Cristin-resultat-ID: 2196663
Sist endret: 13. desember 2023, 17:07
Resultat
Vitenskapelig Kapittel/Artikkel/Konferanseartikkel
2023

Efficient Adaptation and Calibration of Ad joint-Based Reduced-Order Coarse-Grid Network Models

Bidragsytere:
  • Stein Krogstad
  • Øystein Klemetsdal og
  • Knut-Andreas Lie

Bok

SPE Reservoir Simulation Conference 2023
ISBN:
  • 978-1-61399-871-7

Utgiver

Society of Petroleum Engineers
NVI-nivå 1

Om resultatet

Vitenskapelig Kapittel/Artikkel/Konferanseartikkel
Publiseringsår: 2023
ISBN:
  • 978-1-61399-871-7

Klassifisering

Fagfelt (NPI)

Fagfelt: Geovitenskap
- Fagområde: Realfag og teknologi

Beskrivelse Beskrivelse

Tittel

Efficient Adaptation and Calibration of Ad joint-Based Reduced-Order Coarse-Grid Network Models

Sammendrag

Network models have proved to be an efficient tool for building data-driven proxy models that match observed production data or reduced-order models that match simulated data. A particularly versatile approach is to construct the network topology so that it mimics the intercell connection in a volumetric grid. That is, one first builds a network of "reservoir nodes" to which wells can be subsequently connected. The network model is realized inside a fully differentiable simulator. To train the model, we use a standard mismatch minimization formulation, optimized by a Gauss-Newton method with mismatch Jacobians obtained by solving adjoint equations with multiple right-hand sides. One can also use a quasi-Newton method, but Gauss-Newton is significantly more efficient as long as the number of wells is not too high. A practical challenge in setting up such network models is to determine the granularity of the network. Herein, we demonstrate how this can be mitigated by using a dynamic graph adaption algorithm to find a good granularity that improves predictability both inside and slightly outside the range of the training data.

Bidragsytere

Stein Krogstad

  • Tilknyttet:
    Forfatter
    ved Mathematics and Cybernetics ved SINTEF AS

Øystein Klemetsdal

  • Tilknyttet:
    Forfatter
    ved Mathematics and Cybernetics ved SINTEF AS
Aktiv cristin-person

Knut-Andreas Lie

  • Tilknyttet:
    Forfatter
    ved Mathematics and Cybernetics ved SINTEF AS
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Resultatet er en del av Resultatet er en del av

SPE Reservoir Simulation Conference 2023.

Cominelli, Alberto. 2023, Society of Petroleum Engineers. Vitenskapelig antologi/Konferanseserie
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