| Literature DB >> 31929730 |
Jonathan Barés1, Nicolas Brodu2, Hu Zheng3,4, Joshua A Dijksman5.
Abstract
We describe here experiments on the mechanics of hydrogel particle packings from the Behringer lab, performed between 2012 and 2015. These experiments quantify the evolution of all contact forces inside soft particle packings exposed to compression, shear, and the intrusion of a large intruder. The experimental set-ups and processes are presented and the data are concomitantly published in a repository (Barés et al. in Dryad, Dataset 10.5061/dryad.6djh9w0x8, 2019).Keywords: 3D packing; Calibration; Force networks; Hydrogel particles; Image analysis
Year: 2019 PMID: 31929730 PMCID: PMC6934235 DOI: 10.1007/s10035-019-0985-4
Source DB: PubMed Journal: Granul Matter ISSN: 1434-5021 Impact factor: 2.652
Fig. 1a Schematic view of the experimental set-up. A stage holding a camera equipped with a red filter and a laser creating a red light sheet is translated to scan a tank containing index-matched liquid and polyacrylamide beads that are loaded with three plates moving along three orthogonal axes. b View of the polyacrylamide beads (top) in the index-matched liquid (bottom). The tank is partially illuminated with a laser sheet. Reprinted from Rev. Sci. Instr. 83, 011301 (2012), with the permission of AIP Publishing. c, d, e Evolution (from left to right) of the view of a slice in the middle of the tank with increasing Polyvinylpyrrolidone (PVP) concentration, which is gradually added to index-match the liquid surrounding the particles (color figure online)
Fig. 2Schematic view of the different experimental loading mechanisms: a uniaxial compression of monodisperse and bidisperse grains; b intrusion of a large sphere in monodisperse grains; c isochoric biaxial shearing; d isochoric triaxial shearing. Green arrows stand for the displacement during the forward part of the loading while red arrows stand for the backward part (color figure online)
An overview of all experimental data sets described here and provided as data sets in the associated repository
| Experiment name | Type | #3D frames |
|---|---|---|
| Comp20 | Uniaxial compr. | 1200 |
| Comp10 | Uniaxial compr. | 600 |
| CompRelax | Uniaxial compr. + relax. | 30 |
| CompRelax2 | Uniaxial compr. + relax. | 30 |
| CompBiDisp | Uniax. compr. bidisp. | 180 |
| Intrusion | Object intrusion | 1200 |
| BiaxShear | 2 moving bound. | 400 |
| TriaxShear | 3 moving bound. | 1700 |
An overview of main exceptions to the data standard described
| Filename | Description |
|---|---|
| PlateMotion.txt | Only for Comp20. |
| Temperature.txt | Provided through logfile. |
| TopForce.txt | Provided through logfile. |
| step_XXXX.txt.gz | Not available in CompRelax2 |
| Force.avi | N/A in Comp20/10/Relax/Relax2 |
| Shape.avi | N/A in Comp20/10/Relax/Relax2 |
| IndexMatching.avi | N/A in Comp20/10/Relax/Relax2 |
| InputParameter.avi | N/A in Comp20/10/Relax/Relax2 |
Fig. 3Results for the polydisperse compression experiment. a 3D reconstruction of the granular packing at 10% of strain, b corresponding force network, c evolution of the vertical force applied on the top wall during 5 cycles and of the temperature inside the insulated chamber (sensor 1 top, sensor 2 bottom)