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Lattice topology homogenization and crack propagation through finite element analyses

机译:通过有限元分析晶格拓扑均质化和裂纹传播

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Lattice topology optimization can stimulate the design of new materials with spatially dependent properties for 3D printed components. The present work considers a mounting bracket for an industrial robotic arm as a case study, having as main objective the increase of the fundamental frequency and its mass reduction. A homogenized model based on the lattice optimization was considered by using the ANSYS software: initially the orthotropic lattice material was optimized by using a variable cubic cell lattice density distribution in the geometric model; in the second stage a homogenization procedure considered different volume fractions and variable density for four different types of cells. Starting from a fundamental frequency of 839 Hz for the unoptimized bracket, it increased to 1227 Hz obtained with lattice optimization, and to 1366 Hz after homogenization. The mass was reduced to more than half. A complementary study presents the possibilities available in ANSYS to use the SMART (Separating Morphing and Adaptive Remeshing Technology) procedure for crack-growth simulations.
机译:格子拓扑优化可以刺激具有用于3D印刷部件的空间相关性的新材料的设计。目前的工作考虑了工业机器人手臂作为案例研究的安装支架,主要目的是基本频率的增加及其大气。通过使用ANSYS软件考虑基于晶格优化的均质化模型:最初通过在几何模型中使用可变立方体细胞晶格密度分布来优化正交晶格材料;在第二阶段,均质化程序被认为是四种不同类型细胞的不同体积分数和可变密度。从839 Hz的基本频率开始,对于未优化的支架,它增加到1227 Hz,在晶格优化和均质化后获得1366 Hz。质量减少到一半以上。互补研究呈现了ANSYS中可用的可能性,以利用智能(分离变形和自适应REMESHING技术)程序进行裂缝增长模拟。

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