Response Evolution of a Tetrachiral Metamaterial Unit Cell under Architectural Transformations

This paper studies a mechanical metamaterial with tetrachiral topology by mathematical modeling. Chirality is the property of an object that makes the object distinguishable from its mirror image; chirality can be left- or right-handed. The mechanical response of two metamaterial unit cells with dif...

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Main Authors: Linar Akhmetshin, Kristina Iokhim, Ekaterina Kazantseva, Igor Smolin
Format: Article
Language:English
Published: MDPI AG 2022-12-01
Series:Symmetry
Subjects:
Online Access:https://www.mdpi.com/2073-8994/15/1/14
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author Linar Akhmetshin
Kristina Iokhim
Ekaterina Kazantseva
Igor Smolin
author_facet Linar Akhmetshin
Kristina Iokhim
Ekaterina Kazantseva
Igor Smolin
author_sort Linar Akhmetshin
collection DOAJ
description This paper studies a mechanical metamaterial with tetrachiral topology by mathematical modeling. Chirality is the property of an object that makes the object distinguishable from its mirror image; chirality can be left- or right-handed. The mechanical response of two metamaterial unit cells with different configurations (patterns A and B) is investigated. It is found that the cubic cell with a regular pattern A exhibits orthotropic mechanical behavior under loading along three coordinate axes. An irregular pattern B differs from pattern A in that the upper face of the unit cell has an opposite chirality. This architectural transformation is considered as a topological defect, which enhances the twisting effect in the loaded metamaterial. Analysis of displacements and stresses shows that the mechanical behavior of the pattern B cell is described by the model of a transversely isotropic material. The orthotropic and transversely isotropic behavior of the cells of given configurations is also confirmed by the values of the effective elastic constants. Microstructural geometry and mechanical deformation of metamaterials are shown to be closely related. It is shown that a topological defect in a unit cell of a tetrachiral metamaterial strongly determines its twisting behavior.
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spelling doaj.art-53f93be82f13411ba839af93d442ed462023-12-01T00:50:26ZengMDPI AGSymmetry2073-89942022-12-011511410.3390/sym15010014Response Evolution of a Tetrachiral Metamaterial Unit Cell under Architectural TransformationsLinar Akhmetshin0Kristina Iokhim1Ekaterina Kazantseva2Igor Smolin3Faculty of Physics and Engineering, National Research Tomsk State University, 634050 Tomsk, RussiaFaculty of Physics and Engineering, National Research Tomsk State University, 634050 Tomsk, RussiaFaculty of Physics and Engineering, National Research Tomsk State University, 634050 Tomsk, RussiaFaculty of Physics and Engineering, National Research Tomsk State University, 634050 Tomsk, RussiaThis paper studies a mechanical metamaterial with tetrachiral topology by mathematical modeling. Chirality is the property of an object that makes the object distinguishable from its mirror image; chirality can be left- or right-handed. The mechanical response of two metamaterial unit cells with different configurations (patterns A and B) is investigated. It is found that the cubic cell with a regular pattern A exhibits orthotropic mechanical behavior under loading along three coordinate axes. An irregular pattern B differs from pattern A in that the upper face of the unit cell has an opposite chirality. This architectural transformation is considered as a topological defect, which enhances the twisting effect in the loaded metamaterial. Analysis of displacements and stresses shows that the mechanical behavior of the pattern B cell is described by the model of a transversely isotropic material. The orthotropic and transversely isotropic behavior of the cells of given configurations is also confirmed by the values of the effective elastic constants. Microstructural geometry and mechanical deformation of metamaterials are shown to be closely related. It is shown that a topological defect in a unit cell of a tetrachiral metamaterial strongly determines its twisting behavior.https://www.mdpi.com/2073-8994/15/1/14mechanical metamaterialchiral structurenumerical modelingcell connectioneffective properties
spellingShingle Linar Akhmetshin
Kristina Iokhim
Ekaterina Kazantseva
Igor Smolin
Response Evolution of a Tetrachiral Metamaterial Unit Cell under Architectural Transformations
Symmetry
mechanical metamaterial
chiral structure
numerical modeling
cell connection
effective properties
title Response Evolution of a Tetrachiral Metamaterial Unit Cell under Architectural Transformations
title_full Response Evolution of a Tetrachiral Metamaterial Unit Cell under Architectural Transformations
title_fullStr Response Evolution of a Tetrachiral Metamaterial Unit Cell under Architectural Transformations
title_full_unstemmed Response Evolution of a Tetrachiral Metamaterial Unit Cell under Architectural Transformations
title_short Response Evolution of a Tetrachiral Metamaterial Unit Cell under Architectural Transformations
title_sort response evolution of a tetrachiral metamaterial unit cell under architectural transformations
topic mechanical metamaterial
chiral structure
numerical modeling
cell connection
effective properties
url https://www.mdpi.com/2073-8994/15/1/14
work_keys_str_mv AT linarakhmetshin responseevolutionofatetrachiralmetamaterialunitcellunderarchitecturaltransformations
AT kristinaiokhim responseevolutionofatetrachiralmetamaterialunitcellunderarchitecturaltransformations
AT ekaterinakazantseva responseevolutionofatetrachiralmetamaterialunitcellunderarchitecturaltransformations
AT igorsmolin responseevolutionofatetrachiralmetamaterialunitcellunderarchitecturaltransformations