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Disorder Enhances the Fracture Toughness of Mechanical Metamaterials

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arxiv 2407.07223 v1 pith:S6CEDI3X submitted 2024-07-09 cond-mat.mtrl-sci

classification cond-mat.mtrl-sci
keywords disordertoughnessfailurelevelmetamaterialsdamageduringfracture
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Mechanical metamaterials with engineered failure properties typically rely on periodic unit cell geometries or bespoke microstructures to achieve their unique properties. We demonstrate that intelligent use of disorder in metamaterials leads to distributed damage during failure, resulting in enhanced fracture toughness with minimal losses of strength. Toughness depends on the level of disorder, not a specific geometry, and the confined lattices studied exhibit a maximum toughness enhancement at an optimal level of disorder. A mechanics model that relates disorder to toughness without knowledge of the crack path is presented. The model is verified through finite element simulations and experiments utilizing photoelasticity to visualize damage during failure. At the optimal level of disorder, the toughness is more than 2.6x of an ordered lattice of equivalent density.

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    cond-mat.mtrl-sci 2024-12 conditional novelty 7.0 of 10

    A length-weighted, boundary-conditioned betweenness centrality predicts which struts carry the most stress in 2D lattices better than standard centrality.

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