WO2022036216A1 - Method of deploying carbon dioxide foam flooding in an oil reservoir - Google Patents
Method of deploying carbon dioxide foam flooding in an oil reservoir Download PDFInfo
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- WO2022036216A1 WO2022036216A1 PCT/US2021/045938 US2021045938W WO2022036216A1 WO 2022036216 A1 WO2022036216 A1 WO 2022036216A1 US 2021045938 W US2021045938 W US 2021045938W WO 2022036216 A1 WO2022036216 A1 WO 2022036216A1
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- foam
- reservoir
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Classifications
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- E—FIXED CONSTRUCTIONS
- E21—EARTH OR ROCK DRILLING; MINING
- E21B—EARTH OR ROCK DRILLING; OBTAINING OIL, GAS, WATER, SOLUBLE OR MELTABLE MATERIALS OR A SLURRY OF MINERALS FROM WELLS
- E21B43/00—Methods or apparatus for obtaining oil, gas, water, soluble or meltable materials or a slurry of minerals from wells
- E21B43/16—Enhanced recovery methods for obtaining hydrocarbons
- E21B43/164—Injecting CO2 or carbonated water
-
- E—FIXED CONSTRUCTIONS
- E21—EARTH OR ROCK DRILLING; MINING
- E21B—EARTH OR ROCK DRILLING; OBTAINING OIL, GAS, WATER, SOLUBLE OR MELTABLE MATERIALS OR A SLURRY OF MINERALS FROM WELLS
- E21B43/00—Methods or apparatus for obtaining oil, gas, water, soluble or meltable materials or a slurry of minerals from wells
- E21B43/16—Enhanced recovery methods for obtaining hydrocarbons
- E21B43/166—Injecting a gaseous medium; Injecting a gaseous medium and a liquid medium
- E21B43/168—Injecting a gaseous medium
-
- C—CHEMISTRY; METALLURGY
- C09—DYES; PAINTS; POLISHES; NATURAL RESINS; ADHESIVES; COMPOSITIONS NOT OTHERWISE PROVIDED FOR; APPLICATIONS OF MATERIALS NOT OTHERWISE PROVIDED FOR
- C09K—MATERIALS FOR MISCELLANEOUS APPLICATIONS, NOT PROVIDED FOR ELSEWHERE
- C09K8/00—Compositions for drilling of boreholes or wells; Compositions for treating boreholes or wells, e.g. for completion or for remedial operations
- C09K8/58—Compositions for enhanced recovery methods for obtaining hydrocarbons, i.e. for improving the mobility of the oil, e.g. displacing fluids
- C09K8/594—Compositions used in combination with injected gas, e.g. CO2 orcarbonated gas
Definitions
- This document relates to a method of oil recovery from a reservoir using carbon dioxide foam flooding, particularly carbon dioxide foam with increased foam strength.
- Carbon dioxide (CO2) flooding can be effective at recovering remaining oil from a reservoir, even one that has already undergone primary depletion and subsequent waterflooding.
- CO2 it is common for the CO2 not to sweep the entire target volume, due to channeling (inj ectant preferentially sweeping the higher-permeability layers) and gravity override (buoyant CO2 preferentially sweeps the reservoir’s uppermost layers), harming vertical sweep, areal sweep, or both.
- a primary cause of the unfavorable sweep is a condition where the viscosity of the injectant is lower than that of the oil that it is intended to displace.
- the apparent viscosity of the CO2 is increased, commonly by foaming the CO2 in situ. This can be accomplished by alternate injection of slugs of CO2 and surfactantladen brine.
- the surfactant stabilizes foam lamellae in the CO2 within the rock, adding additional resistance to CO2 flow. The more stable the lamellae, the more lamellae exist, and the greater the increase in CO2 apparent viscosity.
- a problem in this usage lies in the inherent weakness of CO2 foam.
- the water solubility of CO2 is much greater than most other enhanced oil recovery (EOR) inj ectants.
