IP Library › Granted Patent US 10,753,195
Granted Patent B2
US 10,753,195 · App. 16/544,714 · Granted Aug 25, 2020

Determining diverter effectiveness in a fracture wellbore

Inventors: Matthew A. Dawson (Sugar Land, TX); Günther Kampfer (Trondheim, NO); Lukas Mosser (London, GB)
Assignee: Reveal Energy Services, Inc.
E21B47/06E21B7/06E21B43/26E21B43/261
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Quick Facts
Patent No.
US 10,753,195
App. No.
16/544,714
Granted
Aug 25, 2020
Kind
B2
Abstract

Systems and methods for using pressure signals to assess effectiveness of a diverter in a stimulation wellbore are disclosed. A pressure signal in an observation wellbore in the subsurface formation may be assessed using a pressure sensor in direct fluid communication with a fluid in the observation wellbore. The fluid in the observation wellbore may be indirect fluid communication with a fracture emanating from the observation wellbore. The pressure signal may include a pressure change that is induced by a fracture being formed from a stimulation wellbore in the subsurface formation. The pressure signal may be a pressure-induced poromechanic signal. The slope in the pressure signal before and after the diverter are provided into the stimulation wellbore may be assessed to determine the effectiveness of the diverter.

Claims (45)

1. A method for assessing a diverter injected into a wellbore penetrating a subsurface formation, comprising:

forming a first fracture emanating from a first interval in a first wellbore in the subsurface formation, the first fracture being in direct fluid communication with a first fluid in the first wellbore in the subsurface formation;

recording a first pressure signal in a second wellbore using a pressure sensor in direct fluid communication with a second fluid in the second wellbore that is in direct fluid communication with the subsurface formation through one or more perforations formed in a casing of the second wellbore, the first pressure signal comprising a pressure change induced by a first applied pressure in the first fracture, and wherein recording the first pressure signal in the second wellbore comprises identifying a first pressure-induced poromechanic signal;

determining a first slope of a pressure versus time curve in the first pressure signal;

providing at least one diverter into the first interval in the first wellbore; and

determining a second slope of the pressure versus time curve in the first pressure signal after providing the at least one diverter into the first wellbore to determine an effectiveness of the at least one diverter in inhibiting growth of the first fracture, wherein the at least one diverter is determined as being effective in inhibiting growth of the first fracture when the second slope in the first pressure signal is less than the first slope in the first pressure signal and the ratio of the second slope to the first slope is less than 1.

2. The method of claim 1 , wherein the first slope in the first pressure signal and the second slope in the first pressure signal are slopes in the first pressure-induced poromechanic signal.

3. The method of claim 1 , wherein determining the first slope in the first pressure signal comprises a slope due to the first applied pressure in the first fracture.

4. The method of claim 3 , further comprising applying a second applied pressure in the first fracture after providing the at least one diverter in the first wellbore, wherein the second applied pressure is equal to or greater than the first applied pressure.

5. The method of claim 1 , wherein providing the at least one diverter into the first interval in the first wellbore comprises injecting at least one diverter into the first wellbore.

6. The method of claim 1 , wherein the first pressure signal is induced by fluid pressure from fracture fluid used to form the first fracture in the first wellbore.

7. The method of claim 1 , wherein the second wellbore is adjacent the first wellbore in the formation.

8. The method of claim 1 , wherein the subsurface formation comprises a hydrocarbon-bearing subsurface formation.

9. The method of claim 1 , wherein the second wellbore comprises an unfractured wellbore.

10. The method of claim 1 , wherein the one or more perforations comprises a plurality of perforations.

11. A system for assessing one or more geometric parameters of fractures in a subsurface formation, comprising:

a first wellbore in the subsurface formation;

a first fracture configured to be formed from a first interval in the first wellbore and in direct fluid communication with a first fluid in the first wellbore;

a second wellbore in the subsurface formation;

at least one diverter configured to be provided into the first interval in the first wellbore at a selected time;

a pressure sensor in direct fluid communication with a second fluid in the second wellbore that is in direct fluid communication with the subsurface formation through one or more perforations formed in a casing of the second wellbore; and

a computer processor coupled to the pressure sensor, wherein the computer processor is configured to perform operations comprising:

determining a first pressure signal from the pressure sensor while the first fracture is being formed, the first pressure signal being induced by a first applied pressure in the first fracture, the first pressure signal in the second wellbore comprising a first pressure-induced poromechanic signal;

determining a first slope of a pressure versus time curve in the first pressure signal; and

determining a second slope of the pressure versus time curve in the first pressure signal after the at least one diverter is provided into the first wellbore at the selected time, wherein the second slope is used to determine an effectiveness of the at least one diverter in inhibiting growth of the first fracture, and wherein the at least one diverter is determined as being effective in inhibiting growth of the first fracture when the second slope in the first pressure signal is less than the first slope in the first pressure signal and the ratio of the second slope to the first slope is less than 1.

