English
 
Privacy Policy Disclaimer
  Advanced SearchBrowse

Item

ITEM ACTIONSEXPORT
  Coupled thermal-hydraulic model of the continental subsurface: theory, regimes, and reduced solver

Rostami, M., Fallah, B. H., Fazel-Rastgar, F., Fu, L.-Y. (2026 online): Coupled thermal-hydraulic model of the continental subsurface: theory, regimes, and reduced solver. - Journal of Hydrology, 136412.
https://doi.org/10.1016/j.jhydrol.2026.136412

Item is

Files

show Files

Locators

show

Creators

show
hide
 Creators:
Rostami, Masoud1, Author                 
Fallah, Bijan H.1, Author                 
Fazel-Rastgar, Farahnaz2, Author
Fu, Li-Yun2, Author
Affiliations:
1Potsdam Institute for Climate Impact Research, ou_persistent13              
2External Organizations, ou_persistent22              

Content

show
hide
Free keywords: Coupled thermal-hydraulic model ; Extended Richards equation ; Enthalpy-based freeze-thaw ; Dimensionless numbers ; Regime diagrams ; Permafrost hydrology
 Abstract: The thermal regime of the continental subsurface is shaped by the interplay of atmospheric forcing, groundwater flow, and solid Earth heat. While many existing models couple groundwater flow and heat transport, and in some cases incorporate freeze-thaw or thermo-hydro-mechanical processes, representing the full spectrum of two-way feedbacks often remains challenging. This paper has two components and keeps them distinct throughout. The first is theoretical: a continuum formulation that explicitly couples two-way thermal-hydraulic feedback with a smooth freeze-thaw treatment. From first principles, we derive the governing equations for mass and energy and perform a scaling analysis that yields nine dimensionless numbers, including a newly identified thermal-hydraulic coupling metric (). These numbers quantify the competition between pressure diffusion, saturation storage, thermal expansion, conduction, advection, and latent heat, and they define quantitative regime diagrams for the three interfaces (land surface, subsurface, crust-mantle). We reduce the full three-dimensional system to a closed one-dimensional vertical column suitable for basin-scale applications. The second component is a reduced thermal-hydraulic numerical implementation, narrower than the theory. This open-source finite-volume solver (implicit time stepping, upwind advection, apparent-heat-capacity freeze-thaw) carries the thermal-expansion feedback, Darcy advection and freeze-thaw, but omits the phase-change mass source, the poroelastic porosity evolution, the skeleton momentum balance, and the gas phase. The solver reports its own mass- and energy-budget residuals, and those diagnostics show that the omitted source is a first-order wherever the freezing point is crossed. The solver is cross-verified against an independent finite-difference Crank-Nicolson code and passes six analytical benchmarks (Carslaw-Jaeger, Stefan, Theis, Terzaghi, undrained thermo-poroelastic ratio, Bonacina), most of which are operator verifications. Four canonical 1-D case studies (permafrost, geothermal reservoir, arid basin, thermo-poro coupled) demonstrate consistency between the designed inputs and the proposed theoretical classification, and a 2-D extension explores lateral basin recharge-discharge and permafrost edge effects. The open-source solver, within its applicability domain, equipped with a test suite and conservation diagnostics, provides a computational tool for attributing subsurface thermal anomalies to their physical drivers and for projecting future thermal evolution under changing environmental conditions.

Details

show
hide
Language(s): eng - English
 Dates: 2026-06-152026-09-102026-09-12
 Publication Status: Published online
 Pages: -
 Publishing info: -
 Table of Contents: -
 Rev. Type: Peer
 Identifiers: DOI: 10.1016/j.jhydrol.2026.136412
PIKDOMAIN: RD1 - Earth System Analysis
Organisational keyword: RD1 - Earth System Analysis
Working Group: Past and Future Earth
MDB-ID: pending
Regional keyword: Global
Model / method: Nonlinear Data Analysis
Research topic keyword: Atmosphere
Research topic keyword: Climate impacts
Research topic keyword: Nonlinear Dynamics
 Degree: -

Event

show

Legal Case

show

Project information

show

Source 1

show
hide
Title: Journal of Hydrology
Source Genre: Journal
 Creator(s):
Affiliations:
Publ. Info: -
Pages: - Volume / Issue: - Sequence Number: 136412 Start / End Page: - Identifier: CoNE: https://publications.pik-potsdam.de/cone/journals/resource/1879-2707
Publisher: Elsevier