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March 29, 20260 citationsOpen Access

A Dynamic Multiphase Model for Hydrocarbon and Hydrothermal Systems: Linking Deep Energy, Fluid Migration, and Reservoir Formation

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KGKujtim gjoka Gjoka

Key Points

  • This research aims to unify the understanding of subsurface fluid systems using a dynamic multiphase model.
  • Developed a 13-phase framework integrating physics, chemistry, and geology.
  • Analyzed the balance between driving pressure and geological resistance affecting fluid behavior.
  • Validated the model through real-world case studies of giant reservoirs.
  • When pressure flow ratio is less than 1, fluids accumulate into reservoirs.
  • When pressure flow ratio is greater than 1, fluids migrate, forming hydrothermal systems.
  • Demonstrated the importance of sustained pressure, sealing systems, and lithological properties for large-scale accumulation.

Abstract

This study presents a unified dynamic model describing subsurface fluid systems through a 13-phase framework integrating physics, chemistry, and geology. The model proposes that hydrocarbon reservoirs and hydrothermal systems are outcomes of the same underlying process, controlled by the balance between driving pressure and geological resistance. A key parameter, Λ = Pflow / Pc, governs system behavior. When Λ 1, fluids continue migrating and form hydrothermal systems. The model explains reservoir formation, variability, and the coexistence of oil, gas, and geothermal systems within a single theoretical framework. This work introduces a dynamic, process-based alternative to classical static models and contributes to a unified understanding of subsurface energy systems. The framework is further expanded through a structured 13-phase system describing the full evolution of fluid migration and accumulation. Additionally, model validation is supported through real-world case studies of giant reservoirs, demonstrating that large-scale accumulation requires sustained pressure conditions, effective sealing systems, and favorable lithological properties. Series Information This publication is part of a broader research series: “13 Phases of Subsurface Fluid Systems” Each phase represents a distinct stage in fluid generation, migration, accumulation, and transformation within the Earth’s crust.

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Kujtim gjoka Gjoka (2026) studied this question.

synapsesocial.com/papers/69c8c3bdde0f0f753b39eb99https://doi.org/10.5281/zenodo.19246266
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Integrated Multiphase Fluid–Rock System: A Unified Dynamic Model for Hydrocarbon and Hydrothermal Processes2026
  2. 2A Unified Dynamic Model of Subsurface Fluid Systems (The Λ Framework)2026
  3. 3Phase 2 — Fluid Migration (Pressure-Driven Transport System): Dynamics of Subsurface Flow in a Multiphase Framework2026
  4. 4Phase 1 — Deep Gas Source (Primary Energy Input): Foundation of a Dynamic Multiphase Model for Subsurface Fluid Systems2026
  5. 5Phase 3 — Layered Geological System (Stratified Control of Flow): Lithological Control in a Dynamic Multiphase Framework2026