Experimental and Numerical Investigation on Radial Stiffness of Origami-Inspired Tubular Structures

Author:

Shen Weijun1,Cao Yang2,Jiang Xuepeng2,Zhang Zhan3,Okudan Kremer Gül E.4,Qin Hantang5

Affiliation:

1. Department of Industrial and Manufacturing Systems Engineering, Department of Mechanical Engineering, Iowa State University, 1119 Black Engineering, 2529 Union Drive, Ames, IA 50011

2. Department of Industrial and Manufacturing Systems Engineering, Iowa State University, 1119 Black Engineering, 2529 Union Drive, Ames, IA 50011

3. Center for Nondestructive Evaluation, Iowa State University, 275 Applied Science Complex II, 1915 Scholl Road, Ames, IA 50011

4. Department of Industrial and Manufacturing Systems Engineering, Iowa State University, 3004 Black Engineering, 2529 Union Drive, Ames, IA 50011

5. Department of Industrial and Manufacturing Systems Engineering, Center for Nondestructive Evaluation, Iowa State University, 3019 Black Engineering, 2529 Union Drive, Ames, IA 50011

Abstract

Abstract Origami structures, which were inspired by traditional paper folding arts, have been applied for engineering problems for the last two decades. Origami-based thin-wall tubes have been extensively investigated under axial loadings. However, less has been done with radial stiffness as one of the critical mechanical properties of a tubular structure working under lateral loadings. In this study, the radial stiffness of novel thin-wall tubular structures based on origami patterns have been studied with compression tests and finite element analysis (FEA) simulations. The results show that the radial stiffness of an origami-inspired tube can achieve about 27.1 times that of a circular tube with the same circumcircle diameter (100 mm), height (60 mm), and wall thickness (2 mm). Yoshimura, Kresling, and modified Yoshimura patterns are selected as the basic frames, upon which the influences of different design parameters are tested and discussed. Given that the weight can vary due to different designs, the stiffness-to-weight ratio is also calculated. The origami-inspired tubular structures with superior stiffness performances are obtained and can be extended to crashworthy structures, functional structures, and stiffness enhancement with low structural weight.

Funder

Iowa Energy Center

Publisher

ASME International

Subject

Mechanical Engineering,Mechanics of Materials,Condensed Matter Physics

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