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首页> 外文期刊>Journal of offshore mechanics and arctic engineering >Buckling of Unstiffened Steel Cones Subjected to Axial Compression and External Pressure
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Buckling of Unstiffened Steel Cones Subjected to Axial Compression and External Pressure

机译:承受轴向压缩和外部压力的未加强钢锥的屈曲

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摘要

This is the first study into elastic-plastic buckling of unstiffened truncated conical shells under simultaneously acting axial compression and an independent external pressure. This is both a numerical and experimental study. Domains of combined stability are obtained using the finite element method for a range of geometrical parameters. Cones are clamped at one end and free to move axially at the other end, where all the other degrees of freedom remain constrained. Shells are assumed to be from mild steel and the material is modeled as elastic perfectly plastic. The FE results indicate that the static stability domains remain convex. The failure mechanisms, i.e., asymmetric bifurcation and axisymmetric collapse are discussed together with the spread of plastic strains through the wall thickness. Also, the combined stability domains are examined for regions of purely elastic behavior and for regions where plastic straining exists. The latter is not convex and repercussions of that are discussed. The spread of plastic strain is computed for a range of the (radius-to-wall-thickness) ratios. Experimental results are based on laboratory scale models. Here, a single geometry was chosen for validation of numerically predicted static stability domain. Parameters of this geometry were assumed as follows: the ratio of the bigger radius, r_2, to the smaller radius, r_1, was taken as (r_2r_1) = 2.02; the ratio of radius-to-wall-thickness, (r_2/t), was 33.0, and the cone semiangle was 26.56°, while the axial length-to-radius ratio was (hlr_2) = 1.01. Shells were formed by computer numerically controlled machining from 252 mm diameter solid steel billet. They had heavy integral flanges at both ends and models were not stress relieved prior to testing. Details about the test arrangements are provided in the paper.
机译:这是首次研究在未同时作用的轴向压缩和独立的外部压力作用下,未加硬的截头圆锥形壳体的弹塑性屈曲。这是数值研究和实验研究。使用有限元方法获得一系列几何参数的组合稳定性域。圆锥体的一端被夹紧,而另一端则自由地轴向移动,而其他所有自由度都受到约束。假定外壳由低碳钢制成,并且材料建模为具有弹性的完美塑料。有限元结果表明,静态稳定域保持凸。讨论了破坏机理,即不对称分叉和轴对称坍塌,以及塑性应变在壁厚范围内的扩散。同样,检查组合稳定性域的纯弹性行为区域和存在塑性应变的区域。后者不是凸面的,并讨论了其影响。针对一定范围的(半径与壁厚)比率计算塑性应变的分布。实验结果基于实验室规模模型。在这里,选择单个几何体来验证数值预测的静态稳定性域。假定该几何参数如下:较大半径r_2与较小半径r_1的比值取为(r_2r_1)= 2.02;半径与壁厚之比(r_2 / t)为33.0,锥半角为26.56°,而轴向长度与半径之比为(hlr_2)= 1.01。通过计算机数控加工由直径252毫米的实心钢坯形成壳。他们的两端都有沉重的整体式法兰,并且在测试之前无法消除应力。本文提供了有关测试安排的详细信息。

著录项

  • 来源
    《Journal of offshore mechanics and arctic engineering 》 |2012年第3期| p.031603.1-031603.9| 共9页
  • 作者

    J. Btachut; O. Ifayefunmi;

  • 作者单位

    The University of Liverpool Mechanical Engineering, Liverpool, L69 3GH, UK;

    The University of Liverpool Mechanical Engineering, Liverpool, L69 3GH, UK;

  • 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

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