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Simulation of Contamination Prevention for Optical Window in Laser Ignition Systems of Large-Caliber Guns

机译:大口径火炮激光点火系统光学窗口防污染仿真

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摘要

In laser ignition systems, to ignite the propellant, the laser has to be transmitted into chamber through an optical window. If the optical window is destroyed by high pressure or high temperature or contaminated by the black powder residue, the ignition system will fail in further firings. The sapphire window can withstand the high pressure and high temperature of the ballistic cycle, but it is necessary to keep the window clean for the laser to transmit repeatedly. In modular charge systems or fully combustible cartridge cases, there is no place to put a shield window as in ammunition with stub base; thus a new contamination prevention method is put forward. In this method, the hydrodynamic force is used to divert the gas flow in a cavity located in the breech to avoid contact with the optical window and prevent it from being contaminated. To verify the effectiveness of this structure, a three-dimensional unsteady discrete phase model (DPM) coupled with an interior ballistic process was established. The simulation results indicated that the flow jet from the direct orifice was diverted, and particle debris did not contaminate the optical window due to the hydrodynamic force. Various factors influencing the contamination prevention effect were discussed, and the structure parameters were optimized.
机译:在激光点火系统中,要点燃推进剂,必须将激光通过光学窗口传输到燃烧室中。如果光学窗口被高压或高温破坏或被黑粉残留物污染,则点火系统将无法继续点火。蓝宝石窗口可以承受弹道循环的高压和高温,但是必须保持窗口清洁以使激光重复发射。在模块化装药系统或完全可燃的弹药盒中,没有地方像在带短根的弹药中放置防护窗。因此,提出了一种新的污染预防方法。在这种方法中,流体动力用于转移位于后膛内空腔中的气流,以避免与光学窗口接触并防止其受到污染。为了验证这种结构的有效性,建立了带有内部弹道过程的三维非稳态离散相模型(DPM)。仿真结果表明,直接孔口的射流转向了,并且由于水动力的作用,颗粒碎片不会污染光学窗口。讨论了影响防污染效果的各种因素,并优化了结构参数。

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  • 来源
    《Journal of Applied Mechanics》 |2011年第5期|p.1-7|共7页
  • 作者单位

    School of Energy and Power Engineering, Nanjing University of Science and Technology, Nanjing 210094, P.R.C.;

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  • 正文语种 eng
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