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乳液自组装法制备Al/B/PTFE含能微球及其性能表征
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作者 师鹏翔 王建 +3 位作者 陈杰 张行泉 邓勇军 王军 《火炸药学报》 EI CAS CSCD 北大核心 2024年第5期453-460,I0005,共9页
为了探究高活性金属含能微球的制备工艺以及燃烧性能,以Viton为黏结剂,聚四氟乙烯(PTFE)、硼粉(B)和铝粉(Al)为高能组分,采用乳液自组装技术制备了Al/B/PTFE含能微球,并对溶剂的挥发温度、乳化剂的种类、水相和油相的体积比和搅拌速度... 为了探究高活性金属含能微球的制备工艺以及燃烧性能,以Viton为黏结剂,聚四氟乙烯(PTFE)、硼粉(B)和铝粉(Al)为高能组分,采用乳液自组装技术制备了Al/B/PTFE含能微球,并对溶剂的挥发温度、乳化剂的种类、水相和油相的体积比和搅拌速度等工艺进行了优化;采用扫描电子显微镜(SEM)对Al/B/PTFE含能微球形貌进行了表征;采用TG-DSC法分析了Al/B/PTFE含能微球的热分解性能;通过高速摄影和密闭爆发器表征了Al/B/PTFE含能微球的燃烧反应性能。结果表面,水浴温度为25℃、乳化剂为PVA、水油比为80∶30和搅拌速度为700 r/min是Al/B/PTFE含能微球的最佳制备工艺;所制备的Al/B/PTFE含能微球的粒径均匀、球形度高且粒径可控,主要粒径分布范围在约300~900μm;微球的流散性、反应热、燃烧火焰面积和压力输出性能随着粒径的增加,出现先增加后减弱的现象;Al/B/PTFE含能微球的最大反应热,最大火焰面积和最高峰值压力为1097.97 J/g,186.06 cm^(2)和213.3 kPa,分别是物理混合样品的1.77倍、5.16倍和1.37倍。 展开更多
关键词 物理化学 乳液自组装 含能微球 燃烧反应 al/b/ptfe 金属燃料
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Construct a 3D microsphere of HMX/B/Al/PTFE to obtain the high energy and combustion reactivity
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作者 Jian Wang Jie Chen +4 位作者 Yaofeng Mao Yongjun Deng Wei Cao Fude Nie Jun Wang 《Defence Technology(防务技术)》 SCIE EI CAS CSCD 2024年第2期45-54,共10页
Metal(aluminum and boron)based energetic materials have been wildly applied in various fields including aerospace,explosives and micro-devices due to their high energy density.Unfortunately,the low combustion efficien... Metal(aluminum and boron)based energetic materials have been wildly applied in various fields including aerospace,explosives and micro-devices due to their high energy density.Unfortunately,the low combustion efficiency and reactivity of metal fuels,especially boron(B),severely limit their practical applications.Herein,multi-component 3D microspheres of HMX/B/Al/PTFE(HBA)have been designed and successfully prepared by emulsion and solvent evaporation method to achieve superior energy and combustion reactivity.The reactivity and energy output of HBA are systematically measured by ignitionburning test,constant-volume explosion vessel system and bomb calorimetry.Due to the increased interfacial contact and reaction area,HBA shows higher flame propagation rate,faster pressurization rate and larger combustion heat of 29.95 cm/s,1077 kPa/s,and 6164.43 J/g,which is 1.5 times,3.5 times,and 1.03 times of the physical mixed counterpart(HBA-P).Meanwhile,HBA also shows enhanced energy output and reactivity than 3D microspheres of HMX/B/PTFE(HB)resulting from the high reactivity of Al.The reaction mechanism of 3D microspheres is comprehensively investigated through combustion emission spectral and thermal analysis(TG-DSC-MS).The superior reactivity and energy of HBA originate from the surface etching of fluorine to the inert shell(Al_(2)O_(3) and B_(2)O_(3))and the initiation effect of Al to B.This work offers a promising approach to design and prepare high-performance energetic materials for the practical applications. 展开更多
关键词 HMX/b/al/ptfe 3D microspheres Surface etching Reaction mechanism
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