Disorder-induced stress-flow misalignment in soft glassy materials revealed using multi-directional shear

Fuente: arXiv
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Hauptverfasser: Blanc, Frédéric, Ovarlez, Guillaume, Trigui, Adam, Martens, Kirsten, Mari, Romain
Format: Preprint
Veröffentlicht: 2025
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author Blanc, Frédéric
Ovarlez, Guillaume
Trigui, Adam
Martens, Kirsten
Mari, Romain
author_facet Blanc, Frédéric
Ovarlez, Guillaume
Trigui, Adam
Martens, Kirsten
Mari, Romain
contents Controlling the mechanical response of soft glassy materials, such as emulsions, foams, and colloidal suspensions, is key for many industrial processes. While their steady-state flow behavior is reasonably well understood, their response to complex flow histories, as encountered in operations like pumping or mixing, remains poorly known. Using a custom multi-axis shear apparatus that enables arbitrary changes in flow direction, we investigate how shear history influences the mechanical behavior of a model soft glassy system. We uncover a transient shear response orthogonal to the applied shear direction, together with an anisotropic yield surface. These effects point to an underlying anisotropic distribution of internal stresses imprinted by previous deformation. To rationalize this behavior, we use a mesoscopic elasto-plastic model, demonstrating that local mechanical disorder governs the emergence of macroscopic stress-flow misalignment. Our findings offer a new route to experimentally probe the distribution of local yield stresses in soft glassy materials.
format Preprint
id arxiv_https___arxiv_org_abs_2508_05379
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Disorder-induced stress-flow misalignment in soft glassy materials revealed using multi-directional shear
Blanc, Frédéric
Ovarlez, Guillaume
Trigui, Adam
Martens, Kirsten
Mari, Romain
Soft Condensed Matter
Materials Science
Controlling the mechanical response of soft glassy materials, such as emulsions, foams, and colloidal suspensions, is key for many industrial processes. While their steady-state flow behavior is reasonably well understood, their response to complex flow histories, as encountered in operations like pumping or mixing, remains poorly known. Using a custom multi-axis shear apparatus that enables arbitrary changes in flow direction, we investigate how shear history influences the mechanical behavior of a model soft glassy system. We uncover a transient shear response orthogonal to the applied shear direction, together with an anisotropic yield surface. These effects point to an underlying anisotropic distribution of internal stresses imprinted by previous deformation. To rationalize this behavior, we use a mesoscopic elasto-plastic model, demonstrating that local mechanical disorder governs the emergence of macroscopic stress-flow misalignment. Our findings offer a new route to experimentally probe the distribution of local yield stresses in soft glassy materials.
title Disorder-induced stress-flow misalignment in soft glassy materials revealed using multi-directional shear
topic Soft Condensed Matter
Materials Science
url https://arxiv.org/abs/2508.05379