- EOR enhanced oil recovery
- This weakness of CO2 foam results in limited success when used to increase CO2 sweep.
- an improved method is needed for CO2 foam flooding that results in increased foam strength.
- the method involves: providing a first foam comprising carbon dioxide (CO2) to the reservoir; providing a second foam to the reservoir, wherein the second foam is produced by alternately injecting into the reservoir: a gas-mixture comprising CO2 and nitrogen (N2) or CO2 and methane (CPU) or CO2 and N2 and CPU; and a solution comprising brine and a surfactant; and recovering oil from the reservoir.
- the gas-mixture comprises CO2 and N2.
- the gas-mixture comprises about 1 mol% to about 99 mol% N2.
- the gas-mixture comprises CO2 and CPU.
- the gas-mixture comprises about 1 mol% to about 99 mol% CPU.
- the gas-mixture is provided as a slug.
- the surfactant in the solution comprising brine and a surfactant is selected from a nonionic surfactant, an anionic surfactant, a zwitterionic surfactant, and combinations thereof.
- the surfactant comprises about 1% to about 15% of the solution.
- the solution comprising brine and a surfactant is provided as a slug.
- providing the second foam to the reservoir is repeated until the recovery of the oil from the reservoir reaches an economic limit. In some embodiments, providing the second foam to the reservoir is performed one time or more than one time.
- the first foam is formed in situ in the reservoir.
- the first foam is formed by alternately injecting a solution comprising CO2 and a solution comprising brine and a surfactant.
- the solution comprising CO2 and the solution comprising brine and a surfactant are each provided as slugs.
- the alternate injection of the solution comprising CO2 and the solution comprising brine and a surfactant is repeated until the recovery of the oil from the reservoir reaches an economic limit.
- the alternate injection of the solution comprising CO2 and the solution comprising brine and a surfactant is performed one time or more than one time.
- the method comprises injecting a solution comprising N2 and a solution comprising brine and a surfactant after providing the first foam to the reservoir.
- the solution comprising N2 and a solution comprising brine and a surfactant are injected simultaneously.
- the method results in a greater apparent viscosity of the CO2 as compared to a method that does not include the step of providing the second foam to the reservoir. In some embodiments, the method increases the total sweep efficiency of the reservoir as compared to a method that does not include the step of providing the second foam to the reservoir. In some embodiments, the method provides increased oil recovery as compared to a method that does not include the step of providing the second foam to the reservoir.
- Also provided in the present disclosure is a method for flooding a reservoir with CO2 foam, comprising providing a foam to the reservoir, wherein the foam is produced by alternately injecting into the reservoir: a gas-mixture comprising CO2 and N2 or CO2 and CH4 or CO2 and N2 and CH4; and a solution comprising brine and a surfactant.
- the gas-mixture comprises CO2 and N2. In some embodiments, the gas-mixture comprises about 1 mol% to about 99 mol% N2. In some embodiments, the gas-mixture comprises CO2 and CH4. In some embodiments, the gasmixture comprises about 1 mol% to about 90 mol% CH4. In some embodiments, the gas-mixture is provided as a slug.
- the surfactant in the solution comprising brine and a surfactant is selected from a nonionic surfactant, an anionic surfactant, a zwitterionic surfactant, and combinations thereof.
- the surfactant comprises about 1% to about 15% of the solution.
- the solution is provided as a slug.
- the alternate injections of the gasmixture and the solution are performed one time or more than one time.
- the method further comprises injecting into the reservoir a solution comprising N2 and a solution comprising brine.
- the solution comprising N2 and a solution comprising brine and a surfactant are injected simultaneously.
- the injection of a solution comprising N2 and a solution comprising brine occurs before the foam is provided to the reservoir.
- the injection of a solution comprising N2 and a solution comprising brine occurs after the foam is provided to the reservoir.
- FIG. 1 shows the effect of gas composition on foam strength.
- FIG. 2 shows the effect of pressure on CO2 foam.
- the present disclosure provides methods for recovering oil from a reservoir using carbon dioxide (CO2) foam flooding.
