Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Miscible Displacement in a Multiphase System

View through CrossRef
Introduction Displacement by flooding with a miscible liquid is a possible means for recovering the estimated two-thirds of the oil that remains behind after primary production. The immense economic importance of a process that can recover such large quantities of oil has led to extensive laboratory studies of miscible displacement. As usual in production research, most laboratory studies of miscible displacement have not attempted to reproduce all of the conditions existing in a petroleum reservoir. In the early stages of investigation the need has been for information on the broad, basic principles of the phenomena involved in miscible displacement. The effects of overburden pressure, reservoir temperature, and wettability have been considered of secondary importance. However, one property of a petroleum reservoir which is expected to be of major importance and yet has been omitted from many laboratory studies is the presence of interstitial water.Two possible effects of interstitial water on the displacement mechanism in the hydrocarbon phase immediately come to mind. First, from the generally accepted theory that capillarity governs the distribution of oil and water in porous rock one would expect that for water-wet rock the water will be in the small pores and oil in the large pores. A miscible displacement of oil carried out in the presence of water is operating in a pore size distribution shown in Fig. 1b, whereas if the same test had been performed with only one phase present the pore size distribution is as shown in Fig. la. Although there is not yet a theory of miscible displacement which explains in detail the effect of pore size distribution, one would expect the differences between Figs. 1a and 1b to influence the displacement efficiency.A second factor which may make a multiphase system different from a single-phase system is the presence in the multiphase system of dead-end pores or dendritic structure. Experiments of various kinds on reservoir rock have led to the belief that all pores in the network structure of a porous rock take part in conducting fluid during single phase fluid flow. There are then no dead-end pores and no fingers or dendritic structures containing stagnant fluid. SPEJ P. 189^
Title: Miscible Displacement in a Multiphase System
Description:
Introduction Displacement by flooding with a miscible liquid is a possible means for recovering the estimated two-thirds of the oil that remains behind after primary production.
The immense economic importance of a process that can recover such large quantities of oil has led to extensive laboratory studies of miscible displacement.
As usual in production research, most laboratory studies of miscible displacement have not attempted to reproduce all of the conditions existing in a petroleum reservoir.
In the early stages of investigation the need has been for information on the broad, basic principles of the phenomena involved in miscible displacement.
The effects of overburden pressure, reservoir temperature, and wettability have been considered of secondary importance.
However, one property of a petroleum reservoir which is expected to be of major importance and yet has been omitted from many laboratory studies is the presence of interstitial water.
Two possible effects of interstitial water on the displacement mechanism in the hydrocarbon phase immediately come to mind.
First, from the generally accepted theory that capillarity governs the distribution of oil and water in porous rock one would expect that for water-wet rock the water will be in the small pores and oil in the large pores.
A miscible displacement of oil carried out in the presence of water is operating in a pore size distribution shown in Fig.
1b, whereas if the same test had been performed with only one phase present the pore size distribution is as shown in Fig.
la.
Although there is not yet a theory of miscible displacement which explains in detail the effect of pore size distribution, one would expect the differences between Figs.
1a and 1b to influence the displacement efficiency.
A second factor which may make a multiphase system different from a single-phase system is the presence in the multiphase system of dead-end pores or dendritic structure.
Experiments of various kinds on reservoir rock have led to the belief that all pores in the network structure of a porous rock take part in conducting fluid during single phase fluid flow.
There are then no dead-end pores and no fingers or dendritic structures containing stagnant fluid.
SPEJ P.
189^.

Related Results

Miscible Flood Forecasting Technique At Judy Creek
Miscible Flood Forecasting Technique At Judy Creek
Abstract A simplified, yet rigorous forecasting technique was developed to predict the recovery performance of a hydrocarbon miscible flood in the Judy Creek Beav...
Design of a Tertiary Hydrocarbon Miscible Flood for the Mitsue Reservoir
Design of a Tertiary Hydrocarbon Miscible Flood for the Mitsue Reservoir
Summary. A large-scale hydrocarbon miscible flood has been designed and is being conducted in the Mitsue Gilwood Sand Unit No. 1 in Alberta, Canada. The horizonta...
Flow Characterization Of Miscible Displacement Processes
Flow Characterization Of Miscible Displacement Processes
Abstract One of the main goals of enhanced oil recovery (EOR) is to achieve maximum oil recovery. The occurrences Of dispersion of miscible displacement cause not...
Implementation of multiphase metering on unmanned wellhead platform
Implementation of multiphase metering on unmanned wellhead platform
Abstract In 1997 TotalFinaElf installed a multiphase meter on an offshore unmanned wellhead platform in the Middle East. The decision to go for the multiphase met...
Review of BP's Global Gas Injection Projects
Review of BP's Global Gas Injection Projects
Abstract Miscible gas flooding is an established method for enhancing oil recovery that can be successfully deployed in secondary or tertiary mode. BP has developed ...
Recent Developments In Laboratory Data Sets For Determination Of Miscibility Limits
Recent Developments In Laboratory Data Sets For Determination Of Miscibility Limits
Abstract Interpretive methods for the evaluation of miscible flood performance have been under considerable scrutiny over the last five years, It has been recentl...
New Pseudo-Pressure and Pseudo-Time Functions for Multiphase Flow
New Pseudo-Pressure and Pseudo-Time Functions for Multiphase Flow
Abstract The development of pressure transient analysis was based on the assumption of a single phase slightly compressible fluid. This assumption was later relaxed ...

Back to Top