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ON THE BUCKLING OF FUNCTIONALLY GRADED CYLINDRICAL SHELLS UNDER COMBINED EXTERNAL PRESSURE AND AXIAL COMPRESSION

机译:外压与轴压共同作用下功能梯度圆柱壳的屈曲

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The stability problem of a circular cylindrical shell composed of functionally graded materials with Young's modulus varying continuously in the thickness direction under combined lateral pressure and axial compression loads is studied in this paper. The formulation is based on the first order shear deformation theory. A load interaction parameter is defined to express the combination of applied axial compression and external pressure. The stability equations are derived by the adjacent equilibrium criterion method. These equations are employed to analyze the buckling behavior and obtain the critical buckling loads. A detailed numerical study is carried out to bring out the effects of the power law index of functionally graded material, load interaction parameter, thickness ratio, and aspect ratio on the critical buckling loads. Validity of the present analysis was checked by comparing the results with those are available in the literature.
机译:研究了由杨氏模量在梯度方向上连续变化的功能梯度材料制成的圆柱壳的稳定性问题。该公式基于一阶剪切变形理论。定义了一个载荷相互作用参数,以表示施加的轴向压缩和外部压力的组合。稳定性方程式是通过相邻的平衡准则方法得出的。这些方程式被用来分析屈曲行为并获得临界屈曲载荷。进行了详细的数值研究,以得出功能梯度材料的幂律指数,载荷相互作用参数,厚度比和纵横比对临界屈曲载荷的影响。通过将结果与文献中提供的结果进行比较,检查了本分析的有效性。

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