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3D NUMERICAL SIMULATION AND ANALYSIS OF RAILGUN GOUGING MECHANISM

机译:轨道刨钢机制的3D数值模拟与分析

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A gouging phenomenon with a hypervelocity sliding electrical contact in railgun not only shortens the rail lifetime, it but also affects the interior ballistic performance. In this paper, a 3-D numerical model was introduced to simulate and analyze the generation mechanism and evolution of the railgun gouging phenomenon. Johnson-Cook failure material model and Mie-Grüneisen equation of state were adopted for the simulations. The results show that a rail surface bulge is an important factor to induce gouging. High density and high pressure material flow on the contact surface obliquely extruding into the rail when accelerating the armature to a high velocity can produce gouging. The formation of gouging is suppressed by controlling the bulge size to a certain range and selecting suitable materials for rail surface coating. The numerical simulation result is in a good agreement with the experimental result, which shows that the proposed computing model and methodology are reliable.
机译:在Railgun中具有超额电位滑动电接触的灌木现象不仅缩短了铁路寿命,而且影响了内部弹道性能。本文介绍了一种三维数值模型,以模拟和分析铁路刨钢现象的发电机制和演化。 Johnson-Cook失败材料模型和MIE-GRÜNEEN采用了型号的模拟。结果表明,轨道表面凸起是诱导刨刨的重要因素。当将电枢加速到高速时,高密度和高压材料在倾斜地挤出到轨道上的高密度和高压材料流动可以产生刨丝。通过将凸起尺寸控制到一定范围并选择用于轨道表面涂层的合适材料来抑制刨丝的形成。数值模拟结果与实验结果吻合良好,这表明所提出的计算模型和方法是可靠的。

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