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Critical buckling load prediction of axially compressed cylindrical shell based on non-destructive probing method

机译:基于无损探测方法的轴向压缩圆柱壳临界屈曲载荷预测

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Critical buckling load prediction of axially compressed cylindrical shell is investigated based on the non-destructive probing method in this paper. Finite element model of the cylindrical shell under combined axial load and radial probe is established using ABAQUS and the static modified Newton-Raphson method that uses artificial damping is chosen in the geometrically and materially nonlinear buckling analysis. By the means of repeatedly probing the shell under different prescribed axial loads, the three-dimensional representation of probe force, probe displacement and prescribed axial load is established. Based on that, the critical buckling load of the shell is predicted by the fitting curve that reflecting the relationship between the maximum probe force and the prescribed axial load. Applying this prediction method, the perfect cylindrical shell, the cylindrical shells with dimple-shape imperfections and the cylindrical shell with measured imperfections have been studied. All of the predicted results are compared with the real critical loads in buckling behavior of the shells under axial compression. Effects of poker size and probing location on the prediction results are analyzed. Results show that the critical loads for the first buckling pattern of the cylindrical shells with notable local imperfections can be predicted accurately when the shell is probed at the location with the largest imperfection amplitude. If the shell is probed away from that area, the predicted result will become much larger. Compared to the probing location, the poker size has little effect on the prediction results. For the cylindrical shell with measured imperfections, probing at the location with largest imperfection amplitude has achieved the most accurate prediction result. Besides, the predicted critical buckling loads obtained by probing at other locations are also acceptable. It is believed that for a general cylindrical shell without notable local defects, the smallest one of different predicted results obtained by probing a series of representative locations on the cylindrical shell could be regarded as the critical buckling load.
机译:基于无损探测方法,研究了轴向压缩圆柱壳的临界屈曲载荷预测。利用ABAQUS建立了轴向载荷和径向探针共同作用下圆柱壳的有限元模型,并在几何和材料非线性屈曲分析中选择了采用人工阻尼的静态修正牛顿-拉夫森方法。通过在不同的规定轴向载荷下反复探测壳体,建立了测头力,测头位移和规定轴向载荷的三维表示。在此基础上,通过拟合曲线预测壳体的临界屈曲载荷,该曲线反映了最大探测力和规定轴向载荷之间的关系。应用这种预测方法,研究了理想的圆柱壳,具有凹痕形状缺陷的圆柱壳和具有测量缺陷的圆柱壳。将所有的预测结果与在轴向压缩下的壳体屈曲性能中的实际临界载荷进行了比较。分析了扑克大小和探测位置对预测结果的影响。结果表明,当在具有最大缺陷振幅的位置处探查壳体时,可以准确预测具有明显局部缺陷的圆柱壳的第一个屈曲模式的临界载荷。如果从该区域探测外壳,则预测结果将变得更大。与探测位置相比,扑克大小对预测结果影响很小。对于具有测量缺陷的圆柱壳,在具有最大缺陷幅度的位置进行探测已获得最准确的预测结果。此外,通过在其他位置探测获得的预测临界屈曲载荷也是可以接受的。可以相信,对于没有明显局部缺陷的普通圆柱壳,通过探测圆柱壳上的一系列代表性位置而获得的不同预测结果中的最小预测值可以视为临界屈曲载荷。

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