FML tubular inversion for improved specific energy absorption

V. Gattineni, V. Nathi
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Abstract

In the transportation sector, circular tubular sections were widely chosen as energy absorbers. Research has shown that the designs made of tubular inversions effectively avoid the bending modes and assist in energy absorption smoothly and gradually, as can be observed from the respective (compressive) force-deflection curves. But metallic tubular inversions usually have low specific energy absorption capacity, due to their weight. The present study explores the use of fiber metal laminate inversions made up of a combination of metal and fiber, with a focus to improve specific energy absorption. The initial metallic design configuration has been proposed based on the packaging volume available. The design has been further improved by the addition of splines as stiffeners. The material of the inversion configuration is then changed to avoid metallic damage. The design has been further improved by the adoption of fiber metal laminates to improve specific energy absorption and ease of manufacturing. The energy absorption calculations have done using finite element analysis methods. The energy absorption capacity of the stepped tube configuration with splines have been compared with that of the fiber metallic laminate configuration and the specific energy absorption capability compared.
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FML管状倒置,提高比能吸收
在交通运输部门,圆形管状截面被广泛选择作为能量吸收器。研究表明,从各自的(压缩)力-挠度曲线可以看出,管状倒置设计有效地避免了弯曲模式,并有助于平稳渐进地吸收能量。但金属管状倒置管由于其重量,通常具有较低的比能吸收能力。本研究探索了由金属和纤维组合而成的纤维金属层压板反转的使用,重点是提高比能量吸收。根据可用的包装体积提出了初始金属设计配置。通过增加花键作为加强筋,进一步改进了设计。然后改变反转结构的材料,以避免金属损伤。通过采用金属纤维层压板进一步改进了设计,提高了比能吸收率和易于制造。利用有限元分析方法进行了吸能计算。比较了带花键的阶梯管结构与金属纤维层压结构的吸能能力和比能吸收能力。
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