IP Library › Granted Patent US 9,822,638
Granted Patent B2
US 9,822,638 · App. 14/473,641 · Granted Nov 21, 2017

In-situ rock testing tool

Inventor: Cory Fehr (Chestermere, CA)
Assignee: 1464684 Alberta Ltd.
E21B49/00E21B33/1277E21B33/1285E21B36/005E21B43/26G01N33/24
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Quick Facts
Patent No.
US 9,822,638
App. No.
14/473,641
Granted
Nov 21, 2017
Kind
B2
Abstract

A shear tester for in-situ determination of rock formation geomechanical properties is provided. The tester has a radially expandable cylindrical membrane, a metal sheath covering at least a portion of the outer surface of the membrane, at least one stud fixed on the sheath, at least one cone fixed on each of the at least one stud, and a piston operable to apply an upward axial force on the metal sheath. A device for the same use comprises the shear tester and a pressuremeter. A method of using the shear tester comprises applying a normal force to the formation by expanding the membrane until at least one of the at least one cone penetrates the rock formation and applying an upward axial force to the at least one of the at least one cone by operating the piston until at least a portion of the rock formation shears.

Claims (49)

1. A shear tester for in-situ determination of rock formation geomechanical properties comprising:

a radially expandable cylindrical membrane;

a metal sheath covering at least a portion of the outer surface of the expandable membrane;

at least one stud fixed on the outer surface of the sheath;

at least one cone fixed on each of the at least one stud; and

a piston operable to apply an upward axial force on the metal sheath.

2. The tester of claim 1 , wherein the membrane is made out of continuous layers.

3. The tester of claim 1 , and further comprising a biasing means to bias the membrane into a retracted position.

4. A device for in-situ determination of rock formation geomechanical properties comprising:

a pressuremeter; and

a shear tester comprising:

a radially expandable cylindrical membrane;

a metal sheath covering at least a portion of the outer surface of the expandable membrane;

at least one stud fixed on the outer surface of the sheath;

at least one cone fixed on each of the at least one stud; and

a piston operable to apply an upward axial force on the metal sheath.

5. The device of claim 4 , further comprising an umbilical cable comprising pneumatic and electrical lines running to the device from the surface of the rock formation.

6. The device of claim 5 , further comprising a gas-charged reservoir and at least one trickle-charge battery, wherein the at least one trickle-charge battery is supplied power by the umbilical cable and the gas-charged reservoir is charged with pneumatic pressure supplied by the umbilical cable.

7. The device of claim 4 , further comprising a heating mechanism for thermal hardening of a borehole wall in the formation.

8. The device of claim 7 , further comprising a heat insulative barrier insulating the heating mechanism from other components of the device.

9. The device of claim 7 , wherein the heating mechanism comprises at least one heating coil encircling an axial passage in the device.

10. The device of claim 7 , wherein the heating mechanism comprises at least two heating coils in spaced relation axially along the device.

11. The device of claim 4 , further comprising a mini-frac tester.

12. A method for in-situ determination of geomechanical properties of a rock formation comprising the steps of:

providing a shear tester comprising

an expandable membrane;

a metal sheath covering at least a portion of the expandable membrane;

at least one stud fixed on the surface of the sheath;

at least one cone fixed on each of the at least one stud; and

a piston operable to apply an upward axial force on the metal sheath;

applying a normal force to the formation by expanding the membrane until at least one of the at least one cone penetrates the rock formation; and

applying an upward axial force to the at least one of the at least one cone by operating the piston until at least a portion of the rock formation shears.

13. The method of claim 12 further comprising the steps of:

providing an axial movement detector; and

detecting the point of rock formation shear using the axial movement detector.

14. The method of claim 12 further comprising the step of providing an umbilical cable comprising at least one of a pneumatic line and an electrical line running from the surface of the rock formation.

15. The method of claim 14 further comprising the steps of:

providing at least one trickle-charge battery; and

supplying power to the trickle-charge battery from the umbilical cable.

16. The method of claim 14 further comprising the steps of:

providing at least one gas-charged reservoir; and

charging the at least one gas-charged reservoir with pneumatic pressure from the umbilical cable.

17. The method of claim 12 further comprising the step of heating at least a portion of the formation with a heating mechanism prior to the application of a normal force to the formation.

18. The method of claim 12 further comprising the step of operating a pressuremeter on the formation before or after the operation of the shear tester on the formation, without removal of the shear tester or pressuremeter from the formation between operation of the shear tester and pressuremeter.

19. The method of claim 12 further comprising the steps of:

injecting high pressure fluid into the formation to initiate formation fracturing;

terminating fluid injection;

injecting high pressure fluid into the formation to re-initiate formation fracturing; and

monitoring the force required to re-initiate formation fracturing.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 25, 2014
From: FEHR, CORY
To: 1464684 ALBERTA LTD. O/A INTEGRITY INSITU
Reel/Frame 033828/0169 →
Continuity (2)
Provisional Application 61884196 · Sep 30, 2013
Related Publication 20150136388A1 · May 21, 2015