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Folding photopolymerized origami sheets by post-curing.

Author(s): He X, Matte CD, Kwok TH

The paper presents a novel manufacturing approach to fabricate origami based on 3D printing utilizing digital light processing. Specifically, we propose to leave part of the model uncured during the printing step, and then cure it in the post-processing ste...

Article GUID: 33490875


Title:Folding photopolymerized origami sheets by post-curing.
Authors:He XMatte CDKwok TH
Link:https://www.ncbi.nlm.nih.gov/pubmed/33490875
DOI:10.1007/s42452-020-04018-w
Category:SN Appl Sci
PMID:33490875
Dept Affiliation: ENCS
1 Department of Mechanical, Industrial and Aerospace Engineering, Concordia University, Montreal, Canada.

Description:

Folding photopolymerized origami sheets by post-curing.

SN Appl Sci. 2021; 3(1):133

Authors: He X, Matte CD, Kwok TH

Abstract

The paper presents a novel manufacturing approach to fabricate origami based on 3D printing utilizing digital light processing. Specifically, we propose to leave part of the model uncured during the printing step, and then cure it in the post-processing step to set the shape in a folded configuration. While the cured regions in the first step try to regain their unfolded shape, the regions cured in the second step attempt to keep their folded shape. As a result, the final shape is obtained when both regions' stresses reach equilibrium. Finite element analysis is performed in ANSYS to obtain the stress distribution on common hinge designs, demonstrating that the square-hinge has a lower maximum principal stress than elliptical and triangle hinges. Based on the square-hinge and rectangular cavity, two variables-the hinge width and the cavity height-are selected as principal variables to construct an empirical model with the final folding angle. In the end, experimental verification shows that the developed method is valid and reliable to realize the proposed deformation and 3D development of 2D hinges.

PMID: 33490875 [PubMed]