Numerical Simulation of Dynamic Response of Foam Aluminum Sandwich Panel Under Impact Load

W. Wan, Li Xiaobin, Li Jiang, L. Pu
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Abstract

The impact resistance of protective structure directly affects the vitality of the ship. Since the excellent energy absorption characteristics and lightweight structural forms, foamed aluminum sandwich panels have gradually replaced stiffened panels and are widely used in local structures and components of vessels. In order to improve the protective ability of the ship structure, the impact resistance of the foam aluminum sandwich panel is studied in this paper. The deformation mechanism of the foam aluminum sandwich panel under the impact of the foam aluminum projectile is simulated by the finite element analysis, and the effect of different core thickness and core strength on the dynamic response of the sandwich panel is studied. An optimized structural form is proposed for the shear failure of foam aluminum sandwich panels. The results show that the optimized structure improves the impact resistance of foam aluminum sandwich panel and the shear resistance of the intermediate core layer. The research of this paper provides reference for the optimization of foam metal sandwich structure and its application in ship protection structure.
冲击载荷作用下泡沫铝夹芯板动力响应的数值模拟
防护结构的抗冲击性直接影响到船舶的生命力。泡沫铝夹芯板由于具有优良的吸能特性和轻便的结构形式,已逐渐取代加筋板,广泛应用于局部结构和船舶构件中。为了提高船舶结构的防护能力,本文对泡沫铝夹芯板的抗冲击性能进行了研究。通过有限元分析模拟了泡沫铝夹芯板在泡沫铝弹丸冲击下的变形机理,研究了不同芯层厚度和芯层强度对夹芯板动力响应的影响。提出了泡沫铝夹芯板剪切破坏的优化结构形式。结果表明,优化后的结构提高了泡沫铝夹芯板的抗冲击性能和中间芯层的抗剪切性能。本文的研究为泡沫金属夹层结构的优化及其在船舶防护结构中的应用提供了参考。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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