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Effect of microstructure on short pulse duration shock initiation of TATB and initial response mechanism 被引量:2

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摘要 Micro-TATB particles with different sizes and 3D nanoporous TATB architectures with different specific surface areas were prepared through recrystallization to study short pulse duration shock initiation properties by electric gun technology.For micro-TATB,the initiation threshold significantly decreases with TATB average size ranging from 79.7μm to 0.5μm.For 3D nanoporous TATB architecture,the initiation threshold decreases and then increases with specific surface areas increased from 9.6 m^2/g to36.2 m^2/g.The lowest initiation thresholds are obtained for the micro-TATB with average sizes of 1.3μm and 0.5μm,and 3D nanoporous TATB architecture with specific surface area of 22.4 m^2/g.The shock initiation thresholds of micro-TATB and 3D nanoporous TATB architectures show significantly decreases with the porosity increased.The decomposition reaction and thermal conductivity properties were further investigated to understand the initial response mechanism.High porosity provides more collapse sites to generate high temperature for formation of hot spots.The low thermal conductivity and decomposition temperature could enhance the formation and ignition of the hot spots,and initial decomposition reaction of TATB.The effect of the decomposition temperature is higher than that of the thermal conductivity on the shock initiation properties.The enhanced decomposition reaction could pro mote energy release and transfer process from the ignition to the combustio n.This work offe rs a new insight to understand the effects of microstructure on the shock initiation properties and the initial response mechanism of TATB.
出处 《Defence Technology(防务技术)》 SCIE EI CAS CSCD 2020年第2期374-380,共7页 Defence Technology
基金 supported by National Natural Science Foundation of China(11702265,11872341 and 11602238)。
作者简介 Corressponding author:Jun Wang.Institute of Chemical Materials,China Academy of Engineering Physics,No.64,Mianshan Road,Mianyang City,China.E-mail addresses:wjun927@caep.cn;Corresponding author:Xiao-wei Chen.E-mail addresses:chenxiaoweintu@bit.edu.cn。
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