Articles | Volume 14, issue 6
https://doi.org/10.5194/gmd-14-3553-2021
https://doi.org/10.5194/gmd-14-3553-2021
Model description paper
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11 Jun 2021
Model description paper | Highlight paper |  | 11 Jun 2021

A discontinuous Galerkin finite-element model for fast channelized lava flows v1.0

Colton J. Conroy and Einat Lev

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Cited articles

Baloga, S., Spudis, P. D., and Guest, J. E.: The dynamics of rapidly emplaced terrestrial lava flows and implications for planetary volcanism, J. Geophys. Res.-Sol. Ea., 100, 24509–24519, 1995. a
Castruccio, A., Rust, A. C., and Sparks, R. S. J.: Rheology and flow of crystal-bearing lavas: Insights from analogue gravity currents, Earth Planet. Sc. Lett., 297, 471–480, https://doi.org/10.1016/j.epsl.2010.06.051, 2010. a, b, c
Castruccio, A., Rust, A. C., and Sparks, R. S. J.: Assessing lava flow evolution from post-eruption field data using Herschel-Bulkley rheology, J. Volcanol. Geo. Res., 275, 71–84, https://doi.org/10.1016/j.jvolgeores.2014.02.004, 2014. a
Cockburn, B. and Chi-Wang, S.: The local discontinuous Galerkin method for time-dependent convection-diffusion systems, SIAM J. Num. Anal., 35, 2440–2463, 1998. a
Cockburn, B. and Shu, C.-W.: Runge–Kutta discontinuous Galerkin methods for convection-dominated problems, J. Sci. Comput., 16, 173–261, 2001. a, b, c, d, e
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Short summary
Lava flows present a natural hazard to communities around volcanoes and are usually slow-moving (< 1-5 cm/s). Lava flows during the 2018 eruption of Kilauea volcano, Hawai’i, however, reached speeds as high as 11 m/s. To investigate these dynamics we develop a new lava flow computer model that incorporates a nonlinear expression for the fluid viscosity. Model results indicate that the lava flows at Site 8 of the eruption displayed shear thickening behavior due to the flow's high bubble content.