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Multiparametric Investigation of Thermal Limitations in a Rapid-Fire Multirail Railgun Powered by a Pulsed MHD Generator

机译:脉冲MHD发电机驱动的速射多轨轨道炮热限制的多参数研究

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The operation of rapid burst firing multi-rail railguns was analyzed by numerical simulation using coupled 2-D and 3-D nonstationary formulations. In the calculations, a Sakhalin-type pulsed magnetohydrodynamic generator is assumed as a power source for the launcher. Launchers with three and five pairs of parallel rails connected into a series electrical circuit are considered. The simulation was performed for different numbers of projectiles in a burst and for different projectile masses. It is established that a major factor limiting the operation of launchers in such modes is the heating of the rails. It is shown that the rate of rail heating is determined by the inhomogeneity of the current density distribution along the rail section due to the nonstationary diffusion of the magnetic field into the rails and by the velocity skin effect. It has been shown previously that the maximum heating of the rails occurs in regions located outside the launcher channel provided that the width of the outer rail extends beyond the section of the launcher channel. We investigated the possibilities of reducing the heating of rails in these regions using rails of different widths in the rail launcher channel, using rails of different materials and rails with inhomogeneous electrophysical properties, and using armatures of different materials. The calculations show that with an optimal choice of the material and structure of the rails and the armature material corresponding to this structure, multirail launchers 5-6-m long can provide a projectile velocity of 2-2.5 km/s in a burst of 10-16 projectiles with masses of up to 800 g at a firing rate of 200-300 shots per second with no melting of the rails in the launcher channel.
机译:通过使用耦合的2-D和3-D非平稳公式进行数值模拟,分析了快速爆射多轨轨道炮的操作。在计算中,将萨哈林型脉冲磁流体动力发生器假定为发射器的动力源。考虑将三对和五对平行导轨连接到串联电路中的发射器。对爆炸中不同数量的弹丸以及不同的弹丸质量进行了仿真。已经确定,限制发射器在这种模式下运行的主要因素是轨道的加热。结果表明,由于磁场在轨道中的非平稳扩散以及速度趋肤效应,沿轨道截面的电流密度分布的不均匀性决定了轨道加热的速率。先前已经显示,只要外部轨道的宽度超出发射器通道的部分,轨道的最大加热就会发生在位于发射器通道外部的区域中。我们研究了在轨道发射器通道中使用不同宽度的轨道,使用不同材料的轨道和具有不均匀电物理特性的轨道以及使用不同材料的电枢来减少这些区域中轨道加热的可能性。计算表明,通过对钢轨的材料和结构以及与该结构相对应的电枢材料进行最佳选择,长5-6 m的多轨发射器可以在10次爆发中提供2-2.5 km / s的弹丸速度-16枚重达800 g的弹丸,每秒发射200-300发子弹,发射器通道中的铁轨没有融化。

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