12. The system of claim 11 , wherein the first slope in the first pressure signal and the second slope in the first pressure signal are slopes in the first pressure-induced poromechanic signal.

13. The system of claim 11 , wherein the pressure sensor comprises a surface pressure gauge in direct fluid communication with the second fluid in the second wellbore.

14. The system of claim 11 , wherein the subsurface formation comprises a hydrocarbon-bearing subsurface formation, and the second wellbore is unfractured.

15. The system of claim 11 , wherein the one or more perforations comprises a plurality of perforations.

16. The system of claim 11 , wherein at least one of the first or second wellbores comprises a horizontal section.

17. A non-transient computer-readable medium including instructions that, when executed by one or more processors, causes the one or more processors to perform operations comprising:

identifying a first fracture that is formed and emanates from a first interval in a first wellbore in the subsurface formation, the first fracture being in direct fluid communication with a first fluid in the first wellbore in the subsurface formation;

assessing a first pressure signal in a second wellbore using a pressure sensor in direct fluid communication with a second fluid in the second wellbore that is in direct fluid communication with the subsurface formation through one or more perforations formed in a casing of the second wellbore, wherein the first pressure signal assessed in the second wellbore includes a pressure change induced by a first applied pressure in the first fracture, and wherein assessing the first pressure signal in the second wellbore comprises identifying a first pressure-induced poromechanic signal in the first pressure signal;

assessing a first slope of a pressure versus time curve in the first pressure signal; and

assessing a second slope of the pressure versus time curve in the first pressure signal after least one diverter is provided into the first wellbore to determine an effectiveness of the at least one diverter in inhibiting growth of the first fracture, wherein the at least one diverter is determined as being effective in inhibiting growth of the first fracture when the second slope in the first pressure signal is less than the first slope in the first pressure signal and the ratio of the second slope to the first slope is less than 1.

18. A method for assessing a diverter injected into a wellbore penetrating a subsurface formation, comprising:

forming a first fracture emanating from a first interval in a first wellbore in the subsurface formation, the first fracture being in direct fluid communication with a first fluid in the first wellbore in the subsurface formation;

recording a first pressure signal in a second wellbore using a pressure sensor in direct fluid communication with a second fluid in the second wellbore that is in direct fluid communication with the subsurface formation through one or more perforations formed in a casing of the second wellbore, wherein the first pressure signal recorded in the second wellbore includes a pressure change induced by a first applied pressure provided in the first fracture, and wherein recording the first pressure signal in the second wellbore comprises identifying a first pressure-induced poromechanic signal in the first pressure signal;

determining a first pressure in a pressure versus time curve in the first pressure signal when the first applied pressure is provided in the first fracture;

providing at least one diverter into the first interval in the first wellbore; and

determining a second pressure in the pressure versus time curve in the first pressure signal after providing the at least one diverter into the first wellbore to determine an effectiveness of the at least one diverter in inhibiting growth of the first fracture, wherein the at least one diverter is determined as being effective in inhibiting growth of the first fracture when the second pressure in the first pressure signal is less than the first pressure in the first pressure signal and the ratio of the second pressure to the first pressure is less than 1.

19. The method of claim 18 , further comprising providing a second applied pressure in the first fracture after providing the at least one diverter in the first wellbore, wherein the second applied pressure is equal to or greater than the first applied pressure.

20. The method of claim 18 , wherein the one or more perforations comprises a plurality of perforations.

21. The method of claim 18 , wherein at least one of the first or second wellbores comprises a horizontal section.

22. The method of claim 18 , wherein the second wellbore comprises an unfractured wellbore that is adjacent the first wellbore in the formation.

Assignments (5)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 20, 2019
From: KAMPFER, GUNTHER
To: EQUINOR ASA
Reel/Frame 050098/0872 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 20, 2019
From: EQUINOR ASA
To: REVEAL ENERGY SERVICES, INC.
Reel/Frame 050099/0866 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 20, 2019
From: DAWSON, MATTHEW A.
To: REVEAL ENERGY SERVICES, INC.
Reel/Frame 050100/0140 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 20, 2019
From: MOSSER, LUKAS
To: EQUINOR US OPERATIONS LLC
Reel/Frame 050100/0271 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 20, 2019
From: EQUINOR US OPERATIONS LLC
To: REVEAL ENERGY SERVICES, INC.
Reel/Frame 050100/0419 →
Continuity (3)
Continuation 16538164 · Aug 12, 2019
Continuation 15192218 · Jun 24, 2016
Related Publication 20190368338A1 · Dec 5, 2019