Single-test evaluation of directional elastic properties of anisotropic structured materials

Journal Article (2023)
Author(s)

Jagannadh Boddapati (California Institute of Technology)

Moritz Flaschel (ETH Zürich)

Siddhant Kumar (TU Delft - Team Sid Kumar)

Laura De Lorenzis (ETH Zürich)

Chiara Daraio (California Institute of Technology)

Research Group
Team Sid Kumar
Copyright
© 2023 Jagannadh Boddapati, Moritz Flaschel, Siddhant Kumar, Laura De Lorenzis, Chiara Daraio
DOI related publication
https://doi.org/10.1016/j.jmps.2023.105471
More Info
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Publication Year
2023
Language
English
Copyright
© 2023 Jagannadh Boddapati, Moritz Flaschel, Siddhant Kumar, Laura De Lorenzis, Chiara Daraio
Research Group
Team Sid Kumar
Volume number
181
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Abstract

When the elastic properties of structured materials become direction-dependent, the number of their descriptors increases. For example, in two-dimensions, the anisotropic behavior of materials is described by up to 6 independent elastic stiffness parameters, as opposed to only 2 needed for isotropic materials. Such high number of parameters expands the design space of structured materials and leads to unusual phenomena, such as materials that can shear under uniaxial compression. However, an increased number of properties descriptors and the coupling between shear and normal deformations render the experimental evaluation of material properties more challenging. In this paper, we propose a methodology based on the virtual fields method to identify six separate stiffness tensor parameters of two-dimensional anisotropic structured materials using just one tension test, thus eliminating the need for multiple experiments, as it is typical in traditional methods. The approach requires no stress data and uses full-field displacement data and global force data. We show the accuracy of our method using synthetic data generated from finite element simulations as well as experimental data from additively manufactured specimens.

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