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Simultaneous isogeometrical shape and material design of functionally graded structures for optimal eigenfrequencies

机译:功能梯度结构的同等几何形状和材料设计,以实现最佳本征频率

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摘要

A new optimization strategy for eigenfrequency optimization of functionally graded (FG) structures within the framework of isogeometric analysis (IGA) approach is introduced. The proposed methodology which utilizes a concurrent procedure by combining the shape and material composition optimization of these structures employs an extended form of the standard IGA method by allowing for gradation of material properties through patches. The distributions of the graded material properties are considered as imaginary surfaces over the computational domain and captured in a fully isogeometric formulation using the same NURBS-based parameterization which is employed for the geometry modeling as well as the solution approximation. Considering the in-plane coordinates of the control points defining the design boundary surfaces as well as the applicates of all the control points describing the variations of material properties as design variables, we subsequently adopt a mathematical programming algorithm to simultaneously find the optimum shape and material composition of FG structures. A couple of illustrative numerical examples in 2D elasticity with eigenfrequencies as their either constraints or objective functions are presented to demonstrate the high performance of the proposed methodology. It will be seen that the obtained results by this concurrent optimization procedure have much better dynamic performance compared to the optimal results of the simple shape or material composition design.
机译:介绍了一种在等几何分析(IGA)方法框架内进行功能梯度(FG)结构特征频率优化的新优化策略。通过结合这些结构的形状和材料成分优化来利用并发程序的所提出的方法通过允许通过补丁的材料特性的等级采用标准IGA方法的扩展形式。渐变材料特性的分布被视为计算域上的虚构表面,并使用相同的基于NURBS的参数化方法(用于几何建模以及求解近似)以完全等几何的公式表示。考虑到定义设计边界面的控制点的平面坐标以及描述材料特性变化的所有控制点的应用作为设计变量,我们随后采用数学编程算法来同时找到最佳形状和材料FG结构的组成。在二维弹性的两个示例性数值示例中,以本征频率作为约束或目标函数,以证明所提出方法的高性能。可以看出,与简单形状或材料成分设计的最佳结果相比,通过该并行优化过程获得的结果具有更好的动态性能。

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