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An approach to modeling blast and fragment risks from improvised explosive devices

机译:简易爆炸装置爆炸和碎片风险建模的方法

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In this paper, we develop numerical methods for modeling blast and fragments generated from explosive detonation and apply them to scenarios representing improvised explosive devices in confined spaces. The detonation of condensed phase explosives is modeled with a programmed burn method in a three-dimensional multimaterial flow solver. This solver has been coupled with a Lagrangian particle solver to model the acceleration of explosive-driven fragments. We first simulate an explosion in a long cylindrical tube to validate the fluid solver for a partially-confined blast. We then simulate explosions on a subway train platform for 10 kg and 30 kg C4 charges. The maximum shock overpressure and impulse are used to predict the risk of common blast injuries. To represent improvised explosive threats, we model C4 charges with spherical, cylindrical, and disk shapes that are surrounded by a layer of spherical fragments. We find that the explosive charge shape plays an important role in the acceleration of the spherical fragments. Finally, a realistic scenario of an improvised explosive detonation near a bomb technician is investigated to assess fragment trajectory and blast loads in the near field.
机译:在本文中,我们开发了用于对爆炸和爆炸爆炸产生的碎片进行建模的数值方法,并将其应用于代表受限空间中简易爆炸装置的场景。在三维多材料流动求解器中,使用程序设计的燃烧方法对凝聚相炸药的爆炸进行建模。该求解器已与拉格朗日粒子求解器耦合以对爆炸驱动碎片的加速度建模。我们首先在长圆柱管中模拟爆炸,以验证流体求解器是否受到部分约束的爆炸。然后,我们在地铁列车平台上模拟10公斤和30公斤C4装药的爆炸。最大冲击超压和冲击力可用于预测常见爆炸伤害的风险。为了表示简易爆炸性威胁,我们对C4装药进行了建模,其球形,圆柱形和圆盘形状被球形碎片层包围。我们发现爆炸装药形状在球形碎片的加速中起重要作用。最后,研究了炸弹技术人员附近简易爆炸爆炸的现实情况,以评估近场中的碎片轨迹和爆炸载荷。

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