性在工程材料中引起了人们的极大兴趣,工程材料的应用范围从桥梁,运河和建筑物的结构材料到飞机和汽车车身的新型轻质复合材料的制造,保护性薄膜涂料以及其他领域。仿生材料的增长领域的研究表明,天然材料中存在的微结构对其宏观机械性能至关重要。更好地理解跨尺度的结构和层次结构对材料特性的影响,将使工程材料具有增强的特性。目前,很少有理论模型基于其微观结构来预测简单材料的机械性能。此外,这些模型基于复杂生物系统的观察结果。克服这一挑战的一种方法是通过使用微细加工技术来设计和制造简单的材料,这更适合于研究分层组织和微细结构的材料。为了模拟自然界中类似的系统,可以设计和制造具有受控几何形状和尺寸的结构阵列,其长度范围从几百纳米到几厘米不等。在本文中,材料的制造是为了获得对自然界中发现的复杂分层材料的基本了解,并设计出具有增强机械性能的新型材料。此处制造的材料经过机械表征,并与简单的力学模型进行比较,以描述其行为,目的是将获得的知识应用于设计和合成具有新颖特性的未来工程材料。

著录项

  • 作者

    Vera Canudas, Marc.;

  • 作者单位

    University of Colorado at Boulder.;

  • 授予单位 University of Colorado at Boulder.;
  • 学科 Engineering Chemical.;Engineering Materials Science.
  • 学位 M.E.
  • 年度 2013
  • 页码 62 p.
  • 总页数 62
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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