IP Library Patent Application 15045861
Patent Application
App. No. 15/045,861

System For Hydraulic Fracturing Design And Optimization In Naturally Fractured Reservoirs

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Patent No.
US None
App. No.
15/045,861
Abstract

A method for optimizing hydraulic fracturing and refracturing simulates the geomechanical interaction between regional stress and natural fractures in a reservoir. An equivalent fracture model is created from data on the natural fracture density, regional stress and elastic properties of the reservoir, so that points in the reservoir are assigned a fracture length and fracture orientation. The horizontal differential stress and maximum principal stress direction at points in the reservoir are then estimated by meshless particle-based geomechanical simulation using the equivalent fracture model as an input. Regions in the reservoir having low differential stress based on the simulation can then be selected for initial hydraulic fracturing. Regions in the reservoir having high differential stress based on the simulation can then be selected for refracturing.

Claims (22)

1 . A method for optimizing hydraulic fracturing by simulating the geomechanical interaction between regional stress and natural fractures in a reservoir, said method comprising:

creating an equivalent fracture model from data on the natural fracture density, regional stress and elastic properties of the reservoir, in which points in the reservoir have a fracture length and fracture orientation;

simulating the geomechanical interaction between hydraulic fractures and natural fractures in the reservoir by a meshless particle-based method using the equivalent fracture model as an input to estimate differential stress at points in the reservoir; and

selecting regions in the reservoir for hydraulic fracturing having low differential stress based on the simulation.

2 . The method of claim 1 wherein the simulation estimates the horizontal differential stress and maximum principal stress direction at points in the reservoir.

3 . The method of claim 2 further comprising the step of validating the maximum principal stress direction data against microseismic data for the reservoir.

4 . The method of claim 1 further comprising selecting regions in the reservoir for wellbore placement having low differential stress based on the simulation.

5 . The method of claim 1 further comprising the step of validating the differential stress data against production data from wells in the reservoir.

6 . A method for optimizing hydraulic fracturing by simulating the geomechanical interaction between regional stress and natural fractures in a reservoir, said method comprising:

creating an equivalent fracture model of the natural fractures and elastic properties of the reservoir to generate a vectorial map in which points in the reservoir have a fracture length and fracture orientation;

estimating the horizontal differential stress and maximum principal stress direction at points in the reservoir by meshless particle-based geomechanical simulation using the equivalent fracture model as an input; and

selecting regions in the reservoir for hydraulic fracturing having low horizontal differential stress based on the simulation.

7 . The method of claim 6 further comprising the step of validating the maximum principal stress direction data against microseismic data for the reservoir.

8 . The method of claim 6 further comprising the step of validating the differential stress data against production data from wells in the reservoir.

9 . The method of claim 6 further comprising selecting regions in the reservoir for wellbore placement having low differential stress based on the simulation.

10 . A method for optimizing hydraulic fracturing by simulating the geomechanical interaction between regional stress and natural fractures in a reservoir, said method comprising:

creating an equivalent fracture model of the natural fractures and elastic properties of the reservoir to generate a vectorial map in which points in the reservoir have a fracture length and fracture orientation;

estimating the horizontal differential stress and maximum principal stress direction at points in the reservoir by meshless particle-based geomechanical simulation using the equivalent fracture model as an input; and

selecting regions in the reservoir for hydraulic refracturing having high horizontal differential stress based on the simulation.

11 . The method of claim 10 further comprising the step of validating the maximum principal stress direction data against microseismic data for the reservoir.

12 . The method of claim 10 further comprising the step of validating the differential stress data against production data from wells in the reservoir.

13 . The method of claim 10 further comprising selecting regions in the reservoir for refracturing having high differential stress based on the simulation.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 17, 2016
From: OUENES, AHMED
To: FRACGEO, LLC
Reel/Frame 037845/0187 →