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基于增材制造的多功能点阵结构先进设计与工艺策略

Additive Manufacturing-Enabled Advanced Design and Process Strategies for Multi-Functional Lattice Structures.

作者信息

Bhat Chinmai, Prajapati Mayur Jiyalal, Kumar Ajeet, Jeng Jeng-Ywan

机构信息

High-Value Biomaterials Research and Commercialization Center, National Taipei University of Technology, No. 1, Section 3, Zhongxiao East Road, Taipei 106, Taiwan.

Taiwan High Speed 3D Printing Research Center, National Taiwan University of Science and Technology, No. 43, Sec. 4, Keelung Rd, Taipei 106, Taiwan.

出版信息

Materials (Basel). 2024 Jul 9;17(14):3398. doi: 10.3390/ma17143398.

Abstract

The properties of each lattice structure are a function of four basic lattice factors, namely the morphology of the unit cell, its tessellation, relative density, and the material properties. The recent advancements in additive manufacturing (AM) have facilitated the easy manipulation of these factors to obtain desired functionalities. This review attempts to expound on several such strategies to manipulate these lattice factors. Several design-based grading strategies, such as functional grading, with respect to size and density manipulation, multi-morphology, and spatial arrangement strategies, have been discussed and their link to the natural occurrences are highlighted. Furthermore, special emphasis is given to the recently designed tessellation strategies to deliver multi-functional lattice responses. Each tessellation on its own acts as a novel material, thereby tuning the required properties. The subsequent section explores various material processing techniques with respect to multi-material AM to achieve multi-functional properties. The sequential combination of multiple materials generates novel properties that a single material cannot achieve. The last section explores the scope for combining the design and process strategies to obtain unique lattice structures capable of catering to advanced requirements. In addition, the future role of artificial intelligence and machine learning in developing function-specific lattice properties is highlighted.

摘要

每种晶格结构的特性取决于四个基本晶格因素,即晶胞的形态、其镶嵌方式、相对密度和材料特性。增材制造(AM)的最新进展使得能够轻松操控这些因素以获得所需的功能。本综述试图阐述几种操控这些晶格因素的策略。文中讨论了几种基于设计的分级策略,如关于尺寸和密度操控的功能分级、多形态以及空间排列策略,并强调了它们与自然现象的联系。此外,特别强调了最近设计的用于实现多功能晶格响应的镶嵌策略。每种镶嵌方式本身都可作为一种新型材料,从而调整所需的特性。随后的部分探讨了关于多材料增材制造以实现多功能特性的各种材料加工技术。多种材料的顺序组合会产生单一材料无法实现的新颖特性。最后一部分探讨了结合设计和工艺策略以获得能够满足先进要求的独特晶格结构的可能性。此外,还强调了人工智能和机器学习在开发特定功能晶格特性方面的未来作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/94c6/11277650/2197a622dac6/materials-17-03398-g001.jpg

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