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考虑相变的炸药烤燃数值模拟计算
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Numerical Simulation of Cook-off about Phase Transition of Explosive
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    以低熔点的TNT炸药为研究对象,根据已有的TNT炸药烤燃实验,建立了炸药烤燃热反应模型,模型除了考虑炸药热传导外,还考虑了炸药多步化学反应、炸药相变和液态炸药的对流传热。采用计算流体力学软件Fluent,对加热速率为0.05 K·s-1时TNT炸药的烤燃过程进行了数值模拟计算,得到了TNT炸药的剧烈反应时间为4150 s,炸药点火时3号特征点的温度为226 ℃; 与实验结果比较,验证了计算模型和相关参数的正确性。分析了不同加热速率下(0.3 K·s-1,0.05 K·s-1,3.3 K·h-1)TNT炸药相变和温度变化情况。计算结果表明,烤燃中炸药相变熔化是从外向内逐步进行,未熔化的固态炸药会在重力作用下出现沉降。炸药熔化时会吸收热量,使温度上升速度减小。刚熔化的炸药在对流作用下温度会在短时间内快速上升。液态炸药存在热对流和热传导的共同作用,使炸药内部温度分布的均匀性增加。炸药相变对炸药点火温度,点火时间和点火位置都有影响。

    Abstract:

    Burning or detonation reaction occurs after phase transition during cook-off for of low-melting point solid explosives. A thermal reaction model of explosive was established according to TNT cook-off test. Besides heat conduction, self-decomposing reaction, the phase transition and heat convection of liquid explosive were considered. The calculation was conducted to model the TNT cook-off by CFD software (Fluent). The ignition time (4150 s) and ignition temperature (226 ℃) are achieved. Comparing the calculated results with the measured, the calculation model and relevant parameters of TNT were validated. The phase transition and temperature distribution in explosive were respectively analyzed at 0.3 K·s-1, 0.05 K·s-1 and 3.3 K·h-1 heating rate. Results show that phase transition occurs from the surface to the exterior of explosive. The unmelted explosive sinks in melted explosive because of the pull of gravity. The heat energy is needed for melting explosive. So the explosive temperature rises slowly. After all explosives have been melted, the temperature rises rapidly due to the convection. There is a little difference in temperature of liquid TNT because of heat conduction and convection. The ignition temperature, ignition time and ignition position of explosive are affected by phase transition of explosive.

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陈朗,王沛,冯长根.考虑相变的炸药烤燃数值模拟计算[J].含能材料, 2009, 17(5):568-573. DOI:10.3969/j. issn.1006-9941.2009.05.017.
CHEN Lang, WANG Pei, FENG Chang-gen. Numerical Simulation of Cook-off about Phase Transition of Explosive[J]. Chinese Journal of Energetic Materials, 2009, 17(5):568-573. DOI:10.3969/j. issn.1006-9941.2009.05.017.

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历史
  • 收稿日期: 2009-02-26
  • 最后修改日期: 2009-06-17
  • 录用日期: 2009-04-16
  • 在线发布日期: 2009-10-15
  • 出版日期: 2009-10-25