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Mechanical Behavior of Tough Hydrogels for Structural Applications.

机译:用于结构应用的坚韧水凝胶的力学行为。

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摘要

Hydrogels are widely used in many commercial products including Jell-O, contact lenses, and superabsorbent diapers. In recent decades, hydrogels have been under intense development for biomedical applications, such as scaffolds in tissue engineering, carriers for drug delivery, and valves in microfluidic systems. But the scope is severely limited as conventional hydrogels are weak and brittle and are not very stretchable. This thesis investigates the approaches that enhance the mechanical properties of hydrogels and their structural applications. We discov¬ered a class of exceptionally stretchable and tough hydrogels made from poly-mers that form networks via ionic and covalent crosslinks. Although such a hydrogel contains ~90% water, it can be stretched beyond 20 times its initial length, and has a fracture energy of ~9000 J/m2. The combination of large stretchability, remarkable toughness, and recoverability of stiffness and toughness, along with easy synthesis makes this material much superior over existing hydrogels. Extreme stretchability and blunted crack tips of these hydrogels question the validity of traditional fracture testing methods. We re-examine a widely used pure shear test method to measure the fracture energy. With the experimental and simulation results, we conclude that the pure shear test method can be used to measure fracture energy of extremely stretchable materials. Even though polyacrylamide-alginate hydrogels have an extremely high toughness, it has a relatively low stiffness and strength. We improved the stiffness and strength by embedding fibers. Most hydrogels are brittle, allowing the fibers to cut through the hydrogel when the composite is loaded. But tough hydrogel composites do not fail by the fibers cutting the hydrogel; instead, it undergoes large deforming by fibers sliding through the matrix. Hydrogels were not considered as materials for structural applications. But with enhanced mechanical properties, they have opened up novel applications. This thesis aims to investigate the broader applications, well beyond those investigated so far. We show fiber reinforced tough hydrogels can dissipate a significant amount of energy at a tunable level of stress, making them suitable for energy absorbing applications such as inner layer of helmets. We develop inexpensive fire-retarding materials using tough hydrogels that provide superior protection from burn injuries. We also study hydrogels as actuators that can be used in soft robotics. Hydrogels contain mostly water and they freeze when the temperature drops below 00C and lose its functions. We demonstrate a new class of hydrogels that do not freeze and hydrogels that partially freeze below water freezing temperature. Partially freezing hydrogels are ideal for cooling applications such as gel packs and non-freezing hydrogels are useful in all the structural applications at low temperatures. This thesis will enable the use of inexpensive hydrogels in a new class of non-traditional structural applications where the mechanical behavior of the hydrogel is of prime importance.
机译:水凝胶广泛用于许多商业产品中,包括Jell-O,隐形眼镜和超吸收性尿布。在最近的几十年中,水凝胶已经在生物医学领域得到了广泛的发展,例如组织工程中的支架,药物输送的载体以及微流体系统中的阀门。但是范围受到严格限制,因为常规的水凝胶弱且易碎并且不能很好地拉伸。本文研究了增强水凝胶力学性能及其结构应用的方法。我们发现了一类由可通过离子和共价交联形成网络的聚合物制成的异常可拉伸且坚韧的水凝胶。尽管这种水凝胶含有约90%的水,但它可以拉伸到其初始长度的20倍以上,并且断裂能约为9000 J / m2。大的可拉伸性,出色的韧性以及刚度和韧性的可恢复性以及易于合成的结合使该材料比现有的水凝胶优越得多。这些水凝胶的极高拉伸性和钝化的裂纹尖端质疑传统断裂测试方法的有效性。我们重新检查一种广泛使用的纯剪切测试方法来测量断裂能。通过实验和仿真结果,我们得出结论,纯剪切测试方法可用于测量极易拉伸材料的断裂能。尽管聚丙烯酰胺-藻酸盐水凝胶具有极高的韧性,但其具有相对较低的刚度和强度。我们通过嵌入纤维提高了刚度和强度。大多数水凝胶是脆性的,允许在加载复合材料时纤维切穿水凝胶。但是坚韧的水凝胶复合材料不会因为纤维切割水凝胶而失效;取而代之的是,纤维在基体中滑动时会发生很大的变形。水凝胶不被认为是用于结构应用的材料。但是凭借增强的机械性能,它们开辟了新的应用领域。本文旨在研究更广泛的应用,远远超出了迄今为止的研究范围。我们展示了纤维增强的坚硬水凝胶可以在可调节的压力水平下耗散大量能量,使其适合于能量吸收应用,例如头盔的内层。我们使用坚韧的水凝胶开发廉价的阻燃材料,可提供出色的烧伤保护。我们还研究了水凝胶作为可在软机器人中使用的促动器。水凝胶主要包含水,当温度降至00℃以下时它们会冻结并失去其功能。我们证明了一类新的不会冻结的水凝胶和在水冷冻温度以下部分冻结的水凝胶。部分冻结的水凝胶是冷却应用(例如凝胶包装)的理想选择,非冻结水凝胶可用于低温下的所有结构应用。本论文将使廉价的水凝胶能够在新型的非传统结构应用中使用,其中水凝胶的机械性能至关重要。

著录项

  • 作者单位

    Harvard University.;

  • 授予单位 Harvard University.;
  • 学科 Mechanical engineering.;Materials science.
  • 学位 Ph.D.
  • 年度 2015
  • 页码 141 p.
  • 总页数 141
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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