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Evolutionary truss topology optimization using a graph-based parameterization concept

机译:使用基于图的参数化概念的演化桁架拓扑优化

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摘要

A novel parameterization concept for the optimization of truss structures by means of evolutionary algorithms is presented. The main idea is to represent truss structures as mathematical graphs and directly apply genetic operators, i.e., mutation and crossover, on them. For this purpose, new genetic graph operators are introduced, which are combined with graph algorithms, e.g., Cuthill-McKee reordering, to raise their efficiency. This parameterization concept allows for the concurrent optimization of topology, geometry, and sizing of the truss structures. Furthermore, it is absolutely independent from any kind of ground structure normally reducing the number of possible topologies and sometimes preventing innovative design solutions. A further advantage of this parameterization concept compared to traditional encoding of evolutionary algorithms is the possibility of handling individuals of variable size. Finally, the effectiveness of the concept is demonstrated by examining three numerical examples.
机译:提出了一种通过进化算法优化桁架结构的参数化新概念。主要思想是将桁架结构表示为数学图,并直接在其上应用遗传算子,即突变和交叉。为此,引入了新的遗传图算子,该算子与图算法(例如Cuthill-McKee重排序)相结合,以提高效率。此参数化概念允许同时优化拓扑,几何形状和桁架结构的大小。此外,它绝对独立于任何类型的地面结构,通常减少了可能的拓扑结构数量,有时甚至阻止了创新的设计解决方案。与进化算法的传统编码相比,此参数化概念的另一个优点是可以处理可变大小的个体。最后,通过研究三个数值示例证明了该概念的有效性。

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