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首页> 外文期刊>Transactions of the Japan society for aeronautical and space sciences >Impulse Generation Mechanisms in a Laser-Driven In-Tube Accelerator
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Impulse Generation Mechanisms in a Laser-Driven In-Tube Accelerator

机译:激光驱动的管内加速器中的脉冲产生机理

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To enhance laser-propulsion thrust performance, a unique Laser-driven In-Tube Accelerator (LITA) has been developed. This paper numerically analyzes the impulse generation mechanisms in LITA. For this purpose, a LITA performance experiment was conducted in atmospheric air with a projectile installed on a ballistic pendulum to calibrate the numerical approximations. We conducted experimental flow visualization by framing shadowgraph and computational fluid dynamics solving the axi-symmetric Euler equation applied to an ideal gas. The results show that a laser-driven blast wave is generated by a spherical hot gas core where the supplied laser energy is absorbed first. The effect of confinement by the tube or shroud wall is confirmed. The impulse production is established not only from the interaction between the incident blast wave and projectile, but also from the following repetitive pressure waves. Assuming that about 30% of the input laser energy is absorbed by the working air, both the impulse and peak pressure agrees quantitatively between the experiment and numerical simulation.
机译:为了增强激光推进推力性能,已经开发了独特的激光驱动管内加速器(LITA)。本文对LITA中的脉冲产生机理进行了数值分析。为此,在大气中进行了LITA性能实验,将弹丸安装在弹道上以校准数值近似值。我们通过建立阴影图和计算流体动力学来进行实验流可视化,以解决应用于理想气体的轴对称欧拉方程。结果表明,球形热气芯产生了激光驱动的爆炸波,首先吸收了所提供的激光能量。证实了通过管或罩壁的限制作用。脉冲产生不仅取决于入射爆炸波与弹丸之间的相互作用,还取决于随后的重复压力波。假设约30%的输入激光能量被工作空气吸收,则脉冲和峰值压力在实验和数值模拟之间是定量一致的。

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