A review on shear jamming
arXiv:2306.13416 · doi:10.1016/j.physrep.2023.10.002
Abstract
Jamming is a ubiquitous phenomenon that appears in many soft matter systems, including granular materials, foams, colloidal suspensions, emulsions, polymers, and cells -- when jamming occurs, the system undergoes a transition from flow-like to solid-like states. Conventionally, the jamming transition occurs when the system reaches a threshold jamming density under isotropic compression, but recent studies reveal that jamming can also be induced by shear. Shear jamming has attracted much interest in the context of non-equilibrium phase transitions, mechanics and rheology of amorphous materials. Here we review the phenomenology of shear jamming and its related physics. We first describe basic observations obtained in experiments and simulations, and results from theories. Shear jamming is then demonstrated as a "bridge" that connects the rheology of athermal soft spheres and thermal hard spheres. Based on a generalized jamming phase diagram, a universal description is provided for shear jamming in frictionless and frictional systems. We further review the isostaticity and criticality of the shear jamming transition, and the elasticity of shear jammed solids. The broader relevance of shear jamming is discussed, including its relation to other phenomena such as shear hardening, dilatancy, fragility, and discrete shear thickening.
19 pages, 9 figures
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Cited by in corpus (9)
- Yielding and plasticity in amorphous solids
- Elasticity-Controlled Jamming Criticality in Soft Composite Solids
- Complete mathematical theory of the jamming transition: A perspective
- Mechanical non-reciprocity programmed by shear jamming in soft composite solids
- Jamming is a first-order transition with quenched disorder in amorphous materials sheared by cyclic quasistatic deformations
- Topological signatures of collective dynamics and turbulent-like energy cascades in apolar active granular
- K-core attack, equilibrium K-core, and kinetically constrained spin system
- Microscopic Basis for Recovery Rheology and the Nonequilibrium Structure,Yielding, and Flow of Dense Particle Suspensions
- Hyperuniformity near jamming transition over a wide range of bidispersity