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首页> 外文期刊>International Journal of Engineering Science >Plastic buckling of moderately thick hemispherical shells subjected to concentrated load on top
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Plastic buckling of moderately thick hemispherical shells subjected to concentrated load on top

机译:在顶部集中载荷的中等厚度半球形壳的塑性屈曲

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This study presents the analytical, numerical, and experimental results of moderately thick hemispherical metal shells into the plastic buckling range illustrating the importance of geometry changes on the buckling load. The hemispherical shell is rigidly supported around the base circumference against horizontal translation and the load is vertically applied by a rigid cylindrical boss at the apex. Kinematics stages of initial buckling and subsequent propagation of plastic deformation for rigid-perfectly plastic shells are formulated on the basis of Drucker-Shield's limited interaction yield condition. The effect of the radius of the boss, used to apply the loading, on the initial and subsequent collapse load is studied. In the numerical model, the material is assumed to be isotropic and linear elastic perfectly plastic without strain hardening obeying the Tresca or Von Mises yield criterion. Both axi-symmmetric and 3D models are implemented in the numerical work to verify the absence of non-symmetric deformation modes in the case of moderately thick shells. In the end, the results of the analytical solution are compared and verified with the numerical results using ABAQUS software and experimental findings. Good agreement is observed between the load-deflection curves obtained using three different approaches.
机译:这项研究提出了中等厚度的半球形金属壳进入塑性屈曲范围的分析,数值和实验结果,说明了几何形状变化对屈曲载荷的重要性。半球形壳体被牢固地支撑在基部圆周周围,以防止水平平移,并且载荷由顶点处的刚性圆柱凸起垂直施加。在Drucker-Shield有限的相互作用屈服条件的基础上,提出了刚度完美的塑料壳的初始屈曲和随后塑性变形传播的运动学阶段。研究了用于施加载荷的凸台半径对初始和后续坍塌载荷的影响。在数值模型中,假定材料为各向同性且线性弹性完美的塑料,没有遵循Tresca或Von Mises屈服准则的应变硬化。数值工作中均采用了轴对称模型和3D模型,以验证在中等厚度壳体的情况下不存在非对称变形模式。最后,使用ABAQUS软件和实验结果将分析溶液的结果与数值结果进行比较和验证。使用三种不同方法获得的载荷-挠度曲线之间观察到良好的一致性。

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