Improved mechanical performance of quasi-cubic lattice metamaterials with asymmetric joints

Abstract In this paper, we propose a simple method for the modification of the unit cells in the lattice metamaterials that provides an improvement of their impact strength. The idea is based on the introduction of small mutual offsets of the interconnected struts inside the unit cells. In such way,...

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Main Authors: Yury O. Solyaev, Anastasia D. Ustenko, Arseniy V. Babaytsev, Vasiliy N. Dobryanskiy
Format: Article
Language:English
Published: Nature Portfolio 2023-09-01
Series:Scientific Reports
Online Access:https://doi.org/10.1038/s41598-023-41614-3
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author Yury O. Solyaev
Anastasia D. Ustenko
Arseniy V. Babaytsev
Vasiliy N. Dobryanskiy
author_facet Yury O. Solyaev
Anastasia D. Ustenko
Arseniy V. Babaytsev
Vasiliy N. Dobryanskiy
author_sort Yury O. Solyaev
collection DOAJ
description Abstract In this paper, we propose a simple method for the modification of the unit cells in the lattice metamaterials that provides an improvement of their impact strength. The idea is based on the introduction of small mutual offsets of the interconnected struts inside the unit cells. In such way, the joints between the struts become asymmetric and the overall geometry of the unit cells can be defined as the quasi-cubic with the axis of chirality. Considering four types of cubic lattices with BCC, BCT, FCC and octahedron structures, we modified their geometry and investigated the influence of the offsets and the unit cell size on the overall performance in static and dynamic tests. From the experiments we found that the small offsets (less than the strut diameter) can allow to increase the impact strength of 3d-printed polymeric specimens in 1.5–3 times remaining almost the same density and static mechanical properties. Based on the numerical simulations, we show that the explanation of the observed phenomena can be related to the increase of plastic deformations and damage accumulation in the unit-cells with asymmetric joints leading to the transition from the quasi-brittle to the ductile type of fracture in tested specimens.
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spelling doaj.art-923ef558fd804508b0a22904c0c436702023-11-19T13:01:37ZengNature PortfolioScientific Reports2045-23222023-09-0113111410.1038/s41598-023-41614-3Improved mechanical performance of quasi-cubic lattice metamaterials with asymmetric jointsYury O. Solyaev0Anastasia D. Ustenko1Arseniy V. Babaytsev2Vasiliy N. Dobryanskiy3Institute of Applied Mechanics of Russian Academy of SciencesInstitute of Applied Mechanics of Russian Academy of SciencesMoscow Aviation InstituteMoscow Aviation InstituteAbstract In this paper, we propose a simple method for the modification of the unit cells in the lattice metamaterials that provides an improvement of their impact strength. The idea is based on the introduction of small mutual offsets of the interconnected struts inside the unit cells. In such way, the joints between the struts become asymmetric and the overall geometry of the unit cells can be defined as the quasi-cubic with the axis of chirality. Considering four types of cubic lattices with BCC, BCT, FCC and octahedron structures, we modified their geometry and investigated the influence of the offsets and the unit cell size on the overall performance in static and dynamic tests. From the experiments we found that the small offsets (less than the strut diameter) can allow to increase the impact strength of 3d-printed polymeric specimens in 1.5–3 times remaining almost the same density and static mechanical properties. Based on the numerical simulations, we show that the explanation of the observed phenomena can be related to the increase of plastic deformations and damage accumulation in the unit-cells with asymmetric joints leading to the transition from the quasi-brittle to the ductile type of fracture in tested specimens.https://doi.org/10.1038/s41598-023-41614-3
spellingShingle Yury O. Solyaev
Anastasia D. Ustenko
Arseniy V. Babaytsev
Vasiliy N. Dobryanskiy
Improved mechanical performance of quasi-cubic lattice metamaterials with asymmetric joints
Scientific Reports
title Improved mechanical performance of quasi-cubic lattice metamaterials with asymmetric joints
title_full Improved mechanical performance of quasi-cubic lattice metamaterials with asymmetric joints
title_fullStr Improved mechanical performance of quasi-cubic lattice metamaterials with asymmetric joints
title_full_unstemmed Improved mechanical performance of quasi-cubic lattice metamaterials with asymmetric joints
title_short Improved mechanical performance of quasi-cubic lattice metamaterials with asymmetric joints
title_sort improved mechanical performance of quasi cubic lattice metamaterials with asymmetric joints
url https://doi.org/10.1038/s41598-023-41614-3
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