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A numerical study of auxetic composite panels under blast loadings

机译:爆炸载荷作用下复合材料复合板的数值研究

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Sandwich panels composed of auxetic cellular cores and metal facets are presented for blast resistance applications. The performance of this hybrid composite structure under impulsive loading is numerically studied, taking into account the rate-dependent effects. The Johnson Cook law is used to model the behaviours of composite materials at high strain rates. Parametric analyses are performed to evaluate the performances of different designs of composite panels and compared with equivalent monolithic panels of identical areal masses in terms of deformations and dissipated plastic energy of the metal facets and auxetic crushable cores. Various design parameters are considered, including the auxetic unit cell effective Poisson's ratio, material properties, thickness of facet, and diameter of the unit cell truss member. To reduce the computational time, a quarter of the panel is modelled with shell elements for the facets and beam elements for the core. In blast events, auxetic composite panels are found to effectively absorb double the amount of impulsive energy via plastic deformation, and reduce up to 70% of the back facet's maximum velocity when compared with monolithic ones. The maximum back facet displacement is also noticeably reduced by up to 30% due to the densification and plastic deformation of the auxetic cores. (C) 2015 Elsevier Ltd. All rights reserved.
机译:提出了由膨胀蜂窝状芯和金属小面组成的夹芯板,用于抗爆应用。考虑到速率相关的影响,数值研究了这种混合复合材料在冲击载荷下的性能。约翰逊·库克定律用于模拟高应变率下复合材料的行为。进行参数分析以评估不同设计的复合板的性能,并与相同面质量的等效整体板在金属小面和可膨胀压碎型芯的变形和耗散塑性能方面进行比较。考虑了各种设计参数,包括膨胀的单位晶格有效泊松比,材料特性,刻面厚度以及单位晶格桁架构件的直径。为了减少计算时间,对四分之一的面板建模时使用了壳单元作为小平面,梁单元则使用了核心。在爆炸事件中,发现膨胀复合板可通过塑性变形有效地吸收两倍的脉冲能量,并且与整块复合板相比,可降低背面最大速度的70%。由于发芯的致密化和塑性变形,最大后端面位移也明显降低了30%。 (C)2015 Elsevier Ltd.保留所有权利。

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