A Novel Design Framework for Structures/Materials with Enhanced Mechanical Performance
Structure/material requires simultaneous consideration of both its design and manufacturing processes to dramatically enhance its manufacturability, assembly and maintainability. In this work, a novel design framework for structural/material with a desired mechanical performance and compelling topol...
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doaj-d0812b51e1154fc494a8dcec701e1c752020-11-24T20:48:55ZengMDPI AGMaterials1996-19442018-04-0111457610.3390/ma11040576ma11040576A Novel Design Framework for Structures/Materials with Enhanced Mechanical PerformanceJie Liu0Xiaonan Fan1Guilin Wen2Qixiang Qing3Hongxin Wang4Gang Zhao5Center for Research on Leading Technology of Special Equipment, School of Mechanical and Electric Engineering, Guangzhou University, Guangzhou 510006, ChinaState Key Laboratory of Advanced Design and Manufacturing for Vehicle Body, Hunan University, Changsha 410082, ChinaCenter for Research on Leading Technology of Special Equipment, School of Mechanical and Electric Engineering, Guangzhou University, Guangzhou 510006, ChinaState Key Laboratory of Advanced Design and Manufacturing for Vehicle Body, Hunan University, Changsha 410082, ChinaState Key Laboratory of Advanced Design and Manufacturing for Vehicle Body, Hunan University, Changsha 410082, ChinaState Key Laboratory of Advanced Design and Manufacturing for Vehicle Body, Hunan University, Changsha 410082, ChinaStructure/material requires simultaneous consideration of both its design and manufacturing processes to dramatically enhance its manufacturability, assembly and maintainability. In this work, a novel design framework for structural/material with a desired mechanical performance and compelling topological design properties achieved using origami techniques is presented. The framework comprises four procedures, including topological design, unfold, reduction manufacturing, and fold. The topological design method, i.e., the solid isotropic material penalization (SIMP) method, serves to optimize the structure in order to achieve the preferred mechanical characteristics, and the origami technique is exploited to allow the structure to be rapidly and easily fabricated. Topological design and unfold procedures can be conveniently completed in a computer; then, reduction manufacturing, i.e., cutting, is performed to remove materials from the unfolded flat plate; the final structure is obtained by folding out the plate from the previous procedure. A series of cantilevers, consisting of origami parallel creases and Miura-ori (usually regarded as a metamaterial) and made of paperboard, are designed with the least weight and the required stiffness by using the proposed framework. The findings here furnish an alternative design framework for engineering structures that could be better than the 3D-printing technique, especially for large structures made of thin metal materials.http://www.mdpi.com/1996-1944/11/4/576design and fabrication frameworkorigamitopological design |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Jie Liu Xiaonan Fan Guilin Wen Qixiang Qing Hongxin Wang Gang Zhao |
spellingShingle |
Jie Liu Xiaonan Fan Guilin Wen Qixiang Qing Hongxin Wang Gang Zhao A Novel Design Framework for Structures/Materials with Enhanced Mechanical Performance Materials design and fabrication framework origami topological design |
author_facet |
Jie Liu Xiaonan Fan Guilin Wen Qixiang Qing Hongxin Wang Gang Zhao |
author_sort |
Jie Liu |
title |
A Novel Design Framework for Structures/Materials with Enhanced Mechanical Performance |
title_short |
A Novel Design Framework for Structures/Materials with Enhanced Mechanical Performance |
title_full |
A Novel Design Framework for Structures/Materials with Enhanced Mechanical Performance |
title_fullStr |
A Novel Design Framework for Structures/Materials with Enhanced Mechanical Performance |
title_full_unstemmed |
A Novel Design Framework for Structures/Materials with Enhanced Mechanical Performance |
title_sort |
novel design framework for structures/materials with enhanced mechanical performance |
publisher |
MDPI AG |
series |
Materials |
issn |
1996-1944 |
publishDate |
2018-04-01 |
description |
Structure/material requires simultaneous consideration of both its design and manufacturing processes to dramatically enhance its manufacturability, assembly and maintainability. In this work, a novel design framework for structural/material with a desired mechanical performance and compelling topological design properties achieved using origami techniques is presented. The framework comprises four procedures, including topological design, unfold, reduction manufacturing, and fold. The topological design method, i.e., the solid isotropic material penalization (SIMP) method, serves to optimize the structure in order to achieve the preferred mechanical characteristics, and the origami technique is exploited to allow the structure to be rapidly and easily fabricated. Topological design and unfold procedures can be conveniently completed in a computer; then, reduction manufacturing, i.e., cutting, is performed to remove materials from the unfolded flat plate; the final structure is obtained by folding out the plate from the previous procedure. A series of cantilevers, consisting of origami parallel creases and Miura-ori (usually regarded as a metamaterial) and made of paperboard, are designed with the least weight and the required stiffness by using the proposed framework. The findings here furnish an alternative design framework for engineering structures that could be better than the 3D-printing technique, especially for large structures made of thin metal materials. |
topic |
design and fabrication framework origami topological design |
url |
http://www.mdpi.com/1996-1944/11/4/576 |
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