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Study of the shielding performance of a Whipple shield enhanced by Ti-Al-nylon impedance-graded materials

机译:Ti-Al-尼龙阻抗梯度材料增强的Whipple屏蔽的屏蔽性能研究

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摘要

An improved meteoroid/debris shielding structure for spacecraft is presented, using a bumper constructed from impedance-graded materials. The hypervelocity impact performances of a shield enhanced by Ti-Al-nylon impedance-graded materials and an aluminum Whipple shield are investigated experimentally, using a two-stage light gas gun at velocities of 3.50 and 6.50 km/s. The impact characteristics, including debris clouds, penetration holes in the bumper, and damage patterns on the rear wall are studied. The results show that the shielding capability of a Ti-Al-nylon shield is greater than that of an aluminum Whipple shield where the bumper has the same areal density. A theoretical analysis and numerical simulation are performed to explore why Ti-Al-nylon shields achieve a better shielding performance. The results suggest that a Ti-Al-nylon bumper can generate higher shock pressures and induce a greater temperature increase, which is more effective for fragmenting a projectile. Furthermore, wave propagation in the projectile and bumper is discussed. It is found that the shockwave propagation is affected by the shock impedance mismatch in impedance-graded material bumpers, so that the shock heating effect and the expansion angle of the debris cloud are increased. Materials with lower melting and vaporization temperatures are helpful for improving the performance of a Ti-Al-nylon shield, thereby achieving a sharp increase in the protective capability for spacecraft meteoroid/debris shielding.
机译:提出了一种改进的用于航天器的流星体/碎片屏蔽结构,该结构使用了由阻抗分级材料制成的保险杠。使用两级轻型气枪,以3.50 km / s和6.50 km / s的速度,对由Ti-Al-尼龙阻抗分级材料增强的防护罩和铝Whipple防护罩的超高速冲击性能进行了实验研究。研究了碰撞特性,包括碎片云,保险杠上的穿透孔以及后壁的损坏方式。结果表明,Ti-Al-尼龙屏蔽层的屏蔽能力要大于保险杠具有相同的面密度的铝Whipple屏蔽层。进行了理论分析和数值模拟,以探索为什么Ti-Al-尼龙屏蔽层具有更好的屏蔽性能。结果表明,Ti-Al-尼龙保险杠可以产生更高的冲击压力并引起更大的温度升高,这对于使弹丸破碎更为有效。此外,讨论了波在弹丸和保险杠中的传播。发现冲击波的传播受到阻抗分级的材料保险杠的冲击阻抗失配的影响,从而增加了冲击加热效果和碎片云的膨胀角。具有较低熔化和汽化温度的材料有助于改善Ti-Al-尼龙屏蔽的性能,从而大幅提高航天器流星体/碎片屏蔽的防护能力。

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