IP Library Granted Patent US 11,098,572
Granted Patent B2
US 11,098,572 · App. 16/790,384 · Granted Aug 24, 2021

Boundary tracking control module for rotary steerable systems

Inventors: Borislav J. Tchakarov (Houston, TX); Tsili Wang (Houston, TX)
Assignee: Well Resolutions Technology
E21B44/005E21B7/062E21B47/024E21B47/09E21B49/00G01V3/12G01V3/26G01V3/28G01V3/30G01V3/34G06F16/24554G06F16/24578E21B17/1078
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Quick Facts
Patent No.
US 11,098,572
App. No.
16/790,384
Granted
Aug 24, 2021
Kind
B2
Abstract

A rotary steerable bottom hole assembly includes a drill bit disposed at a distal end thereof, and azimuthal resistivity antennas and electronics configured to measure a distance to a formation boundary.

Claims (30)

1. A rotary steerable bottom hole assembly comprising:

a drill bit disposed at a distal end thereof;

azimuthal resistivity antennas comprising:

an axial antenna including a wire for generating an axial magnetic moment substantially aligned with the longitudinal axis;

a transverse antenna including an antenna body having a longer axis disposed longitudinally in the housing, and a wire coil having a central axis disposed around the antenna body, wherein the wire coil central axis is substantially perpendicular to the longer axis of the antenna body, and wherein the wire coil is configured to generate a transverse magnetic moment orthogonal to the housing longitudinal axis.

2. The rotary steerable bottom hole assembly of claim 1 , further comprising a stabilizer disposed in the bottom hole assembly uphole from the drill bit.

3. The rotary steerable bottom hole assembly of claim 2 , further comprising a steerable housing having a longitudinal axis and disposed between the stabilizer and the drill bit, wherein the azimuthal resistivity antennas are in the housing.

4. The rotary steerable bottom hole assembly of claim 3 , further comprising a control module in the housing configured to steer the drill bit along a well path and, based on measurements from the azimuthal resistivity antennas, to steer the housing and maintain a distance between the housing and the formation boundary.

5. The rotary steerable bottom hole assembly of claim 4 , wherein the housing further encloses a hydraulic pump and pump drive for operating one or more rams to steer the drill bit.

6. The rotary steerable bottom hole assembly of claim 4 , wherein the control module is configured to execute a pre-programmed well trajectory.

7. The rotary steerable bottom hole assembly of claim 4 , wherein the control module is configured to control a component of the well path.

8. A rotary steerable system comprising:

azimuthal resistivity antennas, the azimuthal resistivity antennas comprising:

an axial antenna including a wire for generating an axial magnetic moment substantially aligned with the longitudinal axis;

a transverse antenna including an antenna body having a longer axis disposed longitudinally in the housing, and a wire coil having a central axis disposed around the antenna body, wherein the wire coil central axis is substantially perpendicular to the longer axis of the antenna body, and wherein the wire coil is configured to generate a transverse magnetic moment orthogonal to the housing longitudinal axis.

9. The rotary steerable system of claim 8 , further comprising a housing in which at least one of the azimuthal resistivity antennas are enclosed.

10. The rotary steerable system of claim 9 , further comprising a control module in the housing configured to steer a drill bit along a well path and, based on measurements from the azimuthal resistivity antennas, to steer the housing to maintain a distance between the steerable housing and the formation boundary.

11. The rotary steerable system of claim 10 , further comprising a hydraulic pump and pump drive in the housing for operating one or more rams to steer the rotary steerable system.

12. The rotary steerable system of claim 10 , wherein the control module is configured to execute a pre-programmed well trajectory.

13. The rotary steerable system of claim 10 , wherein the housing is disposed between the drill bit and a stabilizer.

14. The rotary steerable system of claim 10 , wherein the control module is configured to control a component of the well path.

15. A method of drilling comprising:

measuring a distance with azimuthal resistivity antennas comprising:

an axial antenna including a wire for generating an axial magnetic moment substantially aligned with the longitudinal axis; and

a transverse antenna including an antenna body disposed longitudinally in the housing, and a wire coil having a central axis disposed around the antenna body, wherein the wire coil central axis is substantially perpendicular to the longer axis of the antenna body, and wherein the wire coil is configured to generate a transverse magnetic moment orthogonal to the housing longitudinal axis.

16. The method of claim 15 , further comprising steering a drill bit along a well path by operating a rotary steerable system having the azimuthal resistivity antennas and a control module enclosed within a steerable housing.

17. The method of claim 16 , further comprising steering the drill bit, based on the azimuthal resistivity measurements, to maintain a distance between the antennas and the formation boundary.

18. The method of claim 17 , further comprising steering the drill bit by radially extending one or more rams disposed within the housing outward to press against the wellbore thereby causing the drill bit to press on an opposite side of the wellbore and cause a direction change.

19. The method of claim 17 , wherein the control module is configured to execute a pre-programmed well trajectory.

20. The method of claim 17 , wherein the control module is configured to control a component of the well path based on the measured distance.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 22, 2021
From: TCHAKAROV, BORISLAV J.; WANG, TSILI
To: WELL RESOLUTIONS TECHNOLOGY
Reel/Frame 055669/0275 →
Continuity (9)
Continuation 16126485 · Sep 10, 2018
Continuation 15937459 · Mar 27, 2018
Continuation In Part 15920034 · Mar 13, 2018
Continuation 15696543 · Sep 6, 2017
Continuation 15466507 · Mar 22, 2017
Continuation 14993165 · Jan 12, 2016
Continuation 14303232 · Jun 12, 2014
Provisional Application 61834272 · Jun 12, 2013
Related Publication 20200182037A1 · Jun 11, 2020
Cited By (2)
US 12,228,027 US 12,291,966