CHINESE JOURNAL OF ENERGETIC MATERIALS
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Numerical Calculation of the Safety of Processing Explosives with Femtosecond Laser Sequence with Different Frequencies
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State Key Laboratory of Explosion Science and Technology, Beijing Institute of Technology, Beijing 100081, China

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    Abstract:

    In order to study the safety of processing explosives with femtosecond laser, a calculation model of femtsecond laser sequence machining on explosives was established, which took into account the autothermal reaction of the explosives. The processes of femtosecond laser sequence machining on three different explosives (TNT, TATB and HMX) were calculated. The safety of these processes was analyzed. Results show that the frequencies of the femtosecond laser sequence, the heat release of the autothermal reaction and the thermal diffusion coefficient of explosives will affect processing safety. Among these three explosives, the heat release of the autothermal reaction of HMX is the largest, and its thermal diffusion coefficient is the smallest, so its heat accumulation effect is the most significant. Therefore, HMX is ignited when processing with all the three femtosecond sequences with different frequencies (1×103 Hz, 1×105 Hz and 2×105 Hz). On the contrary, the heat accumulation effect of TATB is the weakest, so no ignition occurs when processing with the three femtosecond sequence with different frequencies. The heat accumulation effect of TNT is between those of HMX and TATB, so ignition only occurs when using the femtosecond laser sequence with higher frequencies. In the actual machining process, especially for the explosives with greater heat release of the autothermal reaction and smaller thermal diffusion coefficient, femtosecond laser sequence with low frequency should be selected to ensure safety.

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伍俊英,刘嘉锡,杨利军,等.不同频率飞秒激光脉冲序列加工炸药过程安全性的数值计算[J].含能材料,2021,29(3):192-201.
WU Jun-ying, LIU Jia-xi, YANG Li-jun, et al. Numerical Calculation of the Safety of Processing Explosives with Femtosecond Laser Sequence with Different Frequencies[J]. Chinese Journal of Energetic Materials,2021,29(3):192-201.

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History
  • Received:July 10,2020
  • Revised:January 27,2021
  • Adopted:December 11,2020
  • Online: January 26,2021
  • Published: March 25,2021