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首页> 外文期刊>Materials Science and Engineering >Enhanced tensile properties and electrical conductivity of Cu-CNT nanocomposites processed via the combination of flake powder metallurgy and high pressure torsion methods
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Enhanced tensile properties and electrical conductivity of Cu-CNT nanocomposites processed via the combination of flake powder metallurgy and high pressure torsion methods

机译:片状粉末冶金和高压扭转法相结合加工得到的Cu-CNT纳米复合材料的拉伸性能和导电性增强

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摘要

Using flake powder metallurgy (FPM) technique, combined with high pressure torsion, super high strength-ductile Cu-CNT nanocomposite with high electrical conductivity is developed. The nanocomposite with 4 vol % CNT showed high tensile strength of -474 MPa, high electrical conductivity of —82.5% IACS as well as appreciable ductility of —11%. According to microstructural studies, the excellent properties of the nanocomposite are attributed to the formation of trimodal grains, high density of twin and low angle grain boundaries, improvement in CNT and Cu interfacial bonding, and appropriate distribution and maintaining the microstructure of the nanotubes in the production process. The results of this work provide a new pathway to produce strong, conductive, and ductile metal matrix nanocomposites.
机译:利用片状粉末冶金(FPM)技术,结合高压扭力,研制了具有高电导率的超高强度延性Cu-CNT纳米复合材料。 CNT含量为4%(体积)的纳米复合材料显示出-474 MPa的高拉伸强度,-82.5%IACS的高电导率以及-11%的显着延展性。根据微观结构研究,纳米复合材料的优异性能归因于三峰晶粒的形成,孪晶和低角度晶界的高密度,CNT和Cu界面键的改善以及纳米管中纳米管的适当分布和维持的微观结构。生产过程。这项工作的结果提供了一条生产强,导电和易延展的金属基质纳米复合材料的新途径。

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