Honeycomb-spiderweb-inspired self-similar hybrid cellular structures for impact applications

IF 5.9 Q1 ENGINEERING, MULTIDISCIPLINARY Defence Technology(防务技术) Pub Date : 2025-01-01 DOI:10.1016/j.dt.2024.06.015
K. Tewari, M.K. Pandit, M.M. Mahapatra, P.R. Budarapu
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Abstract

Inspired by nature's self-similar designs, novel honeycomb-spiderweb based self-similar hybrid cellular structures are proposed here for efficient energy absorption in impact applications. The energy absorption is enhanced by optimizing the geometry and topology for a given mass. The proposed hybrid cellular structure is arrived after a thorough analysis of topologically enhanced self-similar structures. The optimized cell designs are rigorously tested considering dynamic loads involving crush and high-velocity bullet impact. Furthermore, the influence of thickness, radial connectivity, and order of patterning at the unit cell level are also investigated. The maximum crushing efficiency attained is found to be more than 95%, which is significantly higher than most existing traditional designs. Later on, the first and second-order hierarchical self-similar unit cell designs developed during crush analysis are used to prepare the cores for sandwich structures. Impact tests are performed on the developed sandwich structures using the standard 9-mm parabellum. The influence of multistaging on impact resistance is also investigated by maintaining a constant total thickness and mass of the sandwich structure. Moreover, in order to avoid layer-wise weak zones and hence, attain a uniform out-of-plane impact strength, off-setting the designs in each stage is proposed. The sandwich structures with first and second-order self-similar hybrid cores are observed to withstand impact velocities as high as 170 m/s and 270 m/s, respectively.
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用于冲击应用的蜂巢-蜘蛛网启发自相似混合蜂窝结构
受自然界自相似设计的启发,本文提出了一种基于蜂窝-蜘蛛网的自相似混合细胞结构,用于在冲击应用中有效吸收能量。通过优化给定质量的几何和拓扑结构来增强能量吸收。提出的混合细胞结构是在对拓扑增强的自相似结构进行深入分析后得出的。优化后的单元设计经过了严格的测试,考虑了包括挤压和高速子弹撞击在内的动载荷。此外,厚度的影响,径向连通性和图案的顺序在单位细胞水平也进行了研究。所获得的最大破碎效率大于95%,明显高于大多数现有的传统设计。随后,在挤压分析过程中开发的一阶和二阶层次自相似单元设计被用于制备夹层结构的芯。采用标准的9毫米副隔板对开发的夹层结构进行了冲击试验。在保持夹层结构总厚度和总质量不变的情况下,研究了多层结构对抗冲击性能的影响。此外,为了避免分层薄弱区,从而获得均匀的面外冲击强度,建议在每个阶段进行偏移设计。具有一阶和二阶自相似混合岩心的夹层结构分别能够承受高达170 m/s和270 m/s的冲击速度。
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来源期刊
Defence Technology(防务技术)
Defence Technology(防务技术) Mechanical Engineering, Control and Systems Engineering, Industrial and Manufacturing Engineering
CiteScore
8.70
自引率
0.00%
发文量
728
审稿时长
25 days
期刊介绍: Defence Technology, a peer reviewed journal, is published monthly and aims to become the best international academic exchange platform for the research related to defence technology. It publishes original research papers having direct bearing on defence, with a balanced coverage on analytical, experimental, numerical simulation and applied investigations. It covers various disciplines of science, technology and engineering.
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