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Lightweight design and crash analysis of composite frontal impact energy absorbing structures

机译:复合材料正面冲击吸能结构的轻量化设计与碰撞分析

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摘要

Carbon fibre composites have shown to be able to perform extremely well in the case of a crash and are being used to manufacture dedicated energy-absorbing components, both in the motor sport world and in constructions of aerospace engineering. While in metallic structures the energy absorption is achieved by plastic deformation, in composite ones it relies on the material diffuse fracture. The design of composite parts should provide stable, regular and controlled dissipation of kinetic energy in order to keep the deceleration level as least as possible. That is possible only after detailed analytical, experimental and numerical analysis of the structural crashworthiness. This paper is presenting the steps to follow in order to design specific lightweight impact attenuators. Only after having characterised the composite material to use, it is possible to model and realise simple CFRP tubular structures through mathematical formulation and explicit FE code LS-DYNA. Also, experimental dynamic tests are performed by use of a drop weight test machine. Achieving a good agreement of the results in previously mentioned analyses, follows to the design of impact attenuator with a more complex geometry, as a composite nose cone of the Formula SAE racing car. In particular, the quasi-static test is performed and reported together with numerical simulation of dynamic stroke. In order to initialize the collapse in a stable way, the design of the composite impact attenuator has been completed with a trigger which is consisted of a very simple smoothing (progressive reduction) of the wall thickness. Initial requirements were set in accordance with the 2008 Formula SAE rules and they were satisfied with the final configuration both in experimental and numerical crash analysis.
机译:碳纤维复合材料在碰撞事故中表现出极佳的性能,并已被用于制造专用的能量吸收组件,无论是在赛车运动领域还是在航空工程领域。在金属结构中,能量吸收是通过塑性变形实现的,而在复合材料中,能量吸收是依靠材料的扩散断裂。复合零件的设计应提供动能的稳定,规则和可控制的耗散,以使减速度水平保持最小。只有在对结构的耐撞性进行详细的分析,实验和数值分析之后,才有可能做到这一点。本文介绍了设计特定的轻型冲击衰减器应遵循的步骤。只有在表征了要使用的复合材料之后,才可以通过数学公式和明确的FE代码LS-DYNA来建模和实现简单的CFRP管状结构。同样,通过使用落锤测试机进行实验动态测试。在前面提到的分析中,取得了与上述结果很好的一致性,然后设计了具有更复杂几何形状的冲击衰减器,作为Formula SAE赛车的复合鼻锥。特别地,执行准静态测试并将其与动态行程的数值模拟一起报告。为了以一种稳定的方式初始化塌陷,复合式冲击衰减器的设计已经完成了触发器,该触发器由非常简单的壁厚平滑(逐渐减小)组成。初始要求是根据2008 Formula SAE规则设置的,并且它们对实验和数值碰撞分析中的最终配置都感到满意。

著录项

  • 来源
    《Composite Structures》 |2012年第2期|p.423-430|共8页
  • 作者单位

    Department of Mechanics (DIMEC), Politecnico di Torino, Duca degli Abruzzi, 24, 10129 Torino, Italy;

    School of Science and Technology, University of Camerino, Madonna delle Carceri, 9, 62032 Camerino, Italy;

    Department of Mechanics (DIMEC), Politecnico di Torino, Duca degli Abruzzi, 24, 10129 Torino, Italy;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    lightweight design; CFRP tubes; impact attenuator; crashworthiness;

    机译:轻巧的设计;CFRP管;冲击衰减器耐撞性;

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