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Unifying lamination parameters with spectral-Tchebychev method for variable-stiffness composite plate design

机译:统一叠层参数,具有可变刚度复合板设计的谱 - TchebyChev方法

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摘要

This paper describes an efficient framework for the design and optimization of the variable-stiffness composite plates. Equations of motion are solved using a Tchebychev polynomials-based spectral modeling approach that is extended for the classical laminated plate theory. This approach provides highly significant analysis speed-ups with respect to the conventional finite element method. The proposed framework builds on a variable-stiffness laminate design methodology that utilizes lamination parameters for representing the stiffness properties compactly and master node variables for modeling the stiffness variation through distance-based interpolation. The current study improves the existing method by optimizing the locations of the master nodes in addition to their lamination parameter values. The optimization process is promoted by the computationally efficient spectral-Tchebychev solution method. Case studies are performed for maximizing the fundamental frequencies of the plates with different boundary conditions and aspect ratios. The results show that significant improvements can be rapidly achieved compared to optimal constant-stiffness designs by utilizing the developed framework. In addition, the optimization of master node locations resulted in additional improvements in the optimal response values highlighting the importance of including the node positions within the design variables.
机译:本文介绍了可变刚度复合板的设计和优化的有效框架。使用基于Tchebochev多项式的基于多项式的光谱建模方法来解决运动方程,其延伸用于经典层压板理论。该方法提供了相对于传统有限元方法的高度显着的分析速度。所提出的框架构建在可变刚度层压化设计方法上,利用叠层参数来表示刚度特性的紧凑型和主节点变量,用于通过基于距离的内插对刚度变化进行建模。除了它们的层压参数值之外,目前的研究通过优化主节点的位置来改善现有方法。通过计算有效的频谱-Tchebychev解决方法来促进优化过程。进行案例研究,用于最大化具有不同边界条件和纵横比的板的基本频率。结果表明,通过利用发达的框架,与最佳恒定刚度设计相比,可以快速实现显着的改进。此外,主节点位置的优化导致最佳响应值中的额外改进,突出显示包括设计变量内的节点位置的重要性。

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