PBX 压缩成型中不均匀致密化的机理

IF 7.1 1区 工程技术 Q1 ENGINEERING, MECHANICAL
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引用次数: 0

摘要

高分子粘结炸药(PBX)压缩成型过程中的密度分布不均匀严重影响高能材料元件的力学性能和冲击波的精确输出能力。研究 PBX 复合粉末的多尺度致密化演化规律和密度不均匀机理,对于理解高能材料元件的密度不均匀现象和评估宏观力学响应差异至关重要。为此,我们开发了一种新的 PBX 压缩成型双尺度三维离散元法(DEM)模型,在考虑中观爆炸晶体真实形态的同时,可将宏观粉末的计算量提高约一个数量级。首先,利用所开发的三维 DEM 模型分析了不同尺度的致密化行为,包括低应变阶段宏观粉末的重新排列、高应变阶段宏观粉末的变形和粉末内部的介观结合破坏。此外,还量化了压缩致密化过程中宏观粉末变形过程中晶体-粘结剂界面和粘结剂内部中观尺度微裂纹的类型和百分比。通过模拟和 X 射线 μCT 扫描,揭示了压缩致密化过程中孔隙分布的特点以及孔隙率和密度均匀性的演变规律。最后,从位移、力链、接触织构和应力分布等多个角度阐明了密度不均匀的机理。随后,在不同尺度上捕捉到了不同程度的能量耗散行为和相同的梯度衰减模式。这表明,轴向应力衰减和密度不均匀是沿加载方向逐层传递过程中不同尺度能量梯度衰减的主要结果。这一发现首次从能量耗散的角度解释了密度不均匀和应力衰减的潜在诱导机制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Mechanism of uneven densification in PBX compression molding

Mechanism of uneven densification in PBX compression molding

The uneven density distribution during compression molding of polymer bonded explosive (PBX ) seriously affects the mechanical properties of high-energy material components and the precise output ability of shock waves. Investigating the multi-scale densification evolution laws and density non-uniformity mechanism of PBX composite powders is crucial for understanding the density non-uniformity phenomenon of energetic material components and evaluating the differences in macroscopic mechanical response. To this end, we developed a new dual-scale 3D discrete element method (DEM) model for PBX compression molding, which can increase the computational quantity of macroscopic powders by about an order of magnitude while considering the true morphology of mesoscopic explosive crystals. First, the densification behavior at different scales were analyzed using the developed 3D DEM models, including the rearrangement of macroscopic powder during the low strain stage, the deformation of macroscopic powders and mesoscopic bonding failure inside the powders during the high strain stage. Furtherly, the types and percentages of microcracks at the crystal-binder interface and inside the binder at the mesoscale during the macro powder deformation in the compression densification process were quantified. The characteristics of pore distribution and evolution laws of porosity and density uniformity during compression densification were revealed by simulations and X-ray μCT scanning. Finally, the mechanism of density non-uniformity was elucidated from multiple perspectives including displacement, force chain, contact fabric, and stress distribution. Subsequently, different degrees of energy dissipation behavior and the same gradient attenuation pattern were captured at different scales. This indicates that axial stress attenuation and density inhomogeneity are co-dominant results of the gradient attenuation of different scales of energy during layer-by-layer transfer along the loading direction. The potential induced mechanism of uneven density and stress attenuation were explained for the first time from the perspective of energy dissipation by this finding.

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来源期刊
International Journal of Mechanical Sciences
International Journal of Mechanical Sciences 工程技术-工程:机械
CiteScore
12.80
自引率
17.80%
发文量
769
审稿时长
19 days
期刊介绍: The International Journal of Mechanical Sciences (IJMS) serves as a global platform for the publication and dissemination of original research that contributes to a deeper scientific understanding of the fundamental disciplines within mechanical, civil, and material engineering. The primary focus of IJMS is to showcase innovative and ground-breaking work that utilizes analytical and computational modeling techniques, such as Finite Element Method (FEM), Boundary Element Method (BEM), and mesh-free methods, among others. These modeling methods are applied to diverse fields including rigid-body mechanics (e.g., dynamics, vibration, stability), structural mechanics, metal forming, advanced materials (e.g., metals, composites, cellular, smart) behavior and applications, impact mechanics, strain localization, and other nonlinear effects (e.g., large deflections, plasticity, fracture). Additionally, IJMS covers the realms of fluid mechanics (both external and internal flows), tribology, thermodynamics, and materials processing. These subjects collectively form the core of the journal's content. In summary, IJMS provides a prestigious platform for researchers to present their original contributions, shedding light on analytical and computational modeling methods in various areas of mechanical engineering, as well as exploring the behavior and application of advanced materials, fluid mechanics, thermodynamics, and materials processing.
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