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Design Of Variable-stiffness Composite Panels For Maximum Buckling Load

机译:最大屈曲载荷的变刚度复合板设计

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A generalized reciprocal approximation is presented for design of variable-stiffness laminated composite panels for maximum buckling load. The buckling load is expanded in terms of the inverse of the stiffness tensor. For discretized panels such an approximation has the important property of being separable, which allows the maximization to be carried out at each discrete node separate from the others. This makes the algorithm particularly suited to parallel computations. The sensitivity analysis is performed exactly using an adjoint method, requiring only one back substitution using the already factored inplane stiffness matrix with different right hand sides to compute the sensitivities for all design variables. A conforming CLPT finite element is used for the buckling analysis of rectangular plates and the proposed reciprocal approximation is used to update fiber orientation angles at each finite element node. Numerical results obtained for rectangular plates show that significant improvements can be gained in the buckling load by allowing the stiffness properties to vary spatially. The case of repeated eigenvalues is handled using a dual formulation.
机译:为可变刚度层压复合板的最大屈曲载荷设计提供了一种通用的倒数近似法。屈曲载荷根据刚度张量的倒数扩展。对于离散面板,这种近似具有可分离的重要特性,这允许在彼此分离的每个离散节点处执行最大化。这使得该算法特别适合于并行计算。灵敏度分析是使用伴随方法精确执行的,仅需使用已经分解的平面内刚度矩阵进行一次向后替换,并使用右手边计算所有设计变量的灵敏度。符合标准的CLPT有限元用于矩形板的屈曲分析,并且所提出的倒数近似用于更新每个有限元节点处的纤维取向角。矩形板获得的数值结果表明,通过允许刚度属性在空间上变化,可以在屈曲载荷方面获得显着改善。特征值重复的情况使用对偶公式处理。

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