Zhang Hongan1, Sun Yuezhi1, Chen Cunhong2, et al. Effects of Working Conditions on the Microstructure and Properties of Steel-aluminum Electric Conducting Rods. [J]. Special Casting & Nonferrous Alloys (3):232-234(2007)
Zhang Hongan1, Sun Yuezhi1, Chen Cunhong2, et al. Effects of Working Conditions on the Microstructure and Properties of Steel-aluminum Electric Conducting Rods. [J]. Special Casting & Nonferrous Alloys (3):232-234(2007)DOI:
Effects of Working Conditions on the Microstructure and Properties of Steel-aluminum Electric Conducting Rods
摘要
研究了不同工作条件对钢铝导电杆复合界面的结合强度及导电性的影响。结果表明
经10次加热到400℃-空冷循环后
钢铝界面仍呈紧密结合状态
界面电阻变化不大
为0.5
0
.6μΩ;而加热到500℃-空冷循环4次时界面仍然完好
加热-空冷循环5次后Fe元素在Al中的扩散深度变大
复合界面有轻微开裂
在8
1
0次时钢铝复合界面开裂程度较为严重。此外
在500℃时界面电阻随加热次数增加而增大
特别是界面出现开裂时电阻变化更大。因此
钢铝导电杆比较合适的工作温度在400℃左右。
Abstract
Effects of working conditions on bonding strength and conductive properties of steel-aluminum cladding interface have been investigated.The results show that after 10 times heating-cooling cycle from 400 ℃ to the room temperature
the cladding interface keeps strong bonding and the interfacial electric resistance remains 0.5
0
.6 μΩ
which vary little compared to as-claded ones.With the cycle from 500 ℃ to room temperature
the interfacial bonding keeps well after 4 cycles.However
slight crack can be observed in the interface after 5 cycles due to increasing the diffusion depth of the Fe element into the Al matrix
furthermore
the crack in the cladding interface becomes more and more serious after 8
1
0 cycles.In addition
the interfacial electric resistance is increased with increasing heating times at 500 ℃
especially exhibiting sharply variation after crack in the cladding interface.The desirable working temperature of the steel-aluminum rods is about 400 ℃.
关键词
钢铝导电杆界面组织导电性
Keywords
Steel-aluminum Electric Conducting RodInterfaceMicrostructureConductive Properties
Lin Chong 武汉工程大学机电工程学院,化工装备强化与本质安全湖北省重点实验室;华中科技大学材料科学与工程学院,材料成形与模具技术全国重点实验室
相关机构
School of Material Science and Engineering, Jiangsu University of Science and Technology
Hubei Provincial Key Laboratory of Chemical Equipment Intensification and Intrinsic Safety, School of Mechanical and Electrical Engineering, Wuhan Institute of Technology
State Key Laboratory of Materials Processing and Die & Mould Technology, School of Materials Science and Engineering, Huazhong University of Science and Technology
School of Materials Science and Engineering,University of Science andTechnology Beijing
Chinalco Guangxi Nonferrous Rare Earth Development Co., Ltd.