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Benchmarking computational fluid dynamics models of lava flow simulation for hazard assessment, forecasting, and risk management
- Source :
- Dietterich, H R, Lev, E, Chen, J, Richardson, J A & Cashman, K V 2017, ' Benchmarking computational fluid dynamics models of lava flow simulation for hazard assessment, forecasting, and risk management ', Journal of Applied Volcanology, vol. 6, no. 1 . https://doi.org/10.1186/s13617-017-0061-x, Journal of Applied Volcanology, Vol 6, Iss 1, Pp 1-14 (2017)
- Publication Year :
- 2017
-
Abstract
- Numerical simulations of lava flow emplacement are valuable for assessing lava flow hazards, forecasting active flows, designing flow mitigation measures, interpreting past eruptions, and understanding the controls on lava flow behavior. Existing lava flow models vary in simplifying assumptions, physics, dimensionality, and the degree to which they have been validated against analytical solutions, experiments, and natural observations. In order to assess existing models and guide the development of new codes, we conduct a benchmarking study of computational fluid dynamics (CFD) models for lava flow emplacement, including VolcFlow, OpenFOAM, FLOW-3D, COMSOL, and MOLASSES. We model viscous, cooling, and solidifying flows over horizontal planes, sloping surfaces, and into topographic obstacles. We compare model results to physical observations made during well-controlled analogue and molten basalt experiments, and to analytical theory when available. Overall, the models accurately simulate viscous flow with some variability in flow thickness where flows intersect obstacles. OpenFOAM, COMSOL, and FLOW-3D can each reproduce experimental measurements of cooling viscous flows, and OpenFOAM and FLOW-3D simulations with temperature-dependent rheology match results from molten basalt experiments. We assess the goodness-of-fit of the simulation results and the computational cost. Our results guide the selection of numerical simulation codes for different applications, including inferring emplacement conditions of past lava flows, modeling the temporal evolution of ongoing flows during eruption, and probabilistic assessment of lava flow hazard prior to eruption. Finally, we outline potential experiments and desired key observational data from future flows that would extend existing benchmarking data sets.
- Subjects :
- 010504 meteorology & atmospheric sciences
lcsh:Disasters and engineering
Lava
lcsh:Environmental protection
Lava flows
Hazard analysis
Computational fluid dynamics
010502 geochemistry & geophysics
01 natural sciences
Physics::Geophysics
Physics::Fluid Dynamics
Geochemistry and Petrology
Natural hazard
Numerical modeling
lcsh:TD169-171.8
Geotechnical engineering
0105 earth and related environmental sciences
Basalt
Computer simulation
business.industry
Model validation
Probabilistic logic
lcsh:TA495
Analogue experiments
Benchmarking
Geophysics
Flow (mathematics)
business
Safety Research
Geology
Marine engineering
Subjects
Details
- Language :
- English
- Database :
- OpenAIRE
- Journal :
- Dietterich, H R, Lev, E, Chen, J, Richardson, J A & Cashman, K V 2017, ' Benchmarking computational fluid dynamics models of lava flow simulation for hazard assessment, forecasting, and risk management ', Journal of Applied Volcanology, vol. 6, no. 1 . https://doi.org/10.1186/s13617-017-0061-x, Journal of Applied Volcanology, Vol 6, Iss 1, Pp 1-14 (2017)
- Accession number :
- edsair.doi.dedup.....17bc293c57c6de277ba00940c84d16d8
- Full Text :
- https://doi.org/10.1186/s13617-017-0061-x