期刊文献+

A nanoparticle formation model considering layered motion based on an electrical explosion experiment with AI wires

下载PDF
导出
摘要 To study the evolution of nanoparticles during Al wire electrical explosion,a nanoparticle formation model that considered layered motion was developed,and an experimental system was set up to carry out electrical explosion experiments using 0.1 mm and 0.2 mm Al wires.The characteristic parameters and evolution process during the formation of nanoparticles were calculated and analyzed.The results show that the maximum velocities of the innermost and outermost layers are about 1200 m·s-1and 1600 m·s-1,and the velocity of the middle layer is about 1400 m·s-1,respectively.Most of the nanoparticles are formed in the temperature range of2600 K-2500 K.The characteristic temperature for the formation of Al nanoparticles is~2520K,which is also the characteristic temperature of other parameters.The size distribution range of the formed nanoparticles is 18 to 110 nm,and most of them are around 22 nm.The variation of saturated vapor pressure determines the temperature distribution range of particle nucleation.There is a minimum critical diameter of particles(~25 nm);particles smaller than the critical diameter can grow into larger particles during surface growth.Particle motion has an effect on the surface growth and aggregation process of particles,and also on the distribution area of larger-diameter particles.The simulation results are in good agreement with the experiments.We provide a method to estimate the size and distribution of nanoparticles,which is of great significance to understand the formation process of particles during the evolution of wire electrical explosion.
作者 张江波 高红旭 肖飞 刘威 梁泰鑫 马中亮 Jiangbo ZHANG;Hongxu GAO;Fei XIAO;Wei LIU;Taixin LIANG;Zhongliang MA(School of Environmental and Safety Engineering,North University of China,Taiyuan 030051,People's Republic of China;Xi'an Modern Chemistry Research Institute,Xi'an 710065,People's Republic of China)
出处 《Plasma Science and Technology》 SCIE EI CAS CSCD 2023年第1期135-146,共12页 等离子体科学和技术(英文版)
  • 相关文献

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部