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Article

Investigation of the Effect of Inhomogeneous Material on the Fracture Mechanisms of Bamboo by Finite Element Method

1
Graduate School of Science and Technology, Kyoto Institute of Technology (KIT), Matsugasaki, Sakyo-ku, Kyoto 606-8585, Japan
2
Mechanical and Production Engineering Department, Faculty of Engineering, University of Mauritius, Reduit 80837, Mauritius
3
Department of Advanced Fibro-Science, Faculty of Fiber Science and Engineering, Kyoto Institute of Technology (KIT), Matsugasaki, Sakyo-ku, Kyoto 606-8585, Japan
*
Author to whom correspondence should be addressed.
Materials 2020, 13(21), 5039; https://doi.org/10.3390/ma13215039
Submission received: 18 October 2020 / Revised: 2 November 2020 / Accepted: 4 November 2020 / Published: 9 November 2020
(This article belongs to the Section Construction and Building Materials)

Abstract

Bamboo is a remarkably strong and sustainable material available for construction. It exhibits optimized mechanical characteristics based on a hollow-inhomogeneous structure which also affects its fracture behavior. In this study, the aim is to investigate the effect of material composition and geometrical attributes on the fracture mechanisms of bamboo in various modes of loading by the finite element method. In the first part of the investigation, the optimized transverse isotropy of bamboo to resist transverse deformation was numerically determined to represent its noticeable orthotropic characteristics which prevail in the axial direction. In the second part of this study, a numerical investigation of fracture mechanisms in four fundamental modes of loading, namely bending, compression, torsion, and shear, were conducted by considering the failure criterion of maximum principal strain. A crack initiation stage was simulated and compared by implementing an element erosion technique. Results showed that the characteristics of bamboo’s crack initiation differed greatly from solid geometry and homogeneous material-type models. Splitting patterns, which were discerned in bending and shear modes, differed in terms of location and occurred in the outside-center position and inside-lowermost position of the culm, respectively. The results of this study can be useful in order to achieve optimized strength in bamboo-inspired bionic designs.
Keywords: bamboo; fracture mechanisms; inhomogeneous; transversely isotropic; external loading; FEM (finite element method) bamboo; fracture mechanisms; inhomogeneous; transversely isotropic; external loading; FEM (finite element method)
Graphical Abstract

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MDPI and ACS Style

Ramful, R.; Sakuma, A. Investigation of the Effect of Inhomogeneous Material on the Fracture Mechanisms of Bamboo by Finite Element Method. Materials 2020, 13, 5039. https://doi.org/10.3390/ma13215039

AMA Style

Ramful R, Sakuma A. Investigation of the Effect of Inhomogeneous Material on the Fracture Mechanisms of Bamboo by Finite Element Method. Materials. 2020; 13(21):5039. https://doi.org/10.3390/ma13215039

Chicago/Turabian Style

Ramful, Raviduth, and Atsushi Sakuma. 2020. "Investigation of the Effect of Inhomogeneous Material on the Fracture Mechanisms of Bamboo by Finite Element Method" Materials 13, no. 21: 5039. https://doi.org/10.3390/ma13215039

APA Style

Ramful, R., & Sakuma, A. (2020). Investigation of the Effect of Inhomogeneous Material on the Fracture Mechanisms of Bamboo by Finite Element Method. Materials, 13(21), 5039. https://doi.org/10.3390/ma13215039

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