Li Yan, Jiang Chunlan, Wang Zaicheng, Luo Puguang
State Key Laboratory of Explosion Science and Technology, Beijing Institute of Technology, Beijing 100081, China.
Materials (Basel). 2016 Nov 18;9(11):936. doi: 10.3390/ma9110936.
Metal/fluoropolymer composites represent a new category of energetic structural materials that release energy through exothermic chemical reactions initiated under shock loading conditions. This paper describes an experiment designed to study the reaction characteristics of energetic materials with low porosity under explosive loading. Three PTFE (polytetrafluoroethylene)/Ti/W mixtures with different W contents are processed through pressing and sintering. An inert PTFE/W mixture without reactive Ti particles is also prepared to serve as a reference. Shock-induced chemical reactions are recorded by high-speed video through a narrow observation window. Related shock parameters are calculated based on experimental data, and differences in energy release are discussed. The results show that the reaction propagation of PTFE/Ti/W energetic materials with low porosity under explosive loading is not self-sustained. As propagation distance increases, the energy release gradually decreases. In addition, reaction failure distance in PTFE/Ti/W composites is inversely proportional to the W content. Porosity increased the failure distance due to higher shock temperature.
金属/含氟聚合物复合材料是一类新型的含能结构材料,它通过在冲击载荷条件下引发的放热化学反应来释放能量。本文描述了一项旨在研究低孔隙率含能材料在爆炸载荷下反应特性的实验。通过压制和烧结制备了三种不同钨含量的聚四氟乙烯(PTFE)/钛/钨混合物。还制备了一种不含活性钛颗粒的惰性聚四氟乙烯/钨混合物作为参考。通过狭窄的观察窗利用高速视频记录冲击诱导的化学反应。基于实验数据计算相关冲击参数,并讨论能量释放的差异。结果表明,低孔隙率的聚四氟乙烯/钛/钨含能材料在爆炸载荷下的反应传播不是自持的。随着传播距离增加,能量释放逐渐减少。此外,聚四氟乙烯/钛/钨复合材料中的反应失效距离与钨含量成反比。由于较高的冲击温度,孔隙率增加了失效距离。