UNIVERSAL BOTTOMHOLE ASSEMBLY NODE (UBHAN)
20220341310 · 2022-10-27
Inventors
Cpc classification
E21B49/00
FIXED CONSTRUCTIONS
E21B17/1078
FIXED CONSTRUCTIONS
G01V3/26
PHYSICS
E21B7/062
FIXED CONSTRUCTIONS
E21B47/09
FIXED CONSTRUCTIONS
E21B47/13
FIXED CONSTRUCTIONS
E21B47/01
FIXED CONSTRUCTIONS
G01V3/34
PHYSICS
G01V11/002
PHYSICS
International classification
E21B44/00
FIXED CONSTRUCTIONS
E21B47/09
FIXED CONSTRUCTIONS
E21B49/00
FIXED CONSTRUCTIONS
G01V3/26
PHYSICS
G01V3/34
PHYSICS
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
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.
2. The bottom hole assembly of claim 1, wherein the universal bottom hole assembly node module further comprises at least one selected from the group of an azimuthal resistivity module, an azimuthal gamma module, or any combination thereof.
3. 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.
4. 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.
5. 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.
6. 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.
7. 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.
8. 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.
9. 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.
10. 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.
11. 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.
12. The bottom hole assembly of claim 1, wherein the universal bottom hole assembly node module is configured to communicate with a surface system.
13. 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.
14. 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.
15. The bottom hole assembly of claim 1, wherein the universal bottom hole assembly node module is self-powered.
16. The bottom hole assembly of claim 1, wherein the universal bottom hole assembly node module is powered by a battery.
17. The bottom hole assembly of claim 1, wherein the universal bottom hole assembly node module comprises an azimuthal resistivity module.
18. 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.
19. The universal bottom hole assembly node module of claim 18, wherein the universal bottom hole assembly node module enables real-time geosteering based upon azimuthal gamma values.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0015] A more complete appreciation of the present invention, and many of the attendant advantages thereof, will be readily apparent as the present invention becomes better understood by reference to the following detailed description when considered in conjunction with the accompanying drawings, in which like reference symbols indicate the same or similar components, wherein:
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DETAILED DESCRIPTION OF THE INVENTION
[0032] The general inventive concept is described more fully below with reference to the accompanying drawings, in which exemplary embodiments of the present invention are shown. As those skilled in the art would realize, the described embodiments may be modified in various different ways, all without departing from the spirit or scope of the present invention. The present invention should not be construed as being limited to the embodiments. Accordingly, the drawings and description are to be regarded as illustrative in nature to explain aspects of the present invention and not restrictive. Like reference numerals in the drawings designate like elements throughout the specification, and thus their description have not been repeated.
Specific Embodiments
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[0035] In some cases the MWD 3 may be run as a split system with UBHAN 1 between bottom modules of the MWD 3A and top modules 3B as shown in
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[0040] One or more aspects of the azimuthal resistivity module for UBHAN 10 may be shown in one or more embodiments of Modular Resistivity Sensor for Downhole Measurement While Drilling U.S. Pat. Nos. 10,337,322: 9,638,819 and Patent Applications 20190277136 and 20180024266 which are incorporated herein by reference.
[0041] The UBHAN can have two AziRes modules when precise geosteering is needed and/or the prime application. The two modules will, for example, provide redundancy and very high precision boundary detection. To do the AziRes measurements and distance to boundary, a tool face sensor is provided to record the AziRes modules tool face angles as the UBHAN collar rotates. The tool face sensor can be a magnetometer, an accelerator, a gyroscope or other tool face sensors known to one skilled in the art. The resistivity measurements taken by the modular resistivity sensor can then be paired with the tool face angle measurements to produce a resistivity image as a function of tool face and a function of depth.
[0042] A computer model is created to illustrate the azimuthal resolution of a side-mounted modular resistivity sensor. In the model, a sensor is placed parallel to the bed boundary as illustrated in
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[0044] The foregoing description details certain preferred embodiments of the present invention and describes the best mode contemplated. It will be appreciated, however, that changes may be made in the details of construction and the configuration of components without departing from the spirit and scope of the disclosure. Therefore, the description provided herein is to be considered exemplary, rather than limiting, and the true scope of the invention is that defined by the following claims and the full range of equivalency to which each element thereof is entitled.