Thermal-Compositional Simulation of CO2 Sequestration in Depleted Hydrocarbon Reservoirs

M. Wapperom, J. dos Santos Heringer, D. V. Nichita, D. Voskov

Research output: Chapter in Book/Conference proceedings/Edited volumeConference contributionScientificpeer-review

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Abstract

In this work, we present a thermal-compositional simulation framework for modelling of CO2 sequestration in de- pleted hydrocarbon reservoirs. The parametrization technique utilizes thermodynamic state-dependent operators expressing the governing equations for the thermal-compositional system to solve the nonlinear problem. This approach provides flexibility in the assembly of the Jacobian, which allows straightforward implementation of advanced thermodynamics. Taking advantage of the flexibility of operator-based linearization (OBL), multiphase thermodynamic modelling at arbitrary state specifications is implemented. The use of a hybrid-EoS approach to combine equations of state for aqueous and hydrocarbon phases and advanced initialization schemes for multi- phase equilibrium calculations improves the accuracy and efficiency of the simulation. Careful phase identifica- tion is required for the simulation of multiphase flow, in particular with the potential occurrence of multiple liquid phases in CO2-hydrocarbon mixtures. We apply the simulation framework to model a set of CO2 injection cases at conditions typical for depleted hydrocarbon fields. We demonstrate that important thermophysical phenomena resulting from the interaction of CO2 and impurities with reservoir fluids can be accurately captured using the OBL approach. The consistency of compositional simulation is supported by robust and efficient modelling of multiphase equilibria between brines, hydrocarbons and CO2. The method is shown to be robust for capturing the thermal effects related to expansion, mixing and phase transitions. This work presents a highly flexible and efficient framework for modelling of multiphase flow and transport in CCUS-related subsurface applications. Ro- bust modelling of thermodynamic equilibria at arbitrary state specification captures the complex thermophysical interactions between CO2 and reservoir fluids.

Original languageEnglish
Title of host publicationSociety of Petroleum Engineers - SPE Reservoir Simulation Conference, RSC 2025
PublisherSociety of Petroleum Engineers (SPE)
Number of pages12
ISBN (Electronic)9781959025580
DOIs
Publication statusPublished - 2025
Event2025 SPE Reservoir Simulation Conference, RSC 2025 - Galveston, United States
Duration: 25 Mar 202527 Mar 2025

Publication series

NameSPE Reservoir Simulation Symposium Proceedings
Volume2025-March
ISSN (Print)2689-5366
ISSN (Electronic)2689-5382

Conference

Conference2025 SPE Reservoir Simulation Conference, RSC 2025
Country/TerritoryUnited States
CityGalveston
Period25/03/2527/03/25

Bibliographical note

Green Open Access added to TU Delft Institutional Repository ‘You share, we take care!’ – Taverne project https://www.openaccess.nl/en/you-share-we-take-care
Otherwise as indicated in the copyright section: the publisher is the copyright holder of this work and the author uses the Dutch legislation to make this work public.

Keywords

  • pvt measurement
  • petroleum geology
  • co2
  • geologist
  • subsurface storage
  • reservoir surveillance
  • equation of state
  • modeling & simulation
  • reservoir simulation
  • production logging

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