A novel upscaling method for steam-assisted gravity drainage simulations based on a viscosity–temperature model

Новый метод масштабирования для моделирования паровой гравитационной вытеснительной добычи на основе модели вязкость–температура
Shuyang Liu, Hangyu Li, Qizhi Tan, Zhuofan Hu, Baojiang Sun
2025-10-07

coarse-scale viscosity scalingsteam-assisted gravity drainagethermal-compositional flowupscaling methodviscosity–temperature model
Thermal-compositional flow simulations are crucial for understanding the intricate interactions of subsurface heat and mass transfer for geoenergy development. A case in point is the steam-assisted gravity drainage (SAGD) process, where accurate numerical simulation is essential to evaluate its efficiency and ensure environmentally sustainable oil development. However, representing the complex heat and mass transfer in SAGD requires fine-scale grids, leading to exceptionally high computational costs. To address this challenge, this study introduces a novel upscaling technique that enables efficient SAGD modelling with larger grid sizes while maintaining simulation accuracy. The proposed upscaling method employs scale factors, defined as the ratio of the coarse-scale grid sizes to the fine-scale grid sizes, to adjust the oil viscosity–temperature relationships in coarse-scale models. This method saves the need to modify the underlying source code of simulators, and thus favours the users of closed-source commercial modelling software, enabling more efficient and cost-effective field-scale SAGD simulations. The method is validated on the SAGD models of different dimensions, grid-block and overall model sizes, and oil viscosity–temperature relationships. The results show that the upscaling method speeds up the fine-scale simulations to 3.6 and 7887 times faster for 1D and 2D SAGD models, respectively, while preserving reasonable accuracy compared to fine-scale results. The method's robust performance suggests a strong potential for the practical application to large-scale SAGD operations.
1
Achieved speedups of 3.6x for 1D and 7887x for 2D SAGD models while preserving reasonable accuracy versus fine-scale simulations.
2
Introduced a novel upscaling technique for SAGD that adjusts oil viscosity–temperature relationships using scale factors (coarse/fine grid size ratios).
3
Method enables efficient, cost-effective field-scale SAGD modelling by permitting larger grid sizes without large accuracy loss.
4
The method allows use with closed-source commercial simulators without modifying simulator source code.
5
Validated across different model dimensions, grid-block sizes, and viscosity–temperature relationships, showing robust performance.

Upscaled coarse-grid steam-assisted gravity drainage (SAGD) simulation models with adjusted oil viscosity–temperature relationships

A novel upscaling method using scale-factor-adjusted viscosity–temperature models to preserve accuracy and greatly reduce computational cost of thermal-compositional SAGD simulations across different grid scales and model dimensions

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2025-10-07
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Shuyang Liu
Hangyu Li
Qizhi Tan
Zhuofan Hu
Baojiang Sun
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