Numerical Simulations of Explosive Blast Pressures During Wall Breaching

S. Akers, J. Ehrgott, D. Rickman
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引用次数: 3

Abstract

During the past several years, the US Army has focused considerable attention toward developing improved methods for breaching walls and determining weapon-target interaction effects from direct- and indirect-fire weapons in the urban combat environment. A major thrust area is centered on developing methods for predicting the blast and fragmentation environment behind a breached wall. This information is important to the warfighter in terms of recognizing the expected impact on both enemy combatants, and non-combatants or friendly forces. One impediment to this effort is that little data exist to document the behind-wall blast environment produced by the detonation of explosives against or within walls. As part of the Army's effort, the US Army Engineer Research and Development Center (ERDC) is conducting experimental and numerical investigations to improve wall breaching methods. In the experimental and numerical programs, the ERDC conducts comprehensive research on a full range of urban construction materials. As a first step in this process, the ERDC conducted a baseline study of C-4 breaching effectiveness against steel-reinforced-concrete (RC) walls. A goal of this effort was to better define the behind wall blast environment produced by various C-4 charges placed in contact with RC walls. Numerical simulations of selected experiments were conducted using the coupled Eulerian-Lagrangian code Zapotec. In these simulations, the concrete and reinforcing steel were modeled as Lagrangian materials, and the C-4 and air were modeled as Eulerian materials
破壁爆破压力的数值模拟
在过去的几年里,美国陆军已经将相当多的注意力集中在开发改进的方法上,用于在城市作战环境中突破墙壁和确定直接和间接射击武器的武器-目标相互作用效果。一个主要的推力领域集中在开发预测破裂墙后爆炸和破碎环境的方法。这些信息对于作战人员识别对敌方战斗人员、非战斗人员或友军的预期影响非常重要。这一努力的一个障碍是,几乎没有数据记录墙后爆炸环境,这些爆炸环境是由炸药对墙或墙内爆炸产生的。作为陆军努力的一部分,美国陆军工程研究与发展中心(ERDC)正在进行实验和数值调查,以改进破墙方法。在实验和数值程序中,ERDC对各种城市建筑材料进行了全面的研究。作为这一过程的第一步,ERDC进行了C-4对钢筋混凝土(RC)墙的破坏效果的基线研究。这项工作的一个目标是更好地定义由各种C-4装药与RC墙接触产生的墙后爆炸环境。采用欧拉-拉格朗日耦合代码Zapotec对所选实验进行了数值模拟。在这些模拟中,混凝土和钢筋被建模为拉格朗日材料,C-4和空气被建模为欧拉材料
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