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Yielding under the microscope: a multi-scale perspective on brittle and ductile behaviors in oscillatory shear

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arxiv 2402.00221 v1 pith:3QMO6GAB submitted 2024-01-31 cond-mat.soft

classification cond-mat.soft
keywords yieldingshearbehaviorsdynamicstransitionbrittleductileintricate
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We study the yielding transition in soft jammed materials under oscillatory shear, employing a novel methodology that combines rheological measurements with detailed dynamical observations. This method provides a comprehensive view of the intricate interactions between macroscopic mechanical behavior, mesoscopic deformation patterns, and microscopic dynamics during yielding. Our findings reveal two distinct yielding behaviors: at one end, a smooth, uniform transition, characterized by homogeneous strain fields, and Fickian, Gaussian microscopic dynamics; at the other, a sharp transition defined by pronounced shear banding, with the dynamics within shear bands being governed exclusively by the local strain, and exhibiting non-Gaussian, cooperative nature. The viscoplastic fragility emerges as a key macroscopic predictor of these intricate behaviors across micro- and meso-scales, providing a new perspective to understand and quantify ductile and brittle yielding in soft materials.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Avalanches in the Random Organization Model with long-range interactions

    cond-mat.soft 2026-03 conditional novelty 6.0 of 10

    In the α-ROM at criticality, avalanche size, duration and participation are power-law distributed, and the avalanche fractal dimension crosses d≈2 near α≈1.5, switching compact to sparse geometry.

  2. Emergent scales and spatial correlations at the yielding transition of glassy materials

    cond-mat.soft 2025-01 conditional novelty 6.0 of 10

    A facilitated-advection lattice model predicts that the abruptness of yielding in glasses is controlled by a dynamic correlation length that diverges as quenched disorder vanishes.

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