CHINESE JOURNAL OF ENERGETIC MATERIALS
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Fast Measurement and Analysis of Photoacoustic Signal of Black Powder Generated by Focused Nanosecond Laser Pulse
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1.School of Chemistry and Chemical Engineering, Nanjing University of Science and Technology, Nanjing 210094, China;2.Micro-Nano Energetic Devices Key Laboratory, Ministry of Industry and Information Technology, Nanjing 210094, China

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    Abstract:

    Photoacoustic signals were induced on slices of black powder and its components, which was radiated by 1064 nm laser pulses with 10 ns duration. The laser pulse energies were adjusted by regulating the number of fused silica plates on the laser path as attenuators. An optical fiber-based Michelson interferometer was utilized to detect the generated acoustic signals. Acoustic wave energy was estimated. A primary model was proposed to estimate the reaction rate of black powder. Detected phase changes were similar to each other, but the dimensions varied with laser pulse energy. Thermal reaction of blackpowder was not significant under laser radiation, but other reaction mechanism existed and enhanced the photoacoustic signal. Relationship between laser pulse energy and integration of absolute value of phase change is approximately linear. Reaction rate of black powder is positively related to laser energy, except for high-energy pulse. The maximum of reaction rate was about 20 mmol·s-1, which was achieved when laser energy is around 10 mJ.

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陈奕如,沈瑞琪,吴立志.纳秒脉冲激光辐射黑火药的光声信号快速检测方法及分析[J].含能材料,2023,31(11):1141-1149.
CHEN Yi-ru, SHEN Rui-qi, WU Li-zhi. Fast Measurement and Analysis of Photoacoustic Signal of Black Powder Generated by Focused Nanosecond Laser Pulse[J]. Chinese Journal of Energetic Materials,2023,31(11):1141-1149.

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History
  • Received:June 23,2022
  • Revised:October 11,2023
  • Adopted:July 03,2023
  • Online: October 11,2023
  • Published: November 25,2023