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首页> 外文期刊>Composite Structures >Quasi-static and low-velocity impact behavior of the bio-inspired hybrid Al/GFRP sandwich tube with hierarchical core: Experimental and numerical investigation
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Quasi-static and low-velocity impact behavior of the bio-inspired hybrid Al/GFRP sandwich tube with hierarchical core: Experimental and numerical investigation

机译:Bio-Inspired Hybrid Al / GFRP三明治管的准静态和低速冲击行为,具有等级核心:实验和数值调查

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Sandwich tube structures bio-mimicking horsetail and human tendons offered significant improvement over traditional single and multi-cell tubular energy absorbers. The present research aims to investigate three manufactured hybrid multi-cell aluminum and GFRP sandwich tubes subjected to quasi-static and low-velocity axial compression. The crashworthiness characteristics and axial crushing failure mechanisms of sandwich tubes are discussed and compared with the quasi-static axial behavior of single Al and GFRP tubes. Further investigations, based on the validation of an FE model versus experimental results, using the commercial finite element code LSDYNA, on the effects of material permutation and inner tubes diameter are perceived through the full-factorial approach of FE parametric study. The quasi-static results revealed that, packing the Al and GFRP tubes in the form of multi-cell sandwich tube generally improves the crushing patterns of individual hollow tubes. Moreover, the low-velocity response of the hybrid multi-cell sandwich tubes showed that the crushing response of the GFRP components despite AL ones depends significantly on the strain rate, where Al tubes undergo irregular diamond deformation. Eventually the results of bio-inspired hybrid multi-cell sandwich tubes indicate that incorporating more GFRP tubes provided an optimal crashworthy design and conduce to a broad range of applications within aerospace, transportation.
机译:夹层管结构生物模仿马尾和人肌腱对传统的单细胞和多细胞管状能量吸收剂具有显着的改善。本研究旨在研究三种制造的混合多电池铝和GFRP夹层管经过准静态和低速轴向压缩。讨论了夹层管的耐火性特性和轴压破坏机制,并与单人和GFRP管的准静态轴向行为进行了讨论。通过使用商业有限元码LSDYNA的FE模型与实验结果的验证,进一步调查通过FE参数研究的全部阶段置换来验证材料置换和内管直径的效果。准静态结果显示,以多池夹层管的形式包装Al和GFRP管通常改善单个中空管的破碎图案。此外,杂交多细胞夹心管的低速响应表明,尽管AL的抗GFRP组分的破碎响应在显着取决于应变率,其中Al管经过不规则的金刚石变形。最终,生物启发式混合多细胞三明治管的结果表明,采用更多GFRP管提供最佳的Crashworthy设计,并融入航空航天内的广泛应用。

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