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Applying the dimensionless scaling criterion of gravity-drainage process, two 3D gravity-drainage experiments (SAGD, SAGD-to-MFAGD) are conducted.
The results show that the scaling criterion of the two-phase flow can deal with the scaling problem accurately both in the single-phase and two-phase flow.
However, the scaling criterion of the single-phase flow only can solve the single-phase scaling problem, but it will overestimate the operating results in the scaling model.
From a comparison of the results it became clear that the scaling criterion for complete suspension is a constant specific power input.
Also, a scaling criterion in terms of the ratio of the length scale and the ratio of heat input is proposed, which can be utilized for the design of a scaled-down experimental facility.
Results demonstrated the high reliability of the software for identifying those particular phenomena (environment heat losses, broken legs flow regime transitions, subcooled liquid vapour mixing, …) that modify the experiment simulations because of the PtoV scaling criterion.
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In addition, three sets of scaling criteria for a full-pressure model, the new scaling criteria (general), the new scaling criteria (ideal), and the new scaling criteria (practical), were proposed.
The selection and optimization of scaling criteria is also analyzed.
Scaling criteria are derived from non-dimensional field and constitutive equations.
Identification of scaling criteria for designing lab-scale experimental facilities has gone through a series of modification.
This paper provides the basic concepts of scaling and dimensionless groups along with the review of recent works on scaling criteria development for EOR processes.
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