IP Library › Granted Patent US 10,012,067
Granted Patent B2
US 10,012,067 · App. 14/424,743 · Granted Jul 3, 2018

System and method for determining torsion using an opto-analytical device

Inventors: Michael T. Pelletier (Houston, TX); Robert P. Freese (Pittsboro, NC); Shilin Chen (Montgomery, TX)
Assignee: Halliburton Energy Services, Inc.
E21B45/00E21B3/00E21B7/00E21B10/42E21B12/02E21B44/00E21B47/122E21B47/123E21B49/00E21B49/005G01L3/1421
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Quick Facts
Patent No.
US 10,012,067
App. No.
14/424,743
Granted
Jul 3, 2018
Kind
B2
Abstract

In one embodiments, a method includes drilling a wellbore in a formation with a drilling tool. The method further includes receiving electromagnetic radiation using an opto-analytical device coupled to the drilling tool. The method also includes determining torsion associated with drilling the wellbore based on the received electromagnetic radiation.

Claims (52)

1. A method comprising:

drilling a wellbore in a formation with a drilling tool;

receiving electromagnetic radiation using an opto-analytical device coupled to the drilling tool;

determining a velocity of the drilling tool based on the received electromagnetic radiation; and

determining torsion associated with drilling the wellbore based on the determined velocity.

2. The method of claim 1 , wherein:

determining the velocity of the drilling tool based on the received electromagnetic radiation comprises:

detecting a plurality of deviations in the received electromagnetic radiation indicating an identifiable feature in the wellbore; and

determining a period between detections of the deviations in the received electromagnetic radiation; and

determining torsion associated with drilling the wellbore based on the determined velocity comprises:

determining deviations in the velocity of the drilling tool.

3. The method of claim 2 , wherein the identifiable feature is a physical feature in the wellbore.

4. The method of claim 2 , wherein the deviations in the received electromagnetic radiation indicating the identifiable feature in the wellbore comprise peaks in an amount of electromagnetic radiation being received by the opto-analytical device at a particular point in time.

5. The method of claim 1 , wherein the opto-analytical device comprises a first sensor and a second sensor coupled to the drilling tool, each sensor displaced longitudinally along the drilling tool with respect to one another, and wherein determining torsion associated with drilling the wellbore based on the received electromagnetic radiation comprises determining an offset between the first and second sensors.

6. The method of claim 5 , wherein determining the offset between the first and second sensors is based on positions of the first and second sensors with respect to an identifiable feature in the wellbore.

7. The method of claim 5 , wherein determining the offset between the first and second sensors is based on positions of the first and second sensors with respect to an identifiable feature on the drilling tool.

8. A downhole drilling system comprising:

a downhole drilling tool configured to drill a wellbore in a formation with a drilling tool; and

an opto-analytical device coupled to the drilling tool configured to:

receive electromagnetic radiation;

determine a velocity of the drilling tool based on the received electromagnetic radiation; and

determine torsion associated with drilling the wellbore based on the determined velocity.

9. The system of claim 8 , wherein:

to determine the velocity of the drilling tool based on the received electromagnetic radiation, the opto-analytical device is configured to:

detect a plurality of deviations in the received electromagnetic radiation indicating an identifiable feature in the wellbore; and

determine a period between detections of the deviations in the received electromagnetic radiation; and

to determine torsion associated with drilling the wellbore based on the determined velocity, the opto-analytical device is configured to:

determine deviations in the velocity of the drilling tool.

10. The system of claim 9 , wherein the identifiable feature is a physical feature in the wellbore.

11. The system of claim 9 , wherein the deviations in the received electromagnetic radiation indicating the identifiable feature in the wellbore comprise peaks in an amount of electromagnetic radiation being received by the opto-analytical device at a particular point in time.

12. The system of claim 8 , wherein the opto-analytical device comprises a first sensor and a second sensor coupled to the drilling tool, each sensor displaced longitudinally along the drilling tool with respect to one another, and wherein determining torsion associated with drilling the wellbore based on the received electromagnetic radiation comprises determining an offset between the first and second sensors.

13. The system of claim 12 , wherein determining the offset between the first and second sensors is based on positions of the first and second sensors with respect to an identifiable feature in the wellbore.

14. The system of claim 12 , wherein determining the offset between the first and second sensors is based on positions of the first and second sensors with respect to an identifiable feature on the drilling tool.

15. A drill bit comprising:

a bit body;

a rotational axis about which the bit body rotates;

a plurality of blades disposed on the bit body to create a bit face;

an opto-analytical device integrated with the bit body, the opto-analytical device configured to:

receive electromagnetic radiation;

determine a velocity of the drill bit based on the received electromagnetic radiation; and

determine torsion associated with drilling a wellbore based on the determined velocity.

16. The drill bit of claim 15 , wherein:

to determine the velocity of the drill bit based on the received electromagnetic radiation, the opto-analytical device is configured to:

detect a plurality of deviations in the received electromagnetic radiation indicating an identifiable feature in the wellbore; and

determine a period between detections of the deviations in the received electromagnetic radiation; and

to determine torsion associated with drilling the wellbore based on the determined velocity, the opto-analytical device is configured to:

determine deviations in the velocity of the drill bit.

17. The drill bit of claim 16 , wherein the identifiable feature is a physical feature in the wellbore.

18. The drill bit of claim 16 , wherein the deviations in the received electromagnetic radiation indicating an identifiable feature in the wellbore comprise peaks in an amount of electromagnetic radiation being received by the opto-analytical device at a particular point in time.

19. The drill bit of claim 15 , wherein the opto-analytical device comprises a first sensor and a second sensor coupled to the drill bit, each sensor displaced longitudinally along the drill bit with respect to one another, and wherein determining torsion associated with drilling the wellbore based on the received electromagnetic radiation comprises determining an offset between the first and second sensors.

20. The drill bit of claim 19 , wherein determining the offset between the first and second sensors is based on positions of the first and second sensors with respect to an identifiable feature in the wellbore.

21. The drill bit of claim 19 , wherein determining the offset between the first and second sensors is based on positions of the first and second sensors with respect to an identifiable feature on the drill bit.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 27, 2015
From: PELLETIER, MICHAEL T.; FREESE, ROBERT P.; CHEN, SHILIN
To: HALLIBURTON ENERGY SERVICES, INC.
Reel/Frame 035054/0016 →
Continuity (1)
Related Publication 20150240617A1 · Aug 27, 2015
Cited By (1)
US 12,473,826