Frictional Granular Matter: Protocol Dependence of Mechanical Properties
arXiv:2010.03239 · doi:10.1103/PhysRevLett.126.075501
Abstract
Theoretical treatments of frictional granular matter often assume that it is legitimate to invoke classical elastic theory to describe its coarse-grained mechanical properties. Here we show, based on experiments and numerical simulations, that this is generically not the case since stress auto-correlation functions decay more slowly than the elastic Green's function. It was shown theoretically that standard elastic decay demands pressure and torque density fluctuations to be normal, with possibly one of them being hyperuniform. Generic compressed frictional assemblies exhibit however abnormal pressure fluctuations, failing to conform with the central limit theorem. The physics of this failure is linked to correlations built in the material during compression from a dilute configuration prior to jamming. By changing the protocol of compression one can observe different pressure fluctuations and stress auto-correlations decay at large scales.
5 pages, 6 figures
References in corpus (1)
Cited by in corpus (7)
- Stress Correlations in Frictional Granular Media
- Tensor Electromagnetism and Emergent Elasticity in Jammed Solids
- Experimental and Numerical Verification of Anomalous Screening Theory in Granular Matter
- Anomalous Elasticity in Classical Glass-formers
- Level statistics and Anderson delocalization in two-dimensional granular materials
- Ultraslow settling kinetics of frictional cohesive powders
- Spatial stress correlations in strong colloidal gel