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An Euler-Lagrange particle approach for modeling fragments accelerated by explosive detonation

机译:欧拉-拉格朗日粒子法模拟爆炸引起的碎片爆炸

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In this paper, a method is proposed for modeling explosive-driven fragments as spherical particles with a point-particle approach. Lagrangian particles are coupled with a multimaterial Eulerian solver that uses a three-dimensional finite volume framework on unstructured grids. The Euler-Lagrange method provides a straightforward and inexpensive alternative to directly resolving particle surfaces or coupling with structural dynamics solvers. The importance of the drag and inviscid unsteady particle forces is shown through investigations of particles accelerated in shock tube experiments and in condensed phase explosive detonation. Numerical experiments are conducted to study the acceleration of isolated explosive-driven particles at various locations relative to the explosive surface. The point-particle method predicts fragment terminal velocities that are in good agreement with simulations where particles are fully resolved, while using a computational cell size that is eight times larger. It is determined that inviscid unsteady forces are dominating for particles sitting on, or embedded in, the explosive charge. The effect of explosive confinement, provided by multiple particles, is investigated through a numerical study with a cylindrical C4 charge. Decreasing particle spacing, until particles are touching, causes a 30-50% increase in particle terminal velocity and similar increase in gas impulse. Copyright (C) 2015 John Wiley & Sons, Ltd.
机译:在本文中,提出了一种使用点粒子方法将爆炸驱动碎片建模为球形粒子的方法。拉格朗日粒子与多材料欧拉求解器耦合,该求解器在非结构化网格上使用三维有限体积框架。 Euler-Lagrange方法为直接解析粒子表面或与结构动力学求解器耦合提供了一种直接且廉价的替代方法。通过对在冲击管实验中和凝结相爆炸中引爆的粒子进行研究,可以看出阻力和不定形粒子力的重要性。进行了数值实验,以研究相对于炸药表面不同位置的孤立炸药驱动的粒子的加速度。点粒子方法预测的碎片末端速度与粒子完全分解的模拟非常吻合,而使用的计算像元大小是后者的八倍。已确定,坐在爆炸炸药上或埋在爆炸炸药中的颗粒是不平稳的非恒定力。通过对圆柱形C4装药进行数值研究,研究了由多个粒子提供的爆炸限制作用。减小粒子间距,直到粒子接触为止,会导致粒子末端速度增加30-50%,并且气体脉冲也类似增加。版权所有(C)2015 John Wiley&Sons,Ltd.

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