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NER: Self-Assembled Liquid Crystal Thermoset Nano-Composites with Functionally Graded Properties

NER: Self-Assembled Liquid Crystal Thermoset Nano-Composites with Functionally Graded Properties
NER:具有功能梯度特性的自组装液晶热固性纳米复合材料
批准号:
0609354
负责人:
Richard Chartoff
金额:
$13.0万
依托单位:
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2006
资助国家:
美国
项目状态:
已结题
起止时间:
2006-07-01 至 2007-03-31

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中文摘要
翻译
该纳米探索性研究(NER)项目的目标是建立一种新型的自组装的、具有功能梯度性质的三维纳米复合材料的可行性。该项目将寻求确定使用喷墨打印工艺从含有碳纳米管的热固性、反应性液晶(LC)单体形成功能纳米复合材料的原理。将形成复合材料,以便能够适应成分的局部变化。当单体沉积时,它们将在磁场的作用下选择性地在三维方向上取向,然后通过原位固化来锁定取向。对含有纳米管的液晶分子进行取向将导致纳米管的自对准。复合材料将通过激光发射的紫外光照射进行光固化。这项研究的目标将是合成具有特定区域的3D复合材料,这些区域具有不同的模量值、强度和韧性值,以提高其整体机械(和热)性能。这项工作将包括选择和组合最合适的聚合物和纳米管组合物,以及确定喷墨加工和固化的最佳条件。这项研究还将为亚利桑那大学的一名研究生提供参与这一新技术领域的机会。如果成功,如图所示,LC基树脂与碳纳米管的组合有望产生比目前最好的碳纤维-环氧复合材料更坚硬、更韧性(损伤容忍度)和更耐擦伤的复合材料。许多行业和政府机构都有兴趣采用这项新技术,通过计算机控制的逐步分层沉积直接合成3D复合材料。这种工艺将允许直接生产高性能复合材料,而不需要使用传统的铸造、锻造、机械加工、造型或预浸料。此外,随心所欲地生产新形状的能力使其能够在各种场所快速、灵活、定制地生产。特别是,它为未来太空飞行器提供了相当大的潜力,用于外星定制生产复合材料部件。通过与两个不同的工业组织的现有合作安排,将促进技术向工业的转移。
英文摘要
The objective of this Nanoscale Exploratory Research (NER) project is to establish the feasibility on a new class of self-assembled, 3-D nano-composites with functionally graded properties. The project will seek to determine the principles behind forming functional nanocomposites from thermosetting, reactive liquid crystal (LC) monomers containing carbon nanotubes using an inkjet printing process. The composites will be formed so that local variations in composition can be accommodated. As the monomers are deposited they will be selectively oriented in 3 dimensions by a magnetic field and the orientation then will be locked-in by curing the monomers in-situ. Orienting LC molecules containing nanotubes will result in self-alignment of the nanotubes. The composites will be photocured by exposure with UV radiation delivered by a laser. The objective of the research will be to synthesize 3D-composites designed with specific regions that have different modulus, strength, and toughness values defined so as to enhance their overall mechanical (and thermal) performance. The work will include selecting and combining the most appropriate polymer and nanotube compositions as well as determining the optimum conditions for inkjet processing and curing. This research also will provide an opportunity for the participation of a graduate student in this new technology area at the University of Arizona.If successful, the combination of an LC matrix resin with carbon nanotubes, as depicted here, is expected to produce composites that are stiffer, tougher (damage tolerant), and more scratch resistant than the currently best available carbon fiber-epoxy composites. Numerous industries and Government agencies are interested in adapting this new technology for the direct synthesis of 3D- composites by computer-controlled step-by step, layered deposition. Such a process will allow the direct production of high-performance composites without the use of conventional casting, forging, machining, molding or prepregging. Further, the ability to produce new shapes at will lends itself to rapid, flexible, customized production in various venues. In particular, it offers considerable potential for future application in space vehicles for extraterrestrial customized production of composite parts. Transfer of the technology to industry will be facilitated by an existing collaborative arrangement with two separate industrial organizations.
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Self-Assembled Liquid Crystal Thermoset 3-D Nano-Composites With Functionally Graded Properties
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