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DECOMPOSITION-BASED ASSEMBLY SYNTHESIS FOR MAXIMUM STRUCTURAL STRENGTH AND MODULARITY

机译:基于分解的组件综合最大结构强度和模块性

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摘要

This study presents a systematic decomposition process to carry out assembly synthesis as a tool during the conceptual design phase of a product. Two configurations obtained by structural topology optimization are decomposed automatically into assemblies consisting of multiple members with simpler geometries. The optimal decomposition can be posed as a graph partitioning problem, which is actually a discrete optimization task. Considering the nonlinearity and the corresponding computational overhead of the problem, a steady-state genetic algorithm is employed as the optimization method. The final objective function attempts to find a solution that brings about two structures with maximum structural strength, maximum assemblability, and one or more components that can be shared by both products. The software implementation is carried out and a typical problem is solved using the procedure. It is observed that the algorithm manages to find an acceptable solution, allowing the commonality of one component in both end products and still maintaining a good structural strength and assemblability.
机译:这项研究提出了一个系统的分解过程,可以在产品的概念设计阶段将装配综合作为一种工具进行。通过结构拓扑优化获得的两个配置会自动分解为由多个具有简单几何形状的构件组成的装配。最优分解可以作为图分区问题,实际上这是一个离散的优化任务。考虑到问题的非线性和相应的计算开销,采用稳态遗传算法作为优化方法。最终的目标函数试图找到一种解决方案,该解决方案可以使两个结构具有最大的结构强度,最大的可组装性,以及两个产品可以共享的一个或多个组件。使用该过程进行软件实现并解决典型问题。可以观察到,该算法设法找到了可接受的解决方案,从而允许两个最终产品中的一个组件具有通用性,并且仍然保持了良好的结构强度和可组装性。

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