An Integrated MATLAB Code for Homogenization-Based Topology Optimization and Generating Functionally Graded Surface Lattices for Additive Manufacturing

IF 3.3 3区 材料科学 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY
Mirhan Ozdemir, Ugur Simsek, Cemal Efe Gayir, Kadir Gunaydin, Orhan Gulcan
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Abstract

Triply periodic minimal surfaces (TPMS) lattices are gaining popularity for enhancing structural efficiency in many engineering applications. Functionally graded TPMS structures provide more customized mechanical properties and improved functionality compared to typical homogenous designs by deliberately altering material properties throughout the lattice. This study presents a novel framework by integrating a homogenization-based topology optimization method with functionally graded lattice creation, utilizing a streamlined and versatile MATLAB code. The methodology encompasses several essential phases, including preprocessing, finite element analysis, sensitivity analysis, density filtering, optimization, element density visualization, and lattice reconstruction. These steps facilitate the development of highly efficient lattice structures with varied attributes, rendering them optimal for additive manufacturing and full-scale analysis. To ensure the accuracy of the established methodology, three optimization case studies with different boundary conditions are defined, and the mechanical reactions of the optimized lattice structures in filled with different TPMS structures are extensively validated by comparing them to both full-scale finite element models and experiments. The comparative results demonstrate that the mechanical responses obtained from topological analysis closely correspond to those acquired from full-scale models and experiments.

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基于均质化的增材制造拓扑优化与功能梯度表面网格生成的集成MATLAB代码
三周期极小表面(TPMS)晶格在许多工程应用中越来越受到欢迎,以提高结构效率。与典型的均匀设计相比,功能梯度TPMS结构通过故意改变整个晶格的材料特性,提供了更多定制的机械性能和改进的功能。本研究通过将基于均质化的拓扑优化方法与功能梯度晶格创建相结合,利用流线型和通用的MATLAB代码,提出了一个新的框架。该方法包括几个基本阶段,包括预处理、有限元分析、灵敏度分析、密度滤波、优化、元素密度可视化和晶格重建。这些步骤促进了具有不同属性的高效晶格结构的发展,使其成为增材制造和全尺寸分析的最佳选择。为了确保所建立方法的准确性,定义了三个具有不同边界条件的优化案例研究,并通过与全尺寸有限元模型和实验相比较,广泛验证了优化后的晶格结构在填充不同TPMS结构时的力学反应。对比结果表明,拓扑分析得到的力学响应与全尺寸模型和实验结果吻合较好。
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来源期刊
Advanced Engineering Materials
Advanced Engineering Materials 工程技术-材料科学:综合
CiteScore
5.70
自引率
5.60%
发文量
544
审稿时长
1.7 months
期刊介绍: Advanced Engineering Materials is the membership journal of three leading European Materials Societies - German Materials Society/DGM, - French Materials Society/SF2M, - Swiss Materials Federation/SVMT.
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