IP Library Granted Patent US 9,933,535
Granted Patent B2
US 9,933,535 · App. 14/644,693 · Granted Apr 3, 2018

Determining a fracture type using stress analysis

Inventor: Aimen Hussein Amer (Ahmadi, KW)
Assignee: Schlumberger Technology Corporation
G01V1/30G01V1/282G01V2210/646G01V2210/66
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Quick Facts
Patent No.
US 9,933,535
App. No.
14/644,693
Granted
Apr 3, 2018
Kind
B2
Abstract

Various implementations directed to determining a fracture type using stress analysis are provided. In one implementation, a method may include receiving seismic data acquired in a seismic survey of a region of interest. The method may also include performing a kinematic analysis on the seismic data. The method may further include generating fracture planes from the seismic data based on the kinematic analysis. The method may additionally include generating a mechanical earth model based on the seismic data. The method may further include performing a critical stress analysis on the fracture planes based on the mechanical earth model. The method may also include determining a fracture type of respective fractures in the fracture planes based on the critical stress analysis.

Claims (65)

1. A method, comprising:

receiving seismic data acquired in a seismic survey of a region of interest;

performing a kinematic analysis on the seismic data;

generating one or more fracture planes from the seismic data based on the kinematic analysis;

generating a mechanical earth model based on the seismic data;

performing a critical stress analysis on the one or more fracture planes based on the mechanical earth model; and

determining a fracture type of respective fractures in the one or more fracture planes based on the critical stress analysis.

2. The method of claim 1 , wherein performing the critical stress analysis comprises:

calculating a shear stress and a normal stress acting on the respective fractures in the one or more fracture planes based on the mechanical earth model; and

determining whether the respective fractures are critically stressed, wherein the respective fractures are critically stressed if the shear stress is greater than the normal stress.

3. The method of claim 2 , wherein determining the fracture type of the respective fractures comprises:

determining that the respective fractures are open fractures if critically stressed; and

determining that the respective fractures are closed fractures if not critically stressed.

4. The method of claim 1 , further comprising:

determining whether the respective fractures are open fractures or closed fractures based on the critical stress analysis; and

filtering the one or more fracture planes to remove the closed fractures.

5. The method of claim 1 , wherein performing the kinematic analysis comprises generating a kinematic model, wherein the kinematic model indicates one or more areas of the region of interest having a higher potential of having fractures than other areas of the region of interest.

6. The method of claim 5 , wherein generating the one or more fractures planes comprises:

generating ant track data from the seismic data using an ant track algorithm;

extracting the one or more fracture planes from the ant track data; and

generating the one or more extracted fracture planes if the one or more extracted fracture planes match the kinematic model.

7. The method of claim 6 , wherein the one or more extracted fracture planes match the kinematic model if a predetermined number of fractures of the extracted fracture planes are positioned in the areas of the region of interest having the higher potential of having fractures indicated by the kinematic model.

8. The method of claim 1 , further comprising:

deriving one or more geomechanical properties of the region of interest from the mechanical earth model; and

performing the critical stress analysis on the one or more fracture planes based on the one or more geomechanical properties.

9. The method of claim 8 , wherein the one or more geomechanical properties are selected from a group consisting of:

one or more rock properties;

one or more elastic properties; and

one or more stress properties.

10. The method of claim 1 , wherein the seismic data comprise a three-dimensional seismic volume.

11. The method of claim 1 , further comprising attenuating noise in the seismic data.

12. A non-transitory computer-readable medium having stored thereon a plurality of computer-executable instructions which, when executed by a computer, cause the computer to:

receive seismic data acquired in a seismic survey of a region of interest;

perform a kinematic analysis on the seismic data;

generate one or more fracture planes from the seismic data based on the kinematic analysis;

generate a mechanical earth model based on the seismic data;

perform a critical stress analysis on the one or more fracture planes based on the mechanical earth model; and

determine a fracture type of respective fractures in the one or more fracture planes based on the critical stress analysis.

13. The non-transitory computer-readable medium of claim 12 , wherein the computer-executable instructions which, when executed by a computer, cause the computer to perform the critical stress analysis, further comprise computer-executable instructions which, when executed by the computer, cause the computer to:

calculate a shear stress and a normal stress acting on the respective fractures in the one or more fracture plane based on the mechanical earth model; and

determine whether the respective fractures are critically stressed, wherein the respective fractures are critically stressed if the shear stress is greater than the normal stress.

14. The non-transitory computer-readable medium of claim 13 , wherein the computer-executable instructions which, when executed by a computer, cause the computer to determine the fracture type of the respective fractures, further comprise computer-executable instructions which, when executed by the computer, cause the computer to:

determine that the respective fractures are open fractures if critically stressed; and

determine that the respective fractures are closed fractures if not critically stressed.

15. The non-transitory computer-readable medium of claim 12 , wherein the computer-executable instructions which, when executed by a computer, cause the computer to perform the kinematic analysis, further comprise computer-executable instructions which, when executed by the computer, cause the computer to generate a kinematic model, wherein the kinematic model indicates one or more areas of the region of interest having a higher potential of having fractures than other areas of the region of interest.

16. The non-transitory computer-readable medium of claim 15 , wherein the computer-executable instructions which, when executed by a computer, cause the computer to generate the one or more fractures planes, further comprise computer-executable instructions which, when executed by the computer, cause the computer to:

generate ant track data from the seismic data using an ant track algorithm;

extract the one or more fracture planes from the ant track data; and

generate the one or more extracted fracture planes if the one or more extracted fracture planes match the kinematic model.

17. The non-transitory computer-readable medium of claim 16 , wherein the one or more extracted fracture planes match the kinematic model if a predetermined number of fractures of the extracted fracture planes are positioned in the areas of the region of interest having the higher potential of having fractures indicated by the kinematic model.

18. A computer system, comprising:

a processor; and

a memory comprising a plurality of program instructions which, when executed by the processor, cause the processor to:

receive seismic data acquired in a seismic survey of a region of interest;

perform a kinematic analysis on the seismic data;

generate one or more fracture planes from the seismic data based on the kinematic analysis;

generate a mechanical earth model based on the seismic data;

perform a critical stress analysis on the one or more fracture planes based on the mechanical earth model; and

determine a fracture type of respective fractures in the one or more fracture planes based on the critical stress analysis.

19. The computer system of claim 18 , wherein the program instructions which, when executed by the processor, cause the processor to perform the critical stress analysis, further comprise program instructions which, when executed by the processor, cause the processor to:

calculate a shear stress and a normal stress acting on the respective fractures in the one or more fracture plane based on the mechanical earth model; and

determine whether the respective fractures are critically stressed, wherein the respective fractures are critically stressed if the shear stress is greater than the normal stress.

20. The computer system of claim 19 , wherein the program instructions which, when executed by the processor, cause the processor to determine the fracture type of the respective fractures, further comprise program instructions which, when executed by the processor, cause the processor to:

determine that the respective fractures are open fractures if critically stressed; and

determine that the respective fractures are closed fractures if not critically stressed.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 26, 2016
From: AMER, AIMEN HUSSEIN
To: SCHLUMBERGER TECHNOLOGY CORPORATION
Reel/Frame 039010/0617 →
Continuity (1)
Related Publication 20160266268A1 · Sep 15, 2016