- CO2 foam flooding utilize a CO2 foam that has been made stronger by dilution with nitrogen (N2) or methane (CH4). Methane is less water-soluble than CO2, and N2 even less so. Therefore, in some embodiments, CO2 foam strength increases from a weak foam to a stronger foam by adding CH4 or N2.
- the methods of the present disclosure using the stronger CO2 foam result in an improved volumetric sweep.
- CO2 has the greatest local displacement efficiency (lowest residual oil saturation (Sor)), followed by CH4, with N2 leaving behind the greatest Sor.
- Sor lower residual oil saturation
- the methods of the present disclosure maximize oil recovery by first allowing CO2 to sweep as much oil as it can by CO2 flooding followed by CO2 foam flooding using the stronger CO2 foam.
- subsequent injection ofN2 along with CO2 foam enables sweeping of some of the remaining unswept regions, albeit at a higher Sor.
- the methods of the present disclosure maximize total sweep efficiency of the target reservoir volume.
- some of the CO2 partitions from the vapor into the in situ liquid oleic phase.
- this results in a leading-edge of the advancing CO2 -front that is enriched in N2, which improves sweep even more due to increased foam strength at the propagating foam front.
- this method is used in regions of the reservoir unswept by CO2, where the oil is not yet saturated with CO2.
- the methods increase CO2 sweep.
- the methods result in greater oil recovery as compared to methods where a CO2 foam is used that does not contain N2 or CH4.
- the methods of the present disclosure can be used in any type of reservoir or underground formation, such as sandstone or carbonate or porous or fractured rock formation.
- V alues expressed in a range format should be interpreted in a flexible manner to include not only the numerical values explicitly recited as the limits of the range, but also to include all the individual numerical values or sub-ranges encompassed within that range as if each numerical value and sub-range is explicitly recited.
- a range of “about 0.1% to about 5%” or “about 0.1% to 5%” should be interpreted to include not just about 0.1% to about 5%, but also the individual values (for example, 1%, 2%, 3%, and 4%) and the sub-ranges (for example, 0.1% to 0.5%, 1.1% to 2.2%, 3.3% to 4.4%) within the indicated range.
- the acts can be carried out in any order, except when a temporal or operational sequence is explicitly recited. Furthermore, specified acts can be carried out concurrently unless explicit claim language recites that they be carried out separately. For example, a claimed act of doing X and a claimed act of doing Y can be conducted simultaneously within a single operation, and the resulting process will fall within the literal scope of the claimed process.
- strong foam means foam that causes a large reduction in gas viscosity
- weak foam means foam that causes only a small reduction in gas viscosity. Stronger foam results in greater improvement in sweep efficiency of the inj ectant.
- sweep efficiency refers to a measure of the effectiveness of an enhanced oil recovery process. In some embodiments, sweep efficiency is the percentage of the reservoir volume displaced of oil by an injection fluid at a particular time.
- Residual oil saturation is defined as the fraction of the reservoir pore volume which does not flow.
- the methods of the present disclosure are improved methods for flooding a reservoir with CO2, resulting in increased sweep efficiency, as compared to, for example, standard methods of CO2 foam flooding.
- the methods of the present disclosure include: providing a first foam comprising carbon dioxide (CO2) to the reservoir; providing a second foam to the reservoir, where the second foam is produced by alternately injecting into the reservoir a gas-mixture comprising CO2 and nitrogen (N2) or CO2 and methane (CH4); and a solution comprising brine and a surfactant; and recovering oil from the reservoir.
- CO2 carbon dioxide
- N2 nitrogen
- CH4 CO2 and methane
- the methods of the present disclosure result in a greater apparent viscosity of the CO2 in the foam as compared to a method of CO2 foam flooding that does not include flooding with a CO2 foam diluted with either N2 or CH4.
- the methods of the present disclosure increase the total sweep efficiency of the reservoir as compared to a method of CO2 foam flooding that does not include flooding with a CO2 foam diluted with either N2 or CH4.
