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Constructive Solid Geometry Based Topology Optimization Using Evolutionary Algorithm

机译:基于结构的实心几何基于基于几何的拓扑优化使用进化算法

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Over the past two decades, structural optimization has been performed extensively by researchers across the world. Most recent investigations have focused on increasing the efficiency and robustness of gradient based optimization techniques and extending them to multidisciplinary objective functions. The existing global optimization techniques suffer with requirement of enormous computational effort due to large number of variables used in grid discretization of problem domain. The paper proposes a novel methodology named as Constructive Geometry Topology Optimization Method (CG-TOM) for topology optimization problems. It utilizes a set of nodes and overlapping primitives to obtain the geometry. A novel graph based repair operator is used to ensure consistent design and real parameter genetic algorithm is used for optimization. Results for standard benchmark problems for compliance minimization have been found to give better results than existing methods in literature. The method is generic and can be extended to any two or three dimensional topology optimization problem using different primitives.
机译:在过去的二十年中,结构优化是由世界各地的研究人员进行广泛的。最近的调查侧重于提高基于梯度基于优化技术的效率和稳健性,并将其扩展到多学科目标函数。由于问题域网格离散化的大量变量,现有的全局优化技术遭受了巨大的计算努力。本文提出了一种作为构造几何拓扑优化方法(CG-TOM)的新型方法,用于拓扑优化问题。它利用一组节点和重叠的基元以获得几何形状。基于曲线图的维修操作员用于确保一致的设计和实际参数遗传算法用于优化。已经发现合规性最小化的标准基准问题的结果可以提供比文献中现有方法更好的结果。该方法是通用的,可以使用不同的基元扩展到任何两个或三维拓扑优化问题。

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