The effect of particle shape on the dynamics of spherical projectile impacting into granular media

IF 2.8 3区 工程技术 Q1 MATHEMATICS, INTERDISCIPLINARY APPLICATIONS Computational Particle Mechanics Pub Date : 2024-06-07 DOI:10.1007/s40571-024-00745-8
Xingli Zhang, Honghua Zhao, Yifan Wang, Dashuai Zhang, Yuntian Bai
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Abstract

To investigate the effect of particle shape on the dynamics of projectile impact into granular media, this study conducted discrete element method (DEM) numerical simulation using Particle Flow Code (PFC) software. Three particle shapes of granular materials were selected, where spherical particles represented by ball elements, ellipsoidal particles and irregular particles generated by clumps according to a certain template profile. The microscopic contact parameters were calibrated by laboratory tests and numerical simulations of standard direct shear tests. On this basis, the DEM model of a spherical projectile impact into the granular bed was established and laboratory tests were conducted. The test data matched well with the numerical results, verifying the reasonableness and accuracy of the numerical model. Analysing the results by varying the parameters shows that the impact process can be divided into three stages: impact, penetration and collapse. The particle shape does not affect the final penetration depth of the projectile as a power-law function of the initial velocity, and all follow the generalised Poncelet law. The difference in the peak impact force indicates that non-spherical particles have better cushioning capacity, and the analysis of the energy evolution during impact shows that there is significant variability in the effect of particle shape on the energy dissipation of the system. Finally, the internal response of the granular media during the impact process is elucidated by the results of porosity and coordination number. The force chains of granular materials undergo fracture and recombination during the impact process, and the particle shape significantly affects the structural distribution and evolution of the force chains.

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颗粒形状对球形弹丸撞击颗粒介质动力学的影响
为了研究颗粒形状对弹丸撞击颗粒介质动力学的影响,利用粒子流代码(particle Flow Code, PFC)软件进行离散元法(DEM)数值模拟。选取颗粒材料的三种颗粒形状,其中以球元为代表的球形颗粒、椭球形颗粒和按一定模板轮廓由团块生成的不规则颗粒。通过室内试验和标准直剪试验的数值模拟,标定了细观接触参数。在此基础上,建立了球形弹丸撞击颗粒床的DEM模型,并进行了室内试验。试验数据与数值结果吻合较好,验证了数值模型的合理性和准确性。通过对参数变化结果的分析表明,冲击过程可分为冲击、侵彻和崩塌三个阶段。颗粒形状对弹丸最终侵彻深度的影响与初速度成幂函数关系,均遵循广义庞塞莱定律。峰值冲击力的差异表明非球形颗粒具有更好的缓冲能力,冲击过程中的能量演化分析表明,颗粒形状对系统能量耗散的影响存在显著的可变性。最后,通过孔隙率和配位数的计算结果,阐明了颗粒介质在冲击过程中的内部响应。颗粒状材料的力链在冲击过程中发生断裂和重组,颗粒形状对力链的结构分布和演化有显著影响。
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来源期刊
Computational Particle Mechanics
Computational Particle Mechanics Mathematics-Computational Mathematics
CiteScore
5.70
自引率
9.10%
发文量
75
期刊介绍: GENERAL OBJECTIVES: Computational Particle Mechanics (CPM) is a quarterly journal with the goal of publishing full-length original articles addressing the modeling and simulation of systems involving particles and particle methods. The goal is to enhance communication among researchers in the applied sciences who use "particles'''' in one form or another in their research. SPECIFIC OBJECTIVES: Particle-based materials and numerical methods have become wide-spread in the natural and applied sciences, engineering, biology. The term "particle methods/mechanics'''' has now come to imply several different things to researchers in the 21st century, including: (a) Particles as a physical unit in granular media, particulate flows, plasmas, swarms, etc., (b) Particles representing material phases in continua at the meso-, micro-and nano-scale and (c) Particles as a discretization unit in continua and discontinua in numerical methods such as Discrete Element Methods (DEM), Particle Finite Element Methods (PFEM), Molecular Dynamics (MD), and Smoothed Particle Hydrodynamics (SPH), to name a few.
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