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Yielding in dense active matter
Adil Ghaznavi1, Saverio Rossi2, Francesco Zamponi2
1Syracuse University, Department of Physics and BioInspired Institute, Syracuse, New York 13244, USA.
Dense active matter exhibits distinct yielding behaviors. Ultrastable materials are ductile under active forcing, unlike their brittle response to shear, leading to a new constitutive model.
Area of Science:
- Physics of granular materials
- Soft matter physics
- Rheology of active matter
Background:
- Dense active matter models animal collectives and reconfigurable materials.
- Understanding its mechanical response and constitutive laws is crucial but challenging.
- Existing models struggle to predict flow and failure under active forcing.
Purpose of the Study:
- Investigate the yielding transition in dense active matter under slow driving and high persistence.
- Compare the mechanical response of ultrastable materials under shear versus active forcing.
- Develop a predictive constitutive model for active granular matter.
Main Methods:
- Studied yielding transitions in dense active matter across various preparations.
- Applied shear and random active forcing to ultrastable materials.
- Developed and tested a modified elastoplastic model incorporating active driving field correlations.
Main Results:
- Ultrastable active matter is always ductile under random active forcing.
- A modified elastoplastic model accurately captures this ductile behavior.
- The correlation length of the active driving field is a key predictive parameter.
- Plastic flow is often predictable by active driving, independent of structural disorder.
Conclusions:
- Active forcing fundamentally alters the yielding behavior of ultrastable granular matter.
- The developed model provides a framework for understanding and predicting active matter rheology.
- Findings suggest new strategies for controlling granular active matter flow and solidification.
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