Biroun, Mehdi H;
Mazzei, Luca;
(2024)
Unchannelized granular flows: Effect of initial granular column geometry on fluid dynamics.
Chemical Engineering Science
, 292
, Article 119997. 10.1016/j.ces.2024.119997.
Text
Article.pdf - Accepted Version Access restricted to UCL open access staff until 20 March 2025. Download (2MB) |
Abstract
In recent years, significant progress has been made in modelling granular flows using the μ(I)-rheology model, which connects the viscosity of a granular medium to the pressure and strain rate via a dimensionless quantity called the inertial number, I. This model allows treating the granular material as a non-Newtonian liquid with a yield stress, making it possible to model the flow using the continuum approach, which is less computationally expensive than discrete element methods. In this paper, we implement the μ(I)-rheology model in a computational fluid dynamics (CFD) code and couple it with the volume of fluid (VOF) interface tracking approach to model the three-dimensional (3D) flow of monodisperse granular materials. After validating the model using experimental data, we briefly describe a trial-and-error method for evaluating the material properties of powders via a simple collapse experiment. Then, employing the CFD model, we investigate the physics of the unchannelized collapse of granular materials and perform an energy budget analysis to demonstrate the different stages of the granular collapse. To further investigate the effect of the initial shape of the pile on the spreading dynamics, we run a campaign of 3D simulations. Our results show that the μ(I)-rheology model accurately reproduces the dynamics of the granular material during the collapse and can be used for risk assessment purposes in natural disasters. The findings from our simulations can also aid in developing preventative measures to minimize potential harm.
Type: | Article |
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Title: | Unchannelized granular flows: Effect of initial granular column geometry on fluid dynamics |
DOI: | 10.1016/j.ces.2024.119997 |
Publisher version: | http://dx.doi.org/10.1016/j.ces.2024.119997 |
Language: | English |
Additional information: | This version is the author accepted manuscript. For information on re-use, please refer to the publisher's terms and conditions. |
Keywords: | Granular collapse, μ(I)-rheology, Continuum method, Unchannelized flow, Numerical simulation, Computational fluid dynamics |
UCL classification: | UCL UCL > Provost and Vice Provost Offices > UCL BEAMS UCL > Provost and Vice Provost Offices > UCL BEAMS > Faculty of Engineering Science UCL > Provost and Vice Provost Offices > UCL BEAMS > Faculty of Engineering Science > Dept of Chemical Engineering |
URI: | https://discovery.ucl.ac.uk/id/eprint/10189294 |
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