期刊文献+
共找到1篇文章
< 1 >
每页显示 20 50 100
Detonation characteristics of the solid-liquid mixed fuel cloud of Al/B/MgH_(2)/DEE/IPN
1
作者 Zhangjun Wu Xianzhao Song +4 位作者 Shuxin Deng Bingbing Yu Yongxu Wang Rhoda Afriyie Mensah suning mei 《Defence Technology(防务技术)》 2026年第1期377-388,共12页
To elucidate the dispersion and explosion characteristics of multi-metal powder and liquid composite fuel formulations,high-energy metal powders(aluminum(Al),boron(B),and magnesium hydride(MgH_(2)))are incorporated in... To elucidate the dispersion and explosion characteristics of multi-metal powder and liquid composite fuel formulations,high-energy metal powders(aluminum(Al),boron(B),and magnesium hydride(MgH_(2)))are incorporated into a liquid fuel primarily composed of diethyl ether(DEE)and isopropyl nitrate(IPN).The explosion characteristics of different solid-liquid fuel-air-explosive(FAE)under unconfined conditions are investigated using a high-speed camera,infrared thermal imaging,and a pressure measurement system.Results demonstrate that high-energy metal powders significantly enhance detonation energy dissipation,with aluminum exhibiting the most pronounced effect.Fuel 5#(45.4 wt%DEE,9.2 wt%IPN,29.5 wt%Al,9.1 wt%B,6.8 wt%MgH_(2))exhibits superior explosion performance,achieving higher values of overpressure,impulse,and thermal radiation damage during the detonation stage compared to other fuels.However,Fuel 5#also displays faster decay rates,attributed to accelerated heat release rates induced by B and MgH_(2)powders.This study reveals that different metal powders in solid-liquid FAE exhibit distinct enhancements in explosion performance,providing critical insights for optimizing composite fuel design. 展开更多
关键词 Detonable aerosol OVERPRESSURE Shock wave Deflagration to detonation transition Temperature field
在线阅读 下载PDF
上一页 1 下一页 到第
使用帮助 返回顶部