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Experimental and numerical study on splitting process of circular steel tube with enhanced crashworthiness performance

机译:增强耐撞性能的圆形钢管劈裂过程的实验与数值研究

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摘要

The axial splitting of thin-walled tube is usually considered as an efficient deformation mode to dissipate impact energy thanks to its large stroke ratio. However, the low crushing force and the unstable deformation process, such as crack merging and branching, significantly limit its application in crashworthiness design. In this paper, we propose to enhance the deformation stability through introducing initial kerfs on the inner and outer surfaces of the circular steel tube in its axial direction to guide the propagation of cracks during the splitting process, thus we can improve the crushing force via a significant increase in tube wall thickness. To demonstrate the feasibility of the proposed method, quasi-static compressive experiments on single tube (inner radius r = 55 mm, wall thickness t = 5 mm) and doubled tube (consisted of two tubes with wall thickness t = 5 mm) with kerf depth delta = 0.5 mm split by a radiused die are performed, which exhibit stable deformation processes and high steady-state compression forces (103.32 kN for single tube, and 216.44 kN for doubled tube). Then, finite element simulations are conducted to model the tested samples. It is found that the experimentally observed deformation processes are well captured by simulations, and the relative errors of numerical steady-state compression forces in comparison to experimental results are 0.39% (single tube) and 1.90% (doubled tube), respectively. Finally, based on the validated numerical model, the influence of tube and die dimensions on its crashworthiness performance is discussed. It is observed that the axial load significantly depends on kerf depth, crack number, and tube thickness. The curling radius is nearly not affected by kerf depth, but it almost linearly depends on die radius. Moreover, the tube with larger wall thickness has a higher specific energy absorption.
机译:薄壁管的轴向劈裂由于其较大的冲程比,通常被认为是一种消散冲击能量的有效变形方式。然而,低的压碎力和不稳定的变形过程,例如裂纹合并和分支,极大地限制了其在耐撞性设计中的应用。在本文中,我们建议通过在圆形钢管的内,外表面沿轴向引入初始切口来引导开裂过程中裂纹的扩展,从而提高变形稳定性,从而可以通过以下方式提高破碎力:显着增加管壁厚度。为了证明该方法的可行性,对单根管(内半径r = 55 mm,壁厚t = 5 mm)和双管(由壁厚t = 5 mm的两根管组成)进行准静态压缩实验深度差= 0.5毫米,通过一个圆角模进行分割,表现出稳定的变形过程和高稳态压缩力(单管为103.32 kN,双管为216.44 kN)。然后,进行有限元模拟以对测试样品进行建模。结果发现,通过仿真可以很好地捕获实验观察到的变形过程,与实验结果相比,数值稳态压缩力的相对误差分别为0.39%(单管)和1.90%(双管)。最后,在验证的数值模型的基础上,讨论了管和模具尺寸对其耐撞性能的影响。可以看出,轴向载荷在很大程度上取决于切缝深度,裂纹数量和管子厚度。卷曲半径几乎不受切缝深度的影响,但几乎线性取决于模具半径。而且,壁厚较大的管具有较高的比能量吸收。

著录项

  • 来源
    《Thin-Walled Structures》 |2019年第12期|106406.1-106406.11|共11页
  • 作者单位

    Cent S Univ Sch Traff & Transportat Engn Key Lab Traff Safety Track Minist Educ Changsha 410075 Hunan Peoples R China|Cent S Univ Joint Int Res Lab Key Technol Rail Traff Safety Changsha 410075 Hunan Peoples R China|Cent S Univ Natl & Local Joint Engn Res Ctr Safety Technol Ra Changsha 410075 Hunan Peoples R China;

  • 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

    Kerf; Splitting; Curling; Circular tube; Crashworthiness;

    机译:切尔夫;分裂冰壶圆管;耐撞性;

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