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焊接电极用抗粘结纳米氧化铝弥散铜合金研究进展 被引量:1
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作者 李达人 《电工材料》 CAS 2019年第2期18-20,24,共4页
氧化铝弥散铜合金具有高强度、高导电和优良的抗高温软化性能,被广泛应用于汽车焊接工业,在焊接镀锌板过程中不会发生粘结,将在汽车轻量化进程中发挥越来越大的作用。综述了焊接电极用抗粘结纳米氧化铝弥散铜合金的性能特点及制备方法,... 氧化铝弥散铜合金具有高强度、高导电和优良的抗高温软化性能,被广泛应用于汽车焊接工业,在焊接镀锌板过程中不会发生粘结,将在汽车轻量化进程中发挥越来越大的作用。综述了焊接电极用抗粘结纳米氧化铝弥散铜合金的性能特点及制备方法,介绍了国内外研究现状及存在的问题,并展望了其发展方向。 展开更多
关键词 氧化铝弥散铜合金 焊接电极 研究进展
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High temperature mechanical behavior of alumina dispersion strengthened copper alloy with high content of alumina 被引量:6
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作者 向紫琪 李周 +2 位作者 雷前 肖柱 庞咏 《Transactions of Nonferrous Metals Society of China》 SCIE EI CAS CSCD 2015年第2期444-450,共7页
The microstructure and its effects on the high temperature mechanical behavior of Cu-2.7%Al_2O_3 (volume fraction) dispersion strengthened copper (ADSC) alloy were investigated. The results indicate that fine alum... The microstructure and its effects on the high temperature mechanical behavior of Cu-2.7%Al_2O_3 (volume fraction) dispersion strengthened copper (ADSC) alloy were investigated. The results indicate that fine alumina particles are uniformly distributed in the copper matrix, while a few coarse ones are distributed on the grain boundaries. Tensile tests results show that Hall-Petch mechanism is the main contribution to the yield strength of ADSC alloy at room temperature. Its high temperature strength is attributed to the strong pinning effects of alumina particles on the grain and sub-grain boundaries with dislocations. The ultimate tensile strength can reach 237 MPa and the corresponding yield strength reaches 226 MPa at 700℃. Tensile fracture morphology indicates that the ADSC alloy shows brittleness at elevated temperatures. Creep tests results demonstrate that the steady state creep rates at 400 ℃ are lower than those at 700 ℃. The stress exponents at 400 ℃ and 700℃ are 7 and 5, respectively, and the creep strain rates of the ADSC alloy are controlled by dislocation core diffusion and lattice diffusion. 展开更多
关键词 copper alloys alumina dispersion strengthened alloy high temperature mechanical behavior creep behavior FRACTURE strengthening mechanism
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