Origins of complexity in the rheology of Soft Earth suspensions

Fuente: arXiv
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Autori principali: Pradeep, Shravan, Arratia, Paulo E., Jerolmack, Douglas J.
Natura: Preprint
Pubblicazione: 2023
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author Pradeep, Shravan
Arratia, Paulo E.
Jerolmack, Douglas J.
author_facet Pradeep, Shravan
Arratia, Paulo E.
Jerolmack, Douglas J.
contents When wet soil becomes fully saturated by intense rainfall, or is shaken by an earthquake, it may fluidize catastrophically. Sand-rich slurries are treated as granular suspensions, where the failure is related to an unjamming transition. Mud flows are modeled as gels, where yielding and shear-thinning behaviors arise from inter-particle attraction and clustering. Here we show that the full range of complex flow behaviors previously reported for natural debris flows can be reproduced with three ingredients: water, silica sand, and kaolin clay. Going from sand-rich to clay-rich suspensions, we observe continuous transition from brittle to ductile yielding. We propose a general constitutive relation for soil suspensions, with a particle rearrangement time that is controlled by yield stress and jamming distance. Our experimental results are supported by models for amorphous solids, suggesting that the paradigm of non-equilibrium phase transitions can help us understand and predict the complex behaviors of Soft Earth suspensions.
format Preprint
id arxiv_https___arxiv_org_abs_2312_15092
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Origins of complexity in the rheology of Soft Earth suspensions
Pradeep, Shravan
Arratia, Paulo E.
Jerolmack, Douglas J.
Soft Condensed Matter
Geophysics
When wet soil becomes fully saturated by intense rainfall, or is shaken by an earthquake, it may fluidize catastrophically. Sand-rich slurries are treated as granular suspensions, where the failure is related to an unjamming transition. Mud flows are modeled as gels, where yielding and shear-thinning behaviors arise from inter-particle attraction and clustering. Here we show that the full range of complex flow behaviors previously reported for natural debris flows can be reproduced with three ingredients: water, silica sand, and kaolin clay. Going from sand-rich to clay-rich suspensions, we observe continuous transition from brittle to ductile yielding. We propose a general constitutive relation for soil suspensions, with a particle rearrangement time that is controlled by yield stress and jamming distance. Our experimental results are supported by models for amorphous solids, suggesting that the paradigm of non-equilibrium phase transitions can help us understand and predict the complex behaviors of Soft Earth suspensions.
title Origins of complexity in the rheology of Soft Earth suspensions
topic Soft Condensed Matter
Geophysics
url https://arxiv.org/abs/2312.15092