An efficient partial-differential-equation-based method to compute pressure boundary conditions in regional geodynamic models
-
Published:2022-06-29
Issue:6
Volume:13
Page:1107-1125
-
ISSN:1869-9529
-
Container-title:Solid Earth
-
language:en
-
Short-container-title:Solid Earth
Author:
Jourdon AnthonyORCID, May Dave A.ORCID
Abstract
Abstract. Modelling the pressure in the Earth's interior is a common problem in Earth sciences. In this study we propose a method based on the conservation of the momentum of a fluid by using a hydrostatic scenario or a uniformly moving fluid to approximate the pressure. This results in a partial differential equation (PDE) that can be solved using classical numerical methods. In hydrostatic cases, the computed pressure is the lithostatic pressure. In non-hydrostatic cases, we show that this PDE-based approach better approximates the total pressure than the classical 1D depth-integrated approach. To illustrate the performance of this PDE-based formulation we present several hydrostatic and non-hydrostatic 2D models in which we compute the lithostatic pressure or an approximation of the total pressure, respectively. Moreover, we also present a 3D rift model that uses that approximated pressure as a time-dependent boundary condition to simulate far-field normal stresses. This model shows a high degree of non-cylindrical deformation, resulting from the stress boundary condition, that is accommodated by strike-slip shear zones. We compare the result of this numerical model with a traditional rift model employing free-slip boundary conditions to demonstrate the first-order implications of considering “open” boundary conditions in 3D thermo-mechanical rift models.
Funder
National Science Foundation European Commission
Publisher
Copernicus GmbH
Subject
Paleontology,Stratigraphy,Earth-Surface Processes,Geochemistry and Petrology,Geology,Geophysics,Soil Science
Reference34 articles.
1. Alnaes, M. S., Blechta, J., Hake, J., Johansson, A., Kehlet, B., Logg, A.,
Richardson, C., Ring, J., Rognes, M. E., and Wells, G. N.: The FEniCS
Project Version 1.5, Archive of Numerical Software, 3, 9–23,
https://doi.org/10.11588/ans.2015.100.20553, 2015. a 2. Baes, M., Sobolev, S. V., and Quinteros, J.: Subduction initiation in
mid-ocean induced by mantle suction flow, Geophys. J. Int.,
215, 1515–1522, https://doi.org/10.1093/gji/ggy335, 2018. a 3. Balay, S., Gropp, W. D., McInnes, L. C., and Smith, B. F.: Efficient Management
of Parallelism in Object Oriented Numerical Software Libraries, in: Modern
Software Tools in Scientific Computing, edited by: Arge, E., Bruaset, A. M.,
and Langtangen, H. P., 163–202, Birkhäuser Press, https://doi.org/10.1007/978-1-4612-1986-6_8, 1997. a 4. Balay, S., Abhyankar, S., Adams, M. F., Brown, J., Brune, P., Buschelman, K.,
Dalcin, L., Eijkhout, V., Gropp, W. D., Karpeyev, D., Kaushik, D., Knepley,
M. G., May, D. A., McInnes, L. C., Mills, R. T., Munson, T., Rupp, K., Sanan,
P., Smith, B. F., Zampini, S., Zhang, H., and Zhang, H.: PETSc Users
Manual, Tech. Rep. ANL-95/11 – Revision 3.11, Argonne National Laboratory,
2019. a 5. Barth, W. L. and Carey, G. F.: On a boundary condition for pressure-driven
laminar flow of incompressible fluids, Int. J. Numer.
Meth. Fl., 54, 1313–1325, 2007. a
Cited by
2 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献
|
|