High Strength and High Electrical Conductivity Al Nanocomposites for DC Transmission Cable Applications
Aluminum is one of the most abundant lightweight metals on Earth with broad practical applications, such as in electrical wires. Although traditional aluminum manufacturing by alloying, deformation and thermomechanical means addresses the balance between high strength and high conductivity, adding m...
Main Authors: | , , , |
---|---|
Format: | Article |
Language: | English |
Published: |
MDPI AG
2021-07-01
|
Series: | Journal of Composites Science |
Subjects: | |
Online Access: | https://www.mdpi.com/2504-477X/5/7/172 |
id |
doaj-d612abc559774890837f937922204c5d |
---|---|
record_format |
Article |
spelling |
doaj-d612abc559774890837f937922204c5d2021-07-23T13:48:25ZengMDPI AGJournal of Composites Science2504-477X2021-07-01517217210.3390/jcs5070172High Strength and High Electrical Conductivity Al Nanocomposites for DC Transmission Cable ApplicationsAbdolreza Javadi0Shuaihang Pan1Chezheng Cao2Xiaochun Li3Scifacturing Laboratory, Department of Mechanical and Aerospace Engineering, University of California, Los Angeles, CA 90095, USAScifacturing Laboratory, Department of Mechanical and Aerospace Engineering, University of California, Los Angeles, CA 90095, USADepartment of Materials Science and Engineering, University of California, Los Angeles, CA 90095, USAScifacturing Laboratory, Department of Mechanical and Aerospace Engineering, University of California, Los Angeles, CA 90095, USAAluminum is one of the most abundant lightweight metals on Earth with broad practical applications, such as in electrical wires. Although traditional aluminum manufacturing by alloying, deformation and thermomechanical means addresses the balance between high strength and high conductivity, adding metallic ceramic nanoparticles into the aluminum matrix can be an exciting alternative approach to mass produce aluminum electrical wires. Here, we show a new class of aluminum nanocomposite electrical conductors (ANECs), with significantly higher hardness (130 HV) and good electrical conductivity (41% IACS). This ANEC is composed of Al and dispersed TiB<sub>2</sub> nanoparticles, as confirmed by XRD scanning and SEM imaging. We further observed an unusual ultra-fine grain (UFG) size when slow cooling ANEC samples, as a grain as small as 300 nm was clearly captured in FIB images. We believe that the significant hardness enhancement can be partially attributed to the UFG. Our investigation and theoretical analysis further validated that UFG can be achieved when nanoparticles are uniformly dispersed and distributed in the aluminum matrix, and this understanding is important for the development of Al nanocomposite wires with high strength and high electrical conductivity.https://www.mdpi.com/2504-477X/5/7/172aluminumelectrical conductivitynanocompositesultra-fine grain |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Abdolreza Javadi Shuaihang Pan Chezheng Cao Xiaochun Li |
spellingShingle |
Abdolreza Javadi Shuaihang Pan Chezheng Cao Xiaochun Li High Strength and High Electrical Conductivity Al Nanocomposites for DC Transmission Cable Applications Journal of Composites Science aluminum electrical conductivity nanocomposites ultra-fine grain |
author_facet |
Abdolreza Javadi Shuaihang Pan Chezheng Cao Xiaochun Li |
author_sort |
Abdolreza Javadi |
title |
High Strength and High Electrical Conductivity Al Nanocomposites for DC Transmission Cable Applications |
title_short |
High Strength and High Electrical Conductivity Al Nanocomposites for DC Transmission Cable Applications |
title_full |
High Strength and High Electrical Conductivity Al Nanocomposites for DC Transmission Cable Applications |
title_fullStr |
High Strength and High Electrical Conductivity Al Nanocomposites for DC Transmission Cable Applications |
title_full_unstemmed |
High Strength and High Electrical Conductivity Al Nanocomposites for DC Transmission Cable Applications |
title_sort |
high strength and high electrical conductivity al nanocomposites for dc transmission cable applications |
publisher |
MDPI AG |
series |
Journal of Composites Science |
issn |
2504-477X |
publishDate |
2021-07-01 |
description |
Aluminum is one of the most abundant lightweight metals on Earth with broad practical applications, such as in electrical wires. Although traditional aluminum manufacturing by alloying, deformation and thermomechanical means addresses the balance between high strength and high conductivity, adding metallic ceramic nanoparticles into the aluminum matrix can be an exciting alternative approach to mass produce aluminum electrical wires. Here, we show a new class of aluminum nanocomposite electrical conductors (ANECs), with significantly higher hardness (130 HV) and good electrical conductivity (41% IACS). This ANEC is composed of Al and dispersed TiB<sub>2</sub> nanoparticles, as confirmed by XRD scanning and SEM imaging. We further observed an unusual ultra-fine grain (UFG) size when slow cooling ANEC samples, as a grain as small as 300 nm was clearly captured in FIB images. We believe that the significant hardness enhancement can be partially attributed to the UFG. Our investigation and theoretical analysis further validated that UFG can be achieved when nanoparticles are uniformly dispersed and distributed in the aluminum matrix, and this understanding is important for the development of Al nanocomposite wires with high strength and high electrical conductivity. |
topic |
aluminum electrical conductivity nanocomposites ultra-fine grain |
url |
https://www.mdpi.com/2504-477X/5/7/172 |
work_keys_str_mv |
AT abdolrezajavadi highstrengthandhighelectricalconductivityalnanocompositesfordctransmissioncableapplications AT shuaihangpan highstrengthandhighelectricalconductivityalnanocompositesfordctransmissioncableapplications AT chezhengcao highstrengthandhighelectricalconductivityalnanocompositesfordctransmissioncableapplications AT xiaochunli highstrengthandhighelectricalconductivityalnanocompositesfordctransmissioncableapplications |
_version_ |
1721287719411253248 |