- the methods of the present disclosure provide increased oil recovery as compared to a method of CO2 foam flooding that does not include flooding with a CO2 foam diluted with either N2 or CH4.
- the first step of the method includes injecting a first foam containing CO2 into a reservoir or well.
- the first step can be any method of CO2 foam flooding used in enhanced oil recovery (EOR) applications known to those skilled in the art.
- the first foam is any CCh-containing foam that is typically used for foam flooding.
- the foam can be formed in any one of a number of ways.
- the foam is generated at the surface by combining the ingredients in a suitable mixing device, such as a foam generator, then injected into the reservoir.
- the foam is generated in situ by injecting the ingredients of the foam either separately or simultaneously into the reservoir.
- two or more of the components are mixed together at the surface prior to introduction into the well, then the foam forms during its passage down the well and in the reservoir in the vicinity of the well.
- the foam is formed in situ in the reservoir.
- forming the foam in situ includes alternately injecting a gas-mixture containing CO2 and a solution containing brine and a surfactant into the reservoir.
- the gas-mixture and the solution are each injected as slugs.
- the steps of injecting the carbon dioxide slug and the brine and surfactant slug is repeated in alternating fashion to enhance recovery of oil from a reservoir.
- the alternate injections of the gasmixture containing CO2 and the solution containing brine and a surfactant are each performed one time or more than one time.
- the gas-mixture and the solution can each be injected one time, two times, three times, four times, five times, or more.
- the number of times the gas-mixture and the solution are injected can depend on any number of factors.
- the number of times the gas-mixture and the solution are injected can depend on the process design for a specific reservoir.
- the number of times the gas-mixture and the solution are injected depends on the availability of surface injection facilities.
- the alternate injections are repeated until a foam comprising CO2 has formed.
- the alternate injections of the gas-mixture containing CO2 and the solution containing brine and a surfactant are repeated until the recovery of the oil from the reservoir reaches an economic limit.
- economic limit of a well (reservoir) or group of wells there are costs associated with keeping a well on production, including, but not limited to, artificial lift, surface fluid processing and transport, production testing and monitoring, and well and equipment maintenance.
- the well (reservoir) or group of wells must not only produce enough valuable fluids, such as oil, to cover all such costs, but also provide an adequate profit for the company. For example, where CO2 is injected, often a large fraction of the injected CO2 is produced at the production wells.
- the amount of the carbon dioxide injected into the reservoir will vary for different reservoirs, and will be dependent upon total reservoir pore volume, hydrocarbon pore volume, and other unique reservoir characteristics. In some embodiments, the amount of carbon dioxide injected depends on the effective pore volume, which is the portion of the reservoir which is expected to be contacted by the carbon dioxide injected. Effective pore volume can be determined by conventional laboratory and field techniques known to those of skill in the art.
- the surfactant included in the brine solution can be any surfactant capable of forming a foam with CO2.
- the surfactant is selected from a nonionic surfactant, an anionic surfactant, a zwitterionic surfactant, and combinations thereof.
- the method includes providing a foam to the reservoir that contains CO2 diluted with either nitrogen (N2) or methane (CH4), or both N2 and CH4.
- CO2 foam can be made stronger by dilution with small concentrations of N2 or CFU. Methane is less water-soluble than CO2, and N2 even less so. Therefore, CO2 foam can increase in strength by adding CH4 or N2. Stronger foam can lead to improvement in volumetric sweep.
- the diluted foam containing CO2 and either N2 or CH4 or both N2 and CH4 is provided to the reservoir after providing a first foam containing CO2 to the reservoir.
- the diluted foam containing CO2 and either N2 or CH4 or both N2 and CH4 is provided to the reservoir after CO2 foam flooding has been performed, such as CO2 foam flooding used in enhanced oil recovery (EOR) applications known to those skilled in the art.
- CO2 foam flooding used in enhanced oil recovery (EOR) applications known to those skilled in the art.
