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首页> 外文期刊>Journal of Reinforced Plastics and Composites >Low-velocity impact response of high-performance aluminum foam sandwich structures
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Low-velocity impact response of high-performance aluminum foam sandwich structures

机译:高性能泡沫铝夹芯结构的低速冲击响应

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摘要

The impact response of a range of novel sandwich structures based on fiber-reinforced thermoplastic and fiber-metal laminate (FML) skins is studied. Indentation tests on these structures show that the indentation constants in a generalized indentation law exhibit a rate-sensitive response over the range of loading conditions examined here. Low-velocity impact tests show that these systems are capable of absorbing energy through localized plastic deformation and crushing in the metal core. An energy-balance model accounting for energy dissipation in bending, shear, and indentation effects is used to predict the maximum force during the impact event. It is found that the model accurately predicts the low-velocity impact response of the plain sandwich structures up to energies close to 30 J. In contrast, the model is only capable of predicting the low-energy response of the FML sandwich structures (typically up to 2J). At higher energies, a horizontal shear crack initiates in the metal core causing the maximum force to drop below that predicted by the model. Using an energy-partitioning approach, it is shown that indentation effects account for over half of the energy absorbed in the FML-based sandwich structures.
机译:研究了一系列基于纤维增强的热塑性塑料和纤维金属层压板(FML)蒙皮的新型三明治结构的冲击响应。对这些结构的压痕测试表明,在本文研究的载荷条件范围内,广义压痕定律中的压痕常数表现出速率敏感的响应。低速冲击测试表明,这些系统能够通过局部塑性变形和压碎金属芯来吸收能量。考虑到弯曲,剪切和压痕效应中的能量耗散的能量平衡模型用于预测冲击事件期间的最大力。结果发现,该模型可以准确地预测高达30 J能量的普通夹层结构的低速冲击响应。相反,该模型仅能够预测FML夹层结构的低能量响应(通常向上至2J)。在较高的能量下,金属芯中会出现水平剪切裂纹,导致最大力降至模型所预测的最大力以下。使用能量分配方法表明,压痕效应占基于FML的三明治结构吸收的能量的一半以上。

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