H2020Individual fellowship2022–2025

GEODPG · Space-time DPG methods for partial-differential equations with geophysical applications

Horizon 2020 — Marie Skłodowska-Curie Actions

Duration
2022-01-01 → 2025-06-03
EU contribution
€263,732
Participants
2
Scheme
MSCA-IF

Lines connect the coordinator with its partners.

Results in brief

Space-time DPG methods for partial-differential equations with geophysical applications

The crucial goal of the European commission’s climate action is to fight climate change. European Union’s target is to progressively reduce greenhouse emissions setting a cut goal of 55% by 2030 and 90% by 2040 compared to 1990 levels. Carbon dioxide (CO2) capture and sequestration is a long-term storage process that EU’s climate action supports and points out to be the only option to reduce unavoidable emissions in some industrial processes. In this process, it is critical to obtain a precise map of the Earth’s subsurface to characterize the possible sequestration sites (like depleted oil and gas reservoirs) in order to determine their condition and decide if they are suitable for storage. In most imaging techniques the acquired measurements are processed via numerical inversion to generate a subsurface map. One essential step in this process is the simulation of the forward problem governed by Partial Differential Equations (PDEs) via numerical methods. In this project, we seek to improve the characterization of Earth’s subsurface and its application to CO2 sequestration techniques by designing fast, stable, and accurate numerical methods to solve wave propagation problems.

Data: CORDIS, © European Union

Project objective

The main objective of this project is to design stabilized space-time adaptive techniques based on Discontinuous Petrov-Galerkin (DPG) methodology for the simulation of transient Partial Differential Equations (PDEs), with special emphasis on advection-dominated- diffusion and wave propagation problems. The final goal is to apply the resulting methods to improve the seismic imaging of the Earth’s subsurface for CO2-sequestration, a long-term storage process that contributes to fight climate change and mitigate global warming. In many geophysical problems governed by PDEs, it is important to accurately approximate some specific features of the solution. Goal-oriented adaptive techniques in finite element methods are powerful tools to achieve such goals with optimal computational cost. However, due to the unstable nature of the governing equations in geophysical flows, employing stable discretization methods is crucial in these kinds of algorithms. Stabilized methods such as DPG avoid refinements in unnecessary places of the domain. In this project, we will develop methods, algorithms and a software for transient PDEs employing stable time-marching schemes based on DPG method supporting goal-oriented adaptivity. Finally, we will present the obtained results to several European oil and gas companies in order to apply our method in real world scenarios. The host has an extensive experience in geophysical applications and the Third Country (TC) host is one of the inventors of the DPG method. This set up, together with the applicant’s experience in goal-oriented adaptive algorithms for PDEs, gives the applicant the perfect environment to efficiently develop the proposed project. Moreover, the knowledge and experience acquired during the fellowship will make her a potential applicant to obtain a strong research position in Europe. The host and the TC host will also benefit from the resulting advances on the topic and the industrial collaborations derived from this project.

Original text from CORDIS.

Participants

  • BCAM - BASQUE CENTER FOR APPLIED MATHEMATICS · BilbaoCoordinatorSpain
  • THE UNIVERSITY OF TEXAS SYSTEM · AustinUnited States

Links

Data: CORDIS, © European Union