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DOE OSTI · 1865066

Parallel exponential time differencing methods for geophysical flow simulations

Abstract

Two ocean models are considered for geophysical flow simulations: the multilayer shallow water equations and the multilayer primitive equations. For the former, we investigate the parallel performance of exponential time differencing (ETD) methods, including exponential Rosenbrock–Euler, ETD2wave, and B-ETD2wave. For the latter, we take advantage of the splitting of barotropic and baroclinic modes and propose a new two-level method in which an ETD method is applied to solve the fast barotropic mode. Furthermore, these methods could improve the computational efficiency of numerical simulations because ETD methods allow for much larger time step sizes than traditional explicit time-stepping techniques that are commonly used in existing computational ocean models. Several standard benchmark tests for ocean modeling are performed and comparison of the numerical results demonstrates a great potential of applying the parallel ETD methods for simulating real-world geophysical flows.

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BibTeXRIS

Lan, Rihui, Leng, Wei, Wang, Zhu, Ju, Lili, Gunzburger, Max. 2021-09-20. Parallel exponential time differencing methods for geophysical flow simulations. https://doi.org/10.1016/j.cma.2021.114151

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