- the diluted foam containing CO2 and either N2 or CH4 or both N2 and CH4 is produced by alternately injecting into the reservoir a gas-mixture containing CO2 and N2, a gas-mixture containing CO2 and CH4, or a gas mixture containing CO2, N2 and CH4; and a solution containing brine and a surfactant.
- the gas-mixture is provided as a slug.
- the solution containing brine and a surfactant is provided as a slug.
- the gas-mixture contains CO2 and N2.
- the gasmixture can contain an amount of N2 that is sufficient to increase the strength of the foam once formed.
- the gas-mixture contains about 1 mol% to about 99 mol% N2, for example, about 1 mol% to about 90 mol%, about 10 mol% to about 80 mol%, about 20 mol% to about 70 mol%, about 30 mol% to about 60 mol%, or about 50 mol% N2.
- the gas-mixture contains about 1 mol%, about 5 mol%, about 10 mol%, about 15 mol%, about 20 mol%, about 25 mol%, about 30 mol%, about 35 mol%, about 40 mol%, about 45 mol%, about 50 mol%, about 55 mol%, about 60 mol%, about 65 mol%, about 70 mol%, about 75 mol%, about 80 mol%, about 85 mol%, about 90 mol%, about 95 mol%, or about 99 mol% N2.
- the gas-mixture contains CO2 and CH4.
- the gasmixture can contain an amount of CH4 that is sufficient to increase the strength of the foam once formed.
- the gas-mixture contains about 1 mol% to about 99 mol% CH4, for example, about 1 mol% to about 90 mol%, about 10 mol% to about 80 mol%, about 20 mol% to about 70 mol%, about 30 mol% to about 60 mol%, or about 50 mol% CH4.
- the gas-mixture contains about 1 mol%, about 5 mol%, about 10 mol%, about 15 mol%, about 20 mol%, about 25 mol%, about 30 mol%, about 35 mol%, about 40 mol%, about 45 mol%, about 50 mol%, about 55 mol%, about 60 mol%, about 65 mol%, about 70 mol%, about 75 mol%, about 80 mol%, about 85 mol%, about 90 mol%, about 95 mol%, or about 99 mol% CH4.
- the gas-mixture contains CO2 and both N2 and CH4.
- the gas-mixture can contain a total amount of N2 and CH4 that is sufficient to increase the strength of the foam once formed.
- the gas-mixture contains about 1 mol% to about 99 mol% N2 and CH4, for example, about 1 mol% to about 90 mol%, about 10 mol% to about 80 mol%, about 20 mol% to about 70 mol%, about 30 mol% to about 60 mol%, or about 50 mol% N2 and CH4.
- the gasmixture contains about 1 mol%, about 5 mol%, about 10 mol%, about 15 mol%, about 20 mol%, about 25 mol%, about 30 mol%, about 35 mol%, about 40 mol%, about 45 mol%, about 50 mol%, about 55 mol%, about 60 mol%, about 65 mol%, about 70 mol%, about 75 mol%, about 80 mol%, about 85 mol%, about 90 mol%, about 95 mol%, or about 99 mol% N2 and CH4.
- the amount of the gas-mixture containing carbon dioxide and either N2 or CH4 or both N2 and CH4 injected into the reservoir will vary for different reservoirs, and will be dependent upon total reservoir pore volume, hydrocarbon pore volume, reservoir fluid composition and other unique reservoir characteristics.
- the amount of carbon dioxide injected depends on the effective pore volume, which is the portion of the reservoir which is expected to be contacted by the carbon dioxide injected. Effective pore volume can be determined by conventional laboratory and field techniques known to those of skill in the art.
- the surfactant included in the brine solution can be any surfactant capable of forming a foam with CO2.
- the surfactant is selected from a nonionic surfactant, an anionic surfactant, a zwitterionic surfactant, and combinations thereof.
- Suitable surfactants include, but are not limited to a cocamidopropyl betaine surfactant (for example, Amphosol®, sold by Stepan Company, Northfield, IL, USA), sodium dodecyl sulfonate, and selected anionic, cationic, zwitterionic or optimized proprietary blends of many surfactants.
