Stress propagation in locally loaded packings of disks and pentagons

dc.contributor.author

Kozlowski, Ryan

dc.contributor.author

Zheng, Hu

dc.contributor.author

Daniels, Karen E

dc.contributor.author

Socolar, Joshua ES

dc.date.accessioned

2021-10-26T19:11:58Z

dc.date.available

2021-10-26T19:11:58Z

dc.date.updated

2021-10-26T19:11:56Z

dc.description.abstract

The mechanical strength and flow of granular materials can depend strongly on the shapes of individual grains. We report quantitative results obtained from photoelasticimetry experiments on locally loaded, quasi-two-dimensional granular packings of either disks or pentagons exhibiting stick-slip dynamics. Packings of pentagons resist the intruder at significantly lower packing fractions than packings of disks, transmitting stresses from the intruder to the boundaries over a smaller spatial extent. Moreover, packings of pentagons feature significantly fewer back-bending force chains than packings of disks. Data obtained on the forward spatial extent of stresses and back-bending force chains collapse when the packing fraction is rescaled according to the packing fraction of steady state open channel formation, though data on intruder forces and dynamics do not collapse. We comment on the influence of system size on these findings and highlight connections with the dynamics of the disks and pentagons during slip events.

dc.identifier.uri

https://hdl.handle.net/10161/23930

dc.publisher

Royal Society of Chemistry (RSC)

dc.subject

cond-mat.soft

dc.subject

cond-mat.soft

dc.subject

physics.geo-ph

dc.title

Stress propagation in locally loaded packings of disks and pentagons

dc.type

Journal article

duke.contributor.orcid

Kozlowski, Ryan|0000-0002-2602-038X

duke.contributor.orcid

Socolar, Joshua ES|0000-0003-0532-7099

pubs.organisational-group

Student

pubs.organisational-group

Physics

pubs.organisational-group

Duke

pubs.organisational-group

Trinity College of Arts & Sciences

Files

Original bundle

Now showing 1 - 1 of 1
Loading...
Thumbnail Image
Name:
2108.06235v2.pdf
Size:
4.91 MB
Format:
Adobe Portable Document Format