Preserving elastic anisotropy with tessellations of granular packings

Fuente: arXiv
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Autori principali: Xia, Annie Z., Wang, Dong, La Riviere, Catherine, Kramer-Bottiglio, Rebecca, Shattuck, Mark D., O'Hern, Corey S.
Natura: Preprint
Pubblicazione: 2026
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author Xia, Annie Z.
Wang, Dong
La Riviere, Catherine
Kramer-Bottiglio, Rebecca
Shattuck, Mark D.
O'Hern, Corey S.
author_facet Xia, Annie Z.
Wang, Dong
La Riviere, Catherine
Kramer-Bottiglio, Rebecca
Shattuck, Mark D.
O'Hern, Corey S.
contents Multiscale periodic metamaterials have been designed for numerous applications, such as impact absorption, acoustic cloaking, photonic band gaps, and mechanical logic gates. This prior work has focused on optimizing mesoscale structure for desired bulk isotropic properties. In contrast, we seek to develop materials with highly anisotropic elastic properties. To quantify elastic anisotropy, we introduce two rotationally invariant, normalized quantities that characterize the anisotropic response to shear and compression, respectively, $A_G$ and $A_C$. We find that typical crystalline solids possess average elastic anisotropy $\overline{A}_G \approx 0.15$ and $\overline{A}_C \approx 0.09$. Compared to atomic crystals, jammed granular materials can attain elastic anisotropies that are several orders of magnitude larger. Since grain rearrangements reduce anisotropy in granular materials, to preserve strong elastic anisotropy, we design tessellated granular materials that consist of multiple connected grain-filled voxels, which limit rearrangements and enable highly anisotropic elastic properties. Bulk granular packings with $N$ grains prepared at pressure $p$ have maximal anisotropy for $pN^2\sim1$ and become isotropic in the large-$pN^2$ limit. We show that homogeneously tessellated granular systems can inherit the elastic response of the constituent voxel configurations with elastic anisotropy up to $100$ times that of crystalline compounds over a range of $pN^2$. We show further methods to tune the elastic anisotropy of tessellations by designing heterogeneously patterned voxel configurations and tessellations that allow large boundary deformations.
format Preprint
id arxiv_https___arxiv_org_abs_2604_12098
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Preserving elastic anisotropy with tessellations of granular packings
Xia, Annie Z.
Wang, Dong
La Riviere, Catherine
Kramer-Bottiglio, Rebecca
Shattuck, Mark D.
O'Hern, Corey S.
Soft Condensed Matter
Multiscale periodic metamaterials have been designed for numerous applications, such as impact absorption, acoustic cloaking, photonic band gaps, and mechanical logic gates. This prior work has focused on optimizing mesoscale structure for desired bulk isotropic properties. In contrast, we seek to develop materials with highly anisotropic elastic properties. To quantify elastic anisotropy, we introduce two rotationally invariant, normalized quantities that characterize the anisotropic response to shear and compression, respectively, $A_G$ and $A_C$. We find that typical crystalline solids possess average elastic anisotropy $\overline{A}_G \approx 0.15$ and $\overline{A}_C \approx 0.09$. Compared to atomic crystals, jammed granular materials can attain elastic anisotropies that are several orders of magnitude larger. Since grain rearrangements reduce anisotropy in granular materials, to preserve strong elastic anisotropy, we design tessellated granular materials that consist of multiple connected grain-filled voxels, which limit rearrangements and enable highly anisotropic elastic properties. Bulk granular packings with $N$ grains prepared at pressure $p$ have maximal anisotropy for $pN^2\sim1$ and become isotropic in the large-$pN^2$ limit. We show that homogeneously tessellated granular systems can inherit the elastic response of the constituent voxel configurations with elastic anisotropy up to $100$ times that of crystalline compounds over a range of $pN^2$. We show further methods to tune the elastic anisotropy of tessellations by designing heterogeneously patterned voxel configurations and tessellations that allow large boundary deformations.
title Preserving elastic anisotropy with tessellations of granular packings
topic Soft Condensed Matter
url https://arxiv.org/abs/2604.12098