The traditional polytetrafluoroethylene (PTFE)/Al reactive material liner shaped charge generally produces insufficient penetration depth, although it enlarges the penetration hole diameter by chemical energy release inside the penetration crater. As such, a novel high-density reactive material liner based on the PTFE matrix was fabricated, and the corresponding penetration performance was investigated. Firstly, the PTFE/W/Cu/Pb high-density reactive material liner was fabricated via a cold pressing/sintering process. Then, jet formation and penetration behaviors at different standoffs were studied by pulse X-ray and static experiments, respectively. The X-ray results showed that the PTFE/W/Cu/Pb high-density reactive material liner forms an excellent reactive jet penetrator, and the static experimental results demonstrated that the penetration depth of this high-density reactive jet increased firstly and then decreased by increasing the standoff. When the standoff was 1.5 CD (charge diameter), the penetration depth of this reactive jet reached 2.82 CD, which was significantly higher than that of the traditional PTFE/Al reactive jet. Moreover, compared with the conventional metal copper jet penetrating steel plates, the entrance hole diameter caused by this high-density reactive jet improved 29.2% at the same standoff. Lastly, the chemical reaction characteristics of PTFE/W/Cu/Pb reactive materials were analyzed, and a semi-empirical penetration model of the high-density reactive jet was established based on the quasi-steady ideal incompressible fluid dynamics theory.
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机译:传统的聚四氟乙烯(PTFE)/ Al反应材料衬垫形状电荷通常产生不足的渗透深度,尽管它通过渗透陨石坑内的化学能量释放来扩大穿透孔直径。因此,制造了一种基于PTFE基质的新型高密度反应材料衬里,并研究了相应的渗透性。首先,通过冷压/烧结工艺制造PTFE / W / Cu / Pb高密度反应材料衬里。然后,通过脉冲X射线和静态实验分别研究了不同支架的喷射形成和渗透行为。 X射线结果表明,PTFE / W / Cu / Pb高密度反应材料衬里形成优异的反应射流渗透器,静态实验结果表明,该高密度反应射流的渗透深度首先增加,然后降低通过增加支架。当梯级为1.5cd(电荷直径)时,该反应射流的渗透深度达到2.82cd,其显着高于传统的PTFE / Al反应射流。此外,与传统的金属铜喷射穿透钢板相比,由该高密度反应射流引起的入口孔直径在相同的支架下提高了29.2%。最后,分析了PTFE / W / Cu / Pb反应材料的化学反应特性,基于准稳态的理想不可压缩流体动力学理论建立了高密度反应射流的半经验渗透模型。
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