EAGER/Collaborative Research: Nanocomposite Copper Tooling for Faster Cycle and Improved Precision in Plastic Molding - Proof of Concept
EAGER/Collaborative Research: Nanocomposite Copper Tooling for Faster Cycle and Improved Precision in Plastic Molding - Proof of Concept
批准号:
0944509
负责人:
Jay Tu
金额:
$7.86万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2009
资助国家:
美国
项目状态:
已结题
起止时间:
2009-07-15 至 2010-12-31
中文摘要
这一早期概念探索性研究奖助金(AGIRE)合作研究奖的研究目标是检验这样一个假设,即连续介质力学定律适用于铜熔体的微孔,因此,当单壁碳纳米管被引入微孔时,由于其高纵横比,它们将遵循流体流线并在凝固时粘着该排列。这种纳米管/铜复合材料的力学性能受到纳米管在铜基质中的排列方式的严重影响。实现这一目标的方法将是使用高亮度激光在铜衬底上创建直径50微米、深度200微米的熔化井,然后将纳米管引入微井。计算机模拟结果表明,激光诱导微孔内存在垂直层流流态。将检查复合材料的微观结构,以确定垂直对准的程度。如果成功,这项研究的好处将包括使技术能够在许多需要高机械强度和高导电性的应用中使用铜合金。一个潜在的变革性好处是价值650亿美元的模具制造行业。由纳米复合材料强化的模具制造将简化制造过程,缩短交货期,延长模具寿命,并创造一支新的模具制造商队伍。
英文摘要
The research objective of this EArly-concept Grants for Exploratory Research (EAGER) collaborative research award is to test the hypothesis that the laws of continuum mechanics hold inside a micro-well of molten copper such that, when Single Wall Carbon Nanotubes are introduced into the micro-well, because of their high aspect ratio they will follow the fluid streamline and cling to this alignment upon solidification. The mechanical properties of this nanotube/copper composite are critically influenced by the alignment of the nanotubes in the Copper matrix. The approach to achieving this objective will be to employ a high brightness laser for creating a molten well of 50 micron diameter and 200 micron deep on a copper substrate and then introduce the nanotubes into the micro-well. It has been shown through computer simulation that there exists a vertical laminar flow pattern in the laser-induced micro-well. The microstructure of the composite will be examined to determine how well the vertical alignment is accomplished.If successful, the benefits of this research will include enabling technologies to allow copper alloys to be used in a number of applications that require high mechanical strength in combination with high electrical and thermal conductivities. A potentially transformative benefit is for the $65 billion die and mold making industry. Building dies and molds enforced by the nanocomposite will simplify the manufacturing process, reduce the lead time, prolong die life, and create a new workforce of die and mold makers.
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