A spatiotemporal transport-flow framework for heavy-oil recovery: Unified Damköhler analysis of thermal, solvent, and electromagnetic mechanisms

Пространственно-временной транспортно-потоковый фреймворк для добычи тяжёлой нефти: унифицированный анализ по числу Дамкёhler для термических, растворяющих и электромагнитных механизмов
Ke Huang, Siyuan Huang, Simin Yang, Ian Gates, Qi Jiang, Zhehui Jin, Kuncheng Li
2026-04-01

Damköhler numberselectromagnetic volumetric energy depositionheat diffusionspatiotemporal transport-flow frameworkviscosity modification
Heavy oil and bitumen production is constrained by extremely high in situ viscosity and by the mismatch between the time required for mobility modification to propagate through the reservoir and the timescale of oil drainage. Although thermal, solvent, and electromagnetic recovery methods have been extensively studied, most existing screening approaches remain qualitative and process specific, providing limited physical guidance on when and where a given mechanism can effectively influence flow. In this work, we develop a unified Darcy-scale spatiotemporal framework that links transport-controlled propagation with constitutive viscosity modification. The effectiveness of each recovery process is evaluated using generalized space–time Damköhler numbers, which compare the characteristic timescale of local viscosity modification with the drainage timescale imposed by flow. Analytical expressions for effective propagation radius are derived for heat diffusion, electromagnetic volumetric energy deposition, and solvent transport in porous media. The framework is applied to five representative reservoir settings, including intermediate viscosity sands, thick shallow bitumen formations, deep heavy oil reservoirs, thin pay zones, and strongly heterogeneous systems. The results reveal systematic shifts in the dominant mobility modification mechanism with changes in viscosity, depth, thickness, and heterogeneity. Thick shallow reservoirs require bulk thermal mobilization, moderate viscosity systems remain controlled by sustained heating, increasing depth limits reservoir-scale thermal propagation and favors staged hybrid strategies, thin pay zones benefit from near wellbore electromagnetic conditioning, and strong heterogeneity calls for spatially.
1
A unified Darcy-scale spatiotemporal framework links transport-controlled propagation with constitutive viscosity modification for heavy-oil recovery.
2
Analytical expressions for effective propagation radius are derived for heat diffusion, electromagnetic volumetric energy deposition, and solvent transport in porous media.
3
Application to five representative reservoir settings shows systematic shifts in dominant mobility-modification mechanisms with viscosity, depth, thickness, and heterogeneity.
4
Effectiveness of thermal, solvent, and electromagnetic recovery is quantified using generalized space–time Damköhler numbers comparing local viscosity-modification timescale to flow-driven drainage timescale.
5
Thick shallow reservoirs require bulk thermal mobilization, while moderate-viscosity systems are controlled by sustained heating and increased depth limits thermal propagation favoring staged hybrid strategies.
6
Thin pay zones benefit from near-wellbore electromagnetic conditioning, and strongly heterogeneous systems demand spatially targeted strategies.

Darcy-scale spatiotemporal transport-flow framework for heavy-oil and bitumen reservoirs

Effectiveness and propagation of thermal, solvent, and electromagnetic mobility-modification mechanisms quantified by generalized space–time Damköhler numbers, including analytical propagation radii and dependence on reservoir viscosity, depth, thickness, and heterogeneity

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2026-04-01
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Authors
Ke Huang
Siyuan Huang
Simin Yang
Ian Gates
Qi Jiang
Zhehui Jin
Kuncheng Li
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