IP Library Granted Patent US 12,228,027
Granted Patent B2
US 12,228,027 · App. 17/741,033 · Granted Feb 18, 2025

Universal bottomhole assembly node (UBHAN)

Inventors: Borislav J. Tchakarov (Houston, TX); Tsili Wang (Houston, TX)
E21B44/005E21B7/062E21B7/068E21B47/022E21B47/024E21B47/026E21B47/06E21B47/09E21B47/13E21B49/00G01V3/12G01V3/26G01V3/28G01V3/30G01V3/34G01V11/002G06F16/24554G06F16/24578E21B17/1078E21B47/01
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Quick Facts
Patent No.
US 12,228,027
App. No.
17/741,033
Granted
Feb 18, 2025
Kind
B2
Abstract

The present application pertains to a universal bottom hole assembly node module. The module may comprise an azimuthal resistivity module, an azimuthal gamma module, a pressure while drilling module, or any combination thereof. A communication system may be configured to provide two way communication between two or more components of a bottom hole assembly, for example, between a rotary steerable system and a measurement while drilling system. This advantageously allows real time geosteering, well control, hydraulics analysis for drilling optimization, and/or evaluation of motor efficiency.

Claims (29)

1. A bottom hole assembly comprising:

(1) a universal bottom hole assembly node module wherein the universal bottom hole assembly node module is configured to provide direct two way communication between two or more components of the bottom hole assembly to enable real-time geosteering; and

(2) a pressure while drilling module;

wherein the universal bottom hole assembly node module comprises at least one selected from the group of an azimuthal resistivity module, an azimuthal gamma module, or any combination thereof.

2. The bottom hole assembly of claim 1 , wherein the two way communication comprises providing azimuthal resistivity values to a measurement while drilling system and to a rotary steerable system and wherein the bottom hole assembly is configured to make real time geosteering decisions based upon at least a portion of the provided azimuthal resistivity values.

3. The bottom hole assembly of claim 1 , wherein the two way communication comprises providing azimuthal gamma values to a measurement while drilling system and to a rotary steerable system and wherein the bottom hole assembly is configured to make real time geosteering decisions based upon at least a portion of the provided azimuthal gamma values.

4. The bottom hole assembly of claim 1 , wherein the two way communication comprises providing both azimuthal resistivity values and azimuthal gamma values to a measurement while drilling system and to a rotary steerable system and wherein the bottom hole assembly is configured to make real time geosteering decisions based upon at least a portion of the provided data.

5. The bottom hole assembly of claim 1 , wherein the universal bottom hole assembly node module is configured to provide, via an antenna the two way communication between a rotary steerable system and a measurement while drilling system.

6. The bottom hole assembly of claim 1 , wherein one or more electromagnetic antennas are configured for direct connection to a rotary steerable system and a measurement while drilling system.

7. The bottom hole assembly of claim 1 , wherein the two way communication comprises providing data from the bottom hole assembly to the universal bottom hole assembly node module and a measurement while drilling system.

8. The bottom hole assembly of claim 1 , wherein the universal bottom hole assembly node module is configured to communicate with a surface system thru a measurement while drilling system.

9. The bottom hole assembly of claim 1 , wherein the universal bottom hole assembly node is configured to communicate one or more well bore pressure values to a surface system thru a measurement while drilling system.

10. The bottom hole assembly of claim 1 , wherein the universal bottom hole assembly node module is configured to communicate an internal drill string pressure values to a surface system thru a measurement while drilling system.

11. The bottom hole assembly of claim 1 , wherein the universal bottom hole assembly node module comprises one or more datalinks for direct connection to a rotary steerable system, a measurement while drilling system, or any combination thereof.

12. The bottom hole assembly of claim 1 , wherein the universal bottom hole assembly node module comprises a thru bus for integration into a measurement while drilling system.

13. The bottom hole assembly of claim 1 , wherein the universal bottom hole assembly node module is self-powered.

14. The bottom hole assembly of claim 1 , wherein the universal bottom hole assembly node module is powered by a battery.

15. A bottom hole assembly comprising:

(1) a universal bottom hole assembly node module wherein the universal bottom hole assembly node module is configured to provide direct two way communication between two or more components of the bottom hole assembly to enable real-time geosteering, and

(2) a pressure while drilling module, wherein the universal bottom hole assembly node module is configured to communicate with a surface system.

16. A universal bottom hole assembly node module comprising:

a pressure while drilling module; and

a communication system configured to provide direct two way communication between two or more components of the bottom hole assembly, wherein the communication system comprises:

(1) one or more datalinks configured for the direct two way communication between two or more components of the bottom hole assembly; or

(2) an antenna configured for the direct two way communication between two or more components of the bottom hole assembly; or

(3) one or more electromagnetic antennas configured for the direct two way communication between two or more components of the bottom hole assembly; or

(4) any combination of (1), (2), and (3),

wherein the universal bottom hole assembly node module enables real-time geosteering.

17. The universal bottom hole assembly node module of claim 16 , wherein the universal bottom hole assembly node module enables real-time geosteering based upon azimuthal gamma values.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 12, 2023
From: TCHAKAROV, BORISLAV J.; WANG, TSILI
To: WELL RESOLUTIONS TECHNOLOGY
Reel/Frame 063635/0050 →
Continuity (18)
Continuation 17072913 · Oct 16, 2020
Continuation In Part 16790384 · Feb 13, 2020
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
Division 14993165 · Jan 12, 2016
Division 14303232 · Jun 12, 2014
Continuation 16421738 · May 24, 2019
Continuation 15466220 · Mar 22, 2017
Continuation 14307293 · Jun 17, 2014
Continuation 16379261 · Apr 9, 2019
Continuation 14738071 · Jun 12, 2015
Provisional Application 61834272 · Jun 12, 2013
Provisional Application 61836577 · Jun 18, 2013
Provisional Application 62012163 · Jun 13, 2014
Related Publication 20220341310A1 · Oct 27, 2022
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