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Numerical modelling study of a modified sandbag system for ballistic protection

机译:改良沙袋弹道保护系统的数值模拟研究

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摘要

Modern field fortification systems are very large and cause a logistical burden during setup, thus setting the requirement for their modification. A simulation study was conducted to study the correlation between the compaction of sand and the energy absorbed by it when impacted by a solid steel projectile at 850 m/s. Furthermore, the sandbag was modified by the addition of plates in the system to observe the change in projectile penetration and the energy absorption behaviour of the sand. The factors considered for this study were the plate thickness (15 mm, 25 mm), plate material (aluminium, concrete, plexiglass, polycarbonate, steel) and plate location (226 mm, 236 mm, 256 mm from the point of impact). It was observed that a layer of compressed sand is formed around the projectile, aiding the energy absorption and dissipation process during impact. Upon addition of the plate, it was observed that the modified system (plate and sand) absorbed maximum energy when the plate is placed closest to the point of maximum penetration without the plate. It was also noted that the addition of the plate enhanced energy absorption characteristics of the system compared to conventional sandbags because of increased compaction of sand. From the study, it was observed that the plexiglass and polycarbonate plates had the maximum energy absorption and maximum deformation. The steel plate had the least energy absorption and minimal deformation. Concrete and Aluminium had comparable areal density, energy absorption and lowest deformation, making them the preferred choice of plate material for a modified sandbag. The numerical studies were verified using a gas gun and a modified sandbag with Aluminium plates to show that the addition of a plate improves compaction behaviour of sand.
机译:现代野外设防系统非常大,并在设置过程中导致物流负担,从而为其修改设置要求。进行了一种模拟研究,研究了在850m / s的固体钢射弹冲击时砂的压实与吸收的能量之间的相关性。此外,通过在系统中添加板来修改沙袋,以观察射弹穿透的变化和砂的能量吸收行为。考虑本研究的因素是板厚度(15mm,25mm),板材(铝,混凝土,有机玻璃,聚碳酸酯,钢)和板位置(距离冲击点226毫米,236毫米,256毫米)。观察到,在射弹周围形成一层压缩砂,在撞击过程中消除能量吸收和耗散过程。在加入板上,观察到当板放置在没有板的最大渗透点时,改性系统(板和砂)吸收最大能量。还注意到,由于砂的压实增加,与常规沙袋相比,添加了板的增强能量吸收特性。从研究开始,观察到有机玻璃和聚碳酸酯板具有最大的能量吸收和最大变形。钢板具有最小的能量吸收和最小变形。混凝土和铝具有相当的面密度,能量吸收和最低变形,使其成为改进的沙袋的板材的首选选择。使用燃气枪和具有铝板的改进的沙袋来验证数值研究,以表明添加板的添加改善了砂的压实行为。

著录项

  • 来源
    《Journal of computational science》 |2021年第7期|101403.1-101403.12|共12页
  • 作者单位

    Cranfield Univ Def Acad United Kingdom Ctr Def Engn Shrivenham SN6 8LA England;

    Cranfield Univ Def Acad United Kingdom Ctr Def Engn Shrivenham SN6 8LA England;

    Cranfield Univ Def Acad United Kingdom Ctr Def Engn Shrivenham SN6 8LA England|Univ West England Engn Design & Math Frenchay Campus Coldharbour Lane Bristol BS16 1QY Avon England;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Compaction; Energy absorption; Sandbag; Simulation; Ballistic plate;

    机译:压实;能量吸收;沙袋;模拟;弹道板;

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