超细晶和纳米结构Cu-5vol的显微组织稳定性和显微硬度。高能机械铣削生产的%Al2O3复合块/粉末

A. Mukhtar, Deliang Zhang, C. Kong, P. Munroe
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摘要

采用两种高能机械铣削工艺分别制备了Cu-5vol%Al2O3复合材料的超细晶块状物和纳米粉体。将铣削后的复合材料分别在150,300和500℃下热处理1小时,以确定材料的显微组织稳定性和显微硬度随热处理条件的变化。对于Cu-5vol。采用路线1(12小时铣削)制备的%Al2O3复合块,在150℃热处理后,由于再结晶,Cu晶粒尺寸从100-250 nm下降到50-180 nm,但由于位错密度的降低,其平均显微硬度也从224 HV下降到212 HV。2号路线铣削24 h后的Cu-5vol%Al2O3粉末,Cu晶粒尺寸从40 ~ 180 nm略微增大到50 ~ 200 nm,晶粒粗化和位错密度降低导致平均显微硬度分别从270 HV降低到257 HV。进一步将退火温度提高到300℃,使12 h磨块的晶粒尺寸增大到50 ~ 350 nm, 24 h磨块的晶粒尺寸增大到60 ~ 300 nm,使块的平均显微硬度降低到207 HV,粉末的平均显微硬度降低到248 HV。将退火温度从300℃提高到500℃,团块和粉末的Cu晶粒尺寸均显著增大,24 h磨粉颗粒的显微硬度显著降低至216 HV。而Al2O3纳米颗粒的显微硬度仅为196 HV,有明显的增强作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Microstructural stability and microhardness of ultrafine grained and nanostructured Cu-5vol.%Al2O3 composite lumps/powders produced by high energy mechanical milling
Ultrafine grained lumps and a nanostructured powder of Cu-5vol%Al2O3 composite were produced using two high energy mechanical milling routes respectively. The milled composite materials were heat treated at 150, 300 and 500 degC for 1 hour, respectively, to determine the microstructural stability and micohardness changes of the materials as a function of the heat treatment condition. For the Cu-5vol.%Al2O3 composite lumps produced using route 1 (12 hours milling), after heat treatment at 150 degC, the Cu grain sizes decreased from the range of 100-250 nm to the range of 50-180 nm due to recrystallisation, but its average microhardness also decreased from 224 HV to 212 HV due to reduction of dislocation density. For the 24 hours milled Cu-5vol%Al2O3 powder produced using Route 2, the Cu grain sizes increase slightly from the range of 40-180 nm to the range of 50-200 nm, and as the result of this grain coarsening and decrease of dislocation density, the average microhardness decreased from 270 HV to 257 HV respectively. Further increasing the annealing temperature to 300 degC caused the grain sizes of the 12 hours milled lumps to increase to the range of 50-350 nm, and those of the 24 hours milled powder to 60-300 nm, both resulting in a decrease in the average microhardness to 207 HV for the lumps and 248 HV for the powder. Increasing the annealing temperature from 300 to 500 degC caused a much more significant increase of the Cu grain sizes of both the lumps and the powder, and a significant decrease in the microhardness of the 24 hours milled powder particles to 216 HV. However, the microhardness of the lumps decreases very little to 196 HV, suggesting the significant reinforcement effect of the Al2O3 nanoparticles.
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