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首页> 外文期刊>International journal of impact engineering >Multiphase theory of granular media and particle simulation method for projectile penetration in sand beds
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Multiphase theory of granular media and particle simulation method for projectile penetration in sand beds

机译:粒状介质多相理论及砂床射弹渗透的粒子仿真方法

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Studying projectile penetration in sand beds is of great significance for solving practical problems in the fields of weapon damage, consolidation of foundations, and mine explosions. In this study, a coupled model using the elastic-viscoplastic-kinetic constitutive relation and discrete particle dynamics was established to describe the multiple phases of sand-like materials, namely, the solid-like, liquid-like, gas-like, and inertial discrete phases. A linear elastic model was used to describe the solid-like phase; however, after the plastic yield point was reached, a viscoplastic constitutive model based on rheology was used to describe this liquid-like phase. When the volume fraction of the particles reduced to a certain value, the gas-like phase was described using the kinetic theory of granular flow; however, when the assumption of binary collisions was no longer satisfied, discrete particle dynamics was used to describe this inertial discrete phase. Smoothed discrete particle hydrodynamics coupled with the discrete element method was used to discretize our model based on established multiphase models of sand like materials. Our new theoretical model and numerical method were used to simulate the high-speed penetration of spherical and slender projectiles in dry sand accumulation. A comparison with the results from experiments and other numerical methods shows that the new numerical method is suitable for describing the different motion states of sand-like materials owing to different projectile penetration velocities. Finally, the ricochet phenomenon of a conical projectile penetrating a sand bed was captured, which further verifies the applicability of our model for solving engineering problems.
机译:研究砂床的射弹渗透对于解决武器损伤,整合和挖掘爆炸领域的实际问题具有重要意义。在该研究中,建立了一种耦合模型,建立了使用弹性粘蛋白 - 动力学组成关系和离散粒子动力学来描述砂状材料的多相,即固体,液体状,气体和惯性离散阶段。线性弹性模型用于描述固相相;然而,在达到塑料屈服点之后,使用基于流变学的粘性组成型模型来描述该液相相。当颗粒的体积分数还原到一定值时,使用粒状流动的动力学理论描述气相相;然而,当不再满足二元碰撞的假设时,使用离散的粒子动力学来描述这种惯性离散相位。与离散元件相结合的平滑离散颗粒流体动力学用于基于所建立的砂型材料的多相模型来离散化模型。我们的新理论模型和数值方法用于模拟球面和细长射弹在干砂积聚中的高速渗透。与实验的结果和其他数值方法的比较表明,新的数值方法适用于由于不同的射弹渗透速度而描述砂状材料的不同运动状态。最后,捕获了锥形射弹的Ricochet现象,其被捕获砂床,这进一步验证了我们模型的适用性来解决工程问题。

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