A Hybrid Data-Driven Metaheuristic Framework to Optimize Strain of Lattice Structures Proceeded by Additive Manufacturing

材料科学 小旋翼机 相对密度 选择性激光熔化 立体光刻 选择性激光烧结 晶格常数 复合材料 格子(音乐) 拓扑(电路) 机械工程 聚合物 微观结构 烧结 数学 光学 工程类 共聚物 组合数学 声学 物理 衍射
作者
Tao Zhang,Uzair Sajjad,Akash Sengupta,Mubasher Ali,Muhammad Sultan,Khalid Hamid
出处
期刊:Micromachines [MDPI AG]
卷期号:14 (10): 1924-1924 被引量:2
标识
DOI:10.3390/mi14101924
摘要

This research is centered on optimizing the mechanical properties of additively manufactured (AM) lattice structures via strain optimization by controlling different design and process parameters such as stress, unit cell size, total height, width, and relative density. In this regard, numerous topologies, including sea urchin (open cell) structure, honeycomb, and Kelvin structures simple, round, and crossbar (2 × 2), were considered that were fabricated using different materials such as plastics (PLA, PA12), metal (316L stainless steel), and polymer (thiol-ene) via numerous AM technologies, including stereolithography (SLA), multijet fusion (MJF), fused deposition modeling (FDM), direct metal laser sintering (DMLS), and selective laser melting (SLM). The developed deep-learning-driven genetic metaheuristic algorithm was able to achieve a particular strain value for a considered topology of the lattice structure by controlling the considered input parameters. For instance, in order to achieve a strain value of 2.8 × 10−6 mm/mm for the sea urchin structure, the developed model suggests the optimal stress (11.9 MPa), unit cell size (11.4 mm), total height (42.5 mm), breadth (8.7 mm), width (17.29 mm), and relative density (6.67%). Similarly, these parameters were controlled to optimize the strain for other investigated lattice structures. This framework can be helpful in designing various AM lattice structures of desired mechanical qualities.
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