- the solution contains about 0.1% to about 5% of the surfactant, such as about 0.1% to about 4%, about 0.5% to about 3%, about 1% to about 2%, or about 0.1%, about 0.2%, about 0.3%, about 0.4%, about 0.5%, about 0.6%, about 0.7%, about 0.8%, about 0.9%, about 1%, about 1.5%, about 2%, about 2.5%, about 3%, about 3.5%, about 4%, about 4.5%, or about 5% surfactant.
- the surfactant such as about 0.1% to about 4%, about 0.5% to about 3%, about 1% to about 2%, or about 0.1%, about 0.2%, about 0.3%, about 0.4%, about 0.5%, about 0.6%, about 0.7%, about 0.8%, about 0.9%, about 1%, about 1.5%, about 2%, about 2.5%, about 3%, about 3.5%, about 4%, about 4.5%, or about 5% surfactant.
- the alternate injections of the gasmixture containing CO2 and either N2 or CH4 or both N2 and CH4 and the solution containing brine and a surfactant are each performed one time or more than one time.
- the gas-mixture and the solution can each be injected one time, two times, three times, four times, five times, or more.
- the alternate injections are repeated until a foam has formed.
- the alternate injections of the gas-mixture and the solution are repeated until the recovery of the oil from the reservoir reaches an economic limit.
- the method further includes a step of injecting an N2 foam into the reservoir.
- the N2 foam is formed by injecting a solution containing N2 and a solution containing brine and a surfactant into the reservoir.
- the solution containing N2 and the solution containing brine and a surfactant are injected simultaneously.
- the solution containing N2 and the solution containing brine and a surfactant are injected sequentially.
- the solution containing N2 is injected first, followed by injection of the solution containing brine and a surfactant.
- the N2 foam is provided as a slug.
- the N2 foam is provided to the reservoir prior to providing the diluted foam containing CO2 and either N2 or CH4 or both N2 and CH4. In some embodiments of the method, the N2 foam is provided to the reservoir after providing a first foam containing CO2 to the reservoir. In some embodiments of the method, the N2 foam is provided to the reservoir after CO2 foam flooding has been performed, such as CO2 foam flooding used in enhanced oil recovery (EOR) applications known to those skilled in the art.
- EOR enhanced oil recovery
- the foam is diluted with N2.
- the foam is diluted with methane.
- the foam is diluted with both N2 and methane.
- the method includes providing a foam to a reservoir, where the foam is produced by alternately injecting into the reservoir a gas-mixture containing CO2 and N2 or CO2 and CH4 or CO2 and N2 and CH4; and a solution comprising brine and a surfactant.
- the gasmixture is provided as a slug.
- the solution is provided as a slug.
- the alternate injections of the gasmixture containing CO2 and either N2 or CH4 or both N2 and CH4 and the solution containing brine and a surfactant are each performed one time or more than one time.
- the gas-mixture and the solution can each be injected one time, two times, three times, four times, five times, or more.
- the alternate injections are repeated until a foam has formed.
- the alternate injections of the gas-mixture and the solution are repeated until the recovery of the oil from the reservoir reaches an economic limit.
- the method further includes a step of injecting an N2 foam into the reservoir.
- the N2 foam is formed by injecting a solution containing N2 and a solution containing brine and a surfactant into the reservoir.
- the solution containing N2 and the solution containing brine and a surfactant are injected simultaneously.
- the solution containing N2 and the solution containing brine and a surfactant are injected sequentially.
- the solution containing N2 is injected first, followed by injection of the solution containing brine and a surfactant.
- the N2 foam is provided as a slug.
- the N2 foam is provided to the reservoir prior to providing the diluted foam containing CO2 and either N2 or CH4 or both N2 and CH4. In some embodiments, the N2 foam is provided to the reservoir after providing the diluted foam containing CO2 and either N2 or CH4 or both N2 and CH4.
