Metals (Feb 2023)

Experimental Investigation on Ignition Effects of Fuel Tank Impacted by Bi<sub>2</sub>O<sub>3</sub>-Reinforced PTFE/Al Reactive Material Projectile

  • Ruiqi Wang,
  • Qin Yin,
  • Miao Yao,
  • Junyi Huang,
  • Rongxin Li,
  • Zhenru Gao,
  • Shuangzhang Wu,
  • Yuchun Li,
  • Jiaxiang Wu

DOI
https://doi.org/10.3390/met13020399
Journal volume & issue
Vol. 13, no. 2
p. 399

Abstract

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A series of impact fuel tank experiments are carried out through the ballistic impact method. The ignition abilities of Bi2O3-reinforced PTFE/Al reactive material, metal aluminum, and inert metal steel are compared and analyzed, and the ignition mode of kerosene is explored when PTFE/Al/Bi2O3 impacts the fuel tank at different velocities. The results offer that PTFE/Al/Bi2O3 reactive material has outstanding ignition ability, and the order for ignition ability is PTFE/Al/Bi2O3 reactive material, metal aluminum, and inert metal steel. The kerosene content of the fuel tank has a significant impact on the ignition effect. The ignition effect of PTFE/Al/Bi2O3 reactive material impacting the fuel tank filled with 50% kerosene is weaker than that impacting the full tank. Under different impact velocities, PTFE/Al/Bi2O3 reactive materials display diverse ignition modes for kerosene: kerosene is directly ignited by the flame in the reverse reaction zone under low-velocity conditions, while high-temperature-activated reactive fragments are the ignition heat source of high-velocity conditions.

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