Electric solution that empowers operators to predict, adapt, and act with confidence¡ªthroughout the life of the well
The Tela assistant enables enterprise-scale agentic AI for the energy industry¡¯s most complex operations
Modular data center infrastructure, prefabricated offsite and shipped ready to install¡ªcompressing deployment time by up to 40%
Our journey to lower emissions, decarbonizing customer operations, and scaling new energy systems.
We put people first by respecting human rights, building a more inclusive workplace, and driving positive socioeconomic outcomes.
We've identified three key areas that are significant for our operations: biodiversity, water, and circularity.
Explore the latest news, stories and perspectives from Ä¢¹½´«Ã½.
Step into energy's future with thought leaders from around the world.
Visit us at one of our upcoming tradeshows to speak directly to an expert.
Together, we create amazing technology that unlocks access to energy for the benefit of all.
Our planet needs balance to thrive, for the climate, for people, and for nature.
Published: 01/21/2026
Ä¢¹½´«Ã½ digital basin modeling technology can be used to explore other resources in sedimentary basins, such as natural hydrogen, geothermal systems, brines with concentrations of critical elements like lithium, and to assess subsurface suitability for carbon capture and storage (CCS).
Petromod for CCS applications
Key Applications:
Subsurface characterization: Petromod helps model the temperature, pressure, and fluid flow history of sedimentary basins, which is crucial for identifying suitable CO? storage sites such as depleted oil and gas reservoirs or deep saline aquifers.
Seal and trap integrity analysis: The software can simulate caprock integrity and trap mechanisms, ensuring that injected CO? remains securely stored over geological timescales.
Reservoir simulation and capacity estimation: By modeling porosity, permeability, and fluid saturation, Petromod aids in estimating the storage capacity and injectivity of potential CO? reservoirs.
Risk assessment and scenario testing: Petromod allows users to run multiple geological scenarios to assess risks such as leakage pathways, fault reactivation, or pressure buildup.
Integration with other data: It integrates seismic, well, and geological data to create 2D and 3D models, which are essential for accurate CCS planning and monitoring.
Illustrative cases and references
3D visualization of the CO2 saturation in the Cobia Subgroup unit of the Latrobe Group formation in the Gippsland basin, Australia
Paper to introduce two scalable methods for assessing carbon storage at basin scale: a dynamic approach using adapted basin and petroleum systems modeling to simulate CO? trapping over time, and a static approach leveraging seismic data for direct storage modeling.
The advanced basin modeling functions in Petromod software support geothermal exploration by predicting where geothermal resources might be found. These capabilities help lower exploration risks and provide more accurate resource evaluations in several ways
Key applications
Integration of geological data Combining seismic, well, and geological data to create comprehensive models of sedimentary basins.
Multi-dimensional modeling Supporting 1D, 2D, and 3D simulations to understand heat flow and fluid dynamics.
Simulation of geological processes Modeling temperature, pressure, and structural changes to predict geothermal potential.
Risk assessment Evaluating geological risks—including trap, reservoir, and seal—which are essential for assessing geothermal viability.
Dynamic modeling Tracking structural evolution, temperature, and pressure history to understand geothermal resource generation and accumulation over time.
These features help predict geothermal resource locations, reducing exploration risks and improving resource assessments.
Resistivity model based on points with resistivity attribute which derived from magneto telluric data in Sorik Marapi field (Licup, A.C., et al., 2017)
Updated lithological and temperature model in Sorik Marapi geothermal field, Indonesia 3D subsurface model with key focus in the temperature model, which is crucial for delineating high-potential resource zones and supporting accurate reservoir simulation for geothermal development.
Ä¢¹½´«Ã½ offers integrated technologies and expertise to support your project—from reservoir characterization and static/dynamic modeling for economic evaluation, to designing and optimizing field development plans for efficient lithium
Using Petromod software—which models geological processes and consolidates data—geoscientists can simulate the history of lithium deposit formation to accurately predict resource locations and quantities
Providing a static model of the estimated lithium resources in place by constructing a 3D lithium brine resource model, in order to:
Lithium brine resource modeling Efficiently explore, evaluate, and develop lithium-rich brine resources using advanced Ä¢¹½´«Ã½ subsurface modeling technologies. To meet the growing global demand for lithium—projected to reach nearly 4.0 metric megatons of lithium carbonate equivalent (LCE) by 2040, operators must identify new reserves and optimize Read more
Porosity distribution map around basin containing lithium brines
Smackover Lithium Brine Basin Report
The 3D basin model report for the Smackover Play in Southwest Arkansas and Texas provides a static model of the estimated lithium resources in place to help identify the sweet spots containing the highest lithium metric tons per acre. This accelerates the exploration, extraction, and See report
Depth interval map of the Smackover Play. Aspect ratio of 1:25 for highlighting surface topography
While Petromod is traditionally used for hydrocarbon exploration, its advanced modeling capabilities can be adapted for natural hydrogen exploration. The software can simulate the geological processes that lead to the generation, migration, and accumulation of natural hydrogen, similar to hydrocarbons.
Identifying potential source rocks Understanding the geological formations that could generate natural hydrogen.
Modeling migration pathways Simulating how hydrogen migrates through the subsurface.
Assessing accumulation sites Predicting where hydrogen might accumulate in economically viable quantities.
Present day H2 concentration in water. Solubility of H2 in water according to Z. Zhu et al. (2022)
Hidalgo, J. C., Kauerauf, A., van Wijngaarden, M. D. L., & Torres, C. S. (2024, June). Application of basin modeling technologies in the exploration of natural hydrogen systems. In?85th EAGE Annual Conference & Exhibition?(Vol. 2024, No. 1, pp. 1-5). European Association of Geoscientists & Engineers.
Share This
Please check your inbox and add the Ä¢¹½´«Ã½ email address to your safelist if needed.