- the methods of the present disclosure can be used in any subterranean formation or reservoir where oil recovery is desired.
- the methods can be used to recover remaining oil from a reservoir that has already undergone primary depletion and subsequent waterflooding.
- the methods can be used to produce oil from a reservoir after secondary or tertiary production methods have been performed.
- the methods of the present disclosure can be used in carbonate formations or sandstone formations.
- FIG. 1 displays the apparent viscosity of foam of different compositions at low pressures (greater pressure gradient means greater apparent viscosity).
- CO2 was a weaker foam, with CH4 twice as strong and N2 three times as strong.
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Abstract
Description
Claims
Priority Applications (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| SA523442502A SA523442502B1 (en) | 2020-08-13 | 2023-02-09 | A method for deploying carbon dioxide foam immersion in an oil tank |
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US202063065170P | 2020-08-13 | 2020-08-13 | |
| US63/065,170 | 2020-08-13 |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| WO2022036216A1 true WO2022036216A1 (en) | 2022-02-17 |
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| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| PCT/US2021/045938 Ceased WO2022036216A1 (en) | 2020-08-13 | 2021-08-13 | Method of deploying carbon dioxide foam flooding in an oil reservoir |
Country Status (3)
| Country | Link |
|---|---|
| US (1) | US11708751B2 (en) |
| SA (1) | SA523442502B1 (en) |
| WO (1) | WO2022036216A1 (en) |
Cited By (1)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CN119712091A (en) * | 2025-03-03 | 2025-03-28 | 西南石油大学 | Determination method for application limit of carbon dioxide huff and puff and carbon dioxide-water displacement of conglomerate oil reservoir |
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| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US12547945B2 (en) | 2022-03-16 | 2026-02-10 | Saudi Arabian Oil Company | Dew point pressure prediction using isothermal constant composition expansion and artificial intelligence |
| US12553329B2 (en) | 2022-03-18 | 2026-02-17 | Saudi Arabian Oil Company | Automated decline curve and production analysis using automated production segmentation, empirical modeling, and artificial intelligence |
| US20250333653A1 (en) * | 2023-04-04 | 2025-10-30 | Ivan E. Terez | Method for treating shale formations using cyclic steam injection |
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| US9850421B2 (en) * | 2011-09-23 | 2017-12-26 | Dow Global Technologies Llc | Use of carbon dioxide soluble nonionic surfactants for enhanced crude oil recovery |
| US9828815B2 (en) * | 2014-09-11 | 2017-11-28 | Baker Hughes, A Ge Company, Llc | Foamed fluid compositions having high salinity using anionic surfactants and methods therefor |
| FR3028716B1 (en) * | 2014-11-25 | 2016-11-25 | Pellenc Sa | ELECTROPORTATIVE TOOL, ESPECIALLY AN ELECTRICAL SECTOR WITH THERMAL DISSIPATOR. |
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2021
- 2021-08-13 WO PCT/US2021/045938 patent/WO2022036216A1/en not_active Ceased
- 2021-08-13 US US17/401,708 patent/US11708751B2/en active Active
-
2023
- 2023-02-09 SA SA523442502A patent/SA523442502B1/en unknown
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| US4113011A (en) * | 1977-03-07 | 1978-09-12 | Union Oil Company Of California | Enhanced oil recovery process |
| US4828032A (en) * | 1987-10-15 | 1989-05-09 | Exxon Production Research Company | Oil recovery process using alkyl hydroxyaromatic dianionic surfactants as mobility control agents |
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Cited By (1)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CN119712091A (en) * | 2025-03-03 | 2025-03-28 | 西南石油大学 | Determination method for application limit of carbon dioxide huff and puff and carbon dioxide-water displacement of conglomerate oil reservoir |
Also Published As
| Publication number | Publication date |
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| SA523442502B1 (en) | 2025-04-10 |
| US11708751B2 (en) | 2023-07-25 |
| US20220049589A1 (en) | 2022-02-17 |
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