IP Library Granted Patent US 11,299,970
Granted Patent B2
US 11,299,970 · App. 16/696,441 · Granted Apr 12, 2022

System, method, and composition for controlling fracture growth

Inventor: Robert Lance Cook (Houston, TX)
Assignee: Sage Geosystems Inc.
E21B43/26
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Quick Facts
Patent No.
US 11,299,970
App. No.
16/696,441
Granted
Apr 12, 2022
Kind
B2
Abstract

A system, composition and method for controlling vertical growth direction (up and down) of one or more fractures and/or rate of growth of one or more fractures by varying the specific gravity of one or more slurries or fluids being pumped into a well during a fracking operation.

Claims (28)

1. A method of steering at least one fracture in a subterranean formation comprising:

pumping at least one of a first fracturing fluid and a first slurry into the subterranean formation, wherein the at least one of the first fracturing fluid and the first slurry has a first pressure gradient higher than a formation fracture gradient;

growing the fracture in a first direction;

monitoring, during the pumping, at least one of a) a surface pressure at a manifold, b) a downhole pressure of the at least one of the first fracturing fluid and the first slurry, c) a downhole temperature of the at least one of the first fracturing fluid and the first slurry, and d) a seismic data indicative of a vertical growth of the at least one fracture;

determining, during pumping, the first direction in which the at least one fracture is growing;

at least one of a) adjusting, during pumping, the first pressure gradient of the at least one of the first fracturing fluid and the first slurry and b) pumping at least one of a second fracturing fluid and a second slurry into the subterranean formation, wherein the at least one of the second fracturing fluid and the second slurry has a second pressure gradient different than the first pressure gradient; and,

changing, during pumping, the first direction in which the at least one fracture is growing to a second direction.

2. The method of claim 1 , wherein the second direction is one of a) upward and b) downward relative to the first direction.

3. The method of claim 2 , wherein at least 80% of the second direction is downward.

4. The method of claim 1 , wherein adjusting the first pressure gradient comprises at least one of:

a) adding at least one of a barite material and a hematite material to the at least one of the first fracturing fluid and the first slurry;

b) adjusting a density of a proppant in a carrier fluid that comprises at least a part of the at least one of the first fracturing fluid and the first slurry;

c) adjusting a density of the carrier fluid of the at least one of the first fracturing fluid and the first slurry; and,

d) adding a material with a specific gravity of at least 3.0 to the at least one of the first fracturing fluid and the first slurry.

5. The method of claim 1 , further comprising adjusting, during pumping, the second pressure gradient of the at least one of the second fracturing fluid and the second slurry.

6. The method of claim 1 , wherein adjusting the second pressure gradient comprises at least one of:

a) adding at least one of a barite material and a hematite material to the at least one of the second fracturing fluid and the second slurry;

b) adjusting a density of a proppant in a carrier fluid that comprises at least a part of the at least one of the second fracturing fluid and the second slurry;

c) adjusting a density of the carrier fluid of the at least one of the second fracturing fluid and the second slurry; and,

d) adding a material with a specific gravity of at least 3.0 to the at least one of the second fracturing fluid and the second slurry.

7. The method of claim 1 , further comprising alternately pumping the at least one of the first fracturing fluid and the first slurry and the at least one of the second fracturing fluid and the second slurry at least twice.

8. The method of claim 1 , further comprising pumping at least one of a third fracturing fluid and a third slurry into the subterranean formation, wherein the at least one of the third fracturing fluid and the third slurry has a third pressure gradient different than at least one of the first pressure gradient and the second pressure gradient.

9. An automated computer control and pressure manifold system configured to steer at least one fracture in a subterranean formation comprising:

a computer control program configured to perform the method of claim 1 ;

a manifold operable by the computer control program;

at least a first pit configured to hold the at least one of the first fracturing fluid and the first slurry of claim 1 , the at least a first pit being fluidly coupled to the manifold; and,

at least a second pit configured to hold the at least one of the second fracturing fluid and the second slurry of claim 1 , the at least a second pit being fluidly coupled to the manifold.

10. The automated computer control and pressure manifold system of claim 9 , wherein the manifold is fluidly coupled to a wellbore disposed within the subterranean formation.

Assignments (4)
NUNC PRO TUNC ASSIGNMENT Recorded Nov 29, 2021
From: COOK, ROBERT LANCE
To: SAGE GEOSYSTEMS INC.
Reel/Frame 058232/0012 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 22, 2021
From: SAGE GEOSYSTEMS, LLC
To: SAGE GEOSYSTEMS INC.
Reel/Frame 058182/0221 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 9, 2021
From: COOK, ROBERT LANCE; RING, LEV
To: SAGE GEOSYSTEMS, LLC
Reel/Frame 055533/0787 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 27, 2021
From: METIS ENERGY, LLC
To: COOK, ROBERT LANCE; RING, LEV
Reel/Frame 055139/0965 →
Continuity (2)
Provisional Application 62771501 · Nov 26, 2018
Related Publication 20200165909A1 · May 28, 2020
Cited By (7)
US 12,188,691 US 12,241,018 US 12,331,964 US 12,454,482 US 12,534,974 US 12,546,511 US 12,618,505