Effect of fillers on compression loading performance of modified re-entrant honeycomb auxetic sandwich structures

IF 1.4 4区 工程技术 Q3 ENGINEERING, MECHANICAL
Nadimul Haque Faisal, Lindsay ‐ Scott, Findlay Booth, S. Duncan, Abbi McLeod, Mohamad Ghazi Droubi, J. Njuguna
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引用次数: 2

Abstract

The auxetic sandwich panels for structures have been designed to provide impact protection. The aim of this work is to modify an auxetic (re-entrant) honeycomb cell to reduce the stress concentrations within the cell structure, and further enhancement of this design. The auxetic structure was filled to achieve a greater energy absorbance and enhance safety applications. Analytical and elastic three-dimensional finite element approaches were used to investigate the structural strength performance. The basic model (i.e. modified re-entrant strut cell design) consisted of the honeycomb auxetic polypropylene (PP) structure sandwiched between two steel plates (known as safety panels) which were placed under static compression loading. The cell geometry and size were then modified to reduce the stress concentration zones. The structure cells were filled with silly putty and polyvinyl chloride (PVC) foam. The effect of the filling the cells on the stress concentration and energy absorbance were analysed using elastic stress and deformation analysis methods. During the stress path analysis, it was found that an increase in Young’s modulus of the filling was directly proportional to a decrease in internal stresses. It was concluded that while filling the basic model with soft materials reduced the stress concentration, but it led to a reduction in the energy absorbance capability. Further on, the lower stress produced by the enhanced could be useful to prevent significant penetration of the protective panel. Compared to similar structures of steel, auxetic foam panels have the advantage of having only a fraction of the weight and being corrosion resistant at the same time as keeping impact strength. Graphical abstract
填料对改进型蜂窝状夹层结构压缩加载性能的影响
用于结构的辅助夹芯板设计用于提供冲击保护。这项工作的目的是修改一个auxetic(重入式)蜂窝细胞,以减少细胞结构内的应力集中,并进一步加强这种设计。填充的消声结构,以实现更大的能量吸收,提高安全性应用。采用解析和弹性三维有限元方法对结构强度性能进行了研究。基本模型(即改进的再入式支撑单元设计)由蜂窝聚丙烯(PP)结构夹在两块钢板(称为安全板)之间组成,钢板置于静压缩载荷下。然后修改细胞的几何形状和大小,以减少应力集中区。结构单元由腻子和聚氯乙烯(PVC)泡沫填充。采用弹性应力和变形分析的方法,分析了填充单元对应力集中和吸能的影响。应力路径分析发现,充填体杨氏模量的增加与内应力的减小成正比。结果表明,用软质材料填充基本模型虽然降低了应力集中,但降低了吸能能力。此外,由增强材料产生的较低应力可用于防止保护板的显著渗透。与类似的钢结构相比,消声泡沫板的优点是重量只有钢的一小部分,而且在保持冲击强度的同时耐腐蚀。图形抽象
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来源期刊
Journal of Strain Analysis for Engineering Design
Journal of Strain Analysis for Engineering Design 工程技术-材料科学:表征与测试
CiteScore
3.50
自引率
6.20%
发文量
25
审稿时长
>12 weeks
期刊介绍: The Journal of Strain Analysis for Engineering Design provides a forum for work relating to the measurement and analysis of strain that is appropriate to engineering design and practice. "Since launching in 1965, The Journal of Strain Analysis has been a collegiate effort, dedicated to providing exemplary service to our authors. We welcome contributions related to analytical, experimental, and numerical techniques for the analysis and/or measurement of stress and/or strain, or studies of relevant material properties and failure modes. Our international Editorial Board contains experts in all of these fields and is keen to encourage papers on novel techniques and innovative applications." Professor Eann Patterson - University of Liverpool, UK This journal is a member of the Committee on Publication Ethics (COPE).
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