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Strong, ductile, and thermally conductive carbon nanotube-reinforced aluminum matrix composites fabricated by ball-milling and hot extrusion of powders encapsulated in aluminum containers

机译:通过球磨和热挤压封装在铝制容器中的粉末制成的坚固,易延展且导热的碳纳米管增强的铝基复合材料

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摘要

Aluminum matrix composites reinforced by carbon nanotubes (CNTs) were fabricated by ball-milling (with aluminum powder; average diameter 30 μm), followed by hot extrusion of the powders encapsulated in aluminum containers (at 550° with an extrusion ratio of 9). The CNTs were intended to improve the mechanical properties and thermal conductivity of the aluminum composites formed by powder metallurgy. The CNTs were of two types-vapor-grown carbon fibers (VGCFs) with a diameter of 150 nm and multiwalled CNTs (MWCNTs) with a diameter of 65 nm. The composites were evaluated by their Vickers microhardness, tensile strength, and thermal conductivity. The microhardness exceeded 100 HV and increased with increasing volume fraction of reinforcement. The MWCNT-reinforced composites were harder than the VGCF-reinforced composites and exhibited higher ultimate tensile strength (over 450 MPa). The maximum fracture strain (37.2%, observed at a volume fraction of 0.5%) is the highest reported in the literature. Conversely, the VGCF-reinforced composites exhibited higher thermal conductivity than the MWCNT-reinforced composites. The thermal conductivity of the 0.5% VGCF-reinforced composites (203.7 W/m K) also exceeds any previously reported value. In summary, composites with unprecedentedly high ultimate tensile strength, fracture strain, and thermal conductivity were fabricated by a simple process that minimized damage to the CNTs during mixing, protected them from oxidation and excessive reaction with the aluminum matrix and effectively densified composites by hot extrusion.
机译:通过球磨(用铝粉;平均直径为30μm),然后热挤压封装在铝容器中的粉末(在550°下以9的挤压比)来制造由碳纳米管(CNT)增强的铝基复合材料。 CNT旨在改善由粉末冶金形成的铝复合材料的机械性能和导热性。碳纳米管具有两种类型:直径150纳米的气相生长碳纤维(VGCF)和直径65纳米的多壁碳纳米管(MWCNT)。通过维氏显微硬度,抗张强度和热导率评估复合材料。显微硬度超过100 HV,并随增强物体积分数的增加而增加。 MWCNT增强的复合材料比VGCF增强的复合材料更硬,并且具有更高的极限拉伸强度(超过450 MPa)。最大断裂应变(37.2%,以0.5%的体积分数观察)是文献中报道的最高值。相反,VGCF增强的复合材料显示出比MWCNT增强的复合材料更高的导热率。 0.5%VGCF增强的复合材料的热导率(203.7 W / m K)也超过了以前报告的任何值。总而言之,通过简单的工艺制造了具有前所未有的高极限拉伸强度,断裂应变和导热系数的复合材料,该工艺可最大程度地减少混合过程中对CNT的破坏,保护它们免受氧化和与铝基体过度反应以及通过热挤出有效地致密化的复合材料。

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  • 来源
    《Materials Science and Engineering》 |2018年第10期|460-469|共10页
  • 作者单位

    Department of Mechanical Engineering, College of Science and Engineering, Ritsumeikan University, 1-1-1, Nojihigashi, Kusatsu, Shiga 525-8577, Japan;

    Kanto Gakuin University, 1162-2, Ogikvbo, Odawara-shi, Kanagawa 250-0042, Japan;

    Kagami Memorial Institute for Materials Science and Technology, Waseda University, 2-8-26, Nishi-waseda, Shinjuku-ku, Tokyo 169-0051, Japan;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Aluminum matrix composite; CNTs; Ball-milling; Hot extrusion;

    机译:铝基复合材料;碳纳米管;球磨;热挤压;

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