Iron roughnecks for non-stop circulation system
11053755 ยท 2021-07-06
Assignee
Inventors
Cpc classification
E21B21/12
FIXED CONSTRUCTIONS
E21B21/106
FIXED CONSTRUCTIONS
E21B19/168
FIXED CONSTRUCTIONS
E21B21/085
FIXED CONSTRUCTIONS
International classification
Abstract
An iron roughneck for constant circulation of drilling mud during operation of a drill string, the iron roughneck comprising: a frame; a wrench unit supported by the frame, wherein the wrench unit is capable of gripping a drill string; a spinner unit supported by the frame, wherein the spinner unit is capable of engaging and spinning a drill pipe; and a circulation coupler supported by the frame, wherein the circulation coupler forms a chamber around the drill string.
Claims
1. An apparatus comprising: a frame; a wrench unit supported by the frame, wherein the wrench unit is capable of gripping a drill string; a spinner unit supported by the frame, wherein the spinner unit is capable of engaging and spinning a drill pipe; and a circulation coupler supported by the frame and movable to an open position or a closed position, wherein the circulation coupler, when positioned around a drill string, having a wall with one or more valves provided therein, and located in the closed position, forms a sealed chamber radially oriented around the one or more valves of the drill string, wherein the circulation coupler further comprises a sensor for detecting whether a first valve in a drill string is located in an open position or a closed position, and wherein the first valve, detectable by the sensor, is an external sliding valve, comprising a spring, provided in the wall of the drill string.
2. The apparatus according to claim 1, wherein the wrench unit comprises an upper wrench and a lower wrench configured for gripping a drill string.
3. The apparatus according to claim 1, wherein the sensor is a magnetic sensor.
4. The apparatus according to claim 1, wherein the sensor is a pressure sensor.
5. The apparatus according to claim 1, wherein the circulation coupler comprises jaws operable by pistons to move to the circulation coupler to the open position or the close position relative to a drill pipe.
6. An apparatus according comprising: a frame; a wrench unit supported by the frame, wherein the wrench unit is capable of gripping a drill string; a spinner unit supported by the frame, wherein the spinner unit is capable of engaging and spinning a drill pipe; a circulation coupler supported by the frame and movable to an open position or a closed position, wherein the circulation coupler, when positioned around a drill string, having a wall with one or more valves provided therein, and located in the closed position, forms a sealed chamber radially oriented around the one or more valves of the drill string; and a sensor configured to detect a vertical position of the apparatus relative to a drill string.
7. The apparatus according to claim 6, wherein the wrench unit comprises an upper wrench and a lower wrench configured for gripping a drill string.
8. The apparatus according to claim 6, wherein the circulation coupler comprises jaws operable by pistons to move to the circulation coupler to the open position or the close position relative to a drill pipe.
9. A method for circulating drilling fluid during operation of a drill string, the method comprising: gripping a first portion of the drill string with a wrench unit supported by a frame; engaging a drill pipe with a spinner unit supported by the frame; engaging a second portion of the drill string, having a radial port, with a circulation coupler supported by the frame such that a chamber is provided around the radial port; and increasing a supply of drilling fluid to circulation coupler and decreasing a supply of drilling fluid to a top end of the drill string such that circulation of drilling fluid to the drill string is maintained as the supply of drilling fluid shifts from the top end of the drill string to the circulation coupler, wherein the circulation coupler is positioned between the wrench unit and the spinner unit along a length of the frame.
10. The method according to claim 9, wherein the circulation of the drilling fluid to the drill string is maintained as constant and continuous circulation of drilling fluid to the drill string.
11. The method according to claim 9, further comprising: providing at least one valve adjacent to the radial port of the drill string, wherein the chamber is radially oriented around the at least one valve and directs drilling fluid inside the at least one valve adjacent to the radial port of the drill string.
12. The method according to claim 11, further comprising: supplying high pressure drilling fluid to an outside of the at least one valve via the chamber such that the at least one valve moves to an open position.
13. The method according to claim 11, further comprising: detecting, via a sensor, whether the at least one valve is located in an open position or a closed position.
14. The method according to claim 13, wherein the sensor is provided in the circulation coupler or in the chamber provided around the radial port.
15. The method according to claim 9, further comprising: disconnecting a top drive from the drill string when the supply of drilling fluid to the drill string has shifted to the circulation coupler; connecting a stand of drill pipe to the disconnected top drive; and adding the stand of drill pipe to the drill string.
16. The method according to claim 15, further comprising: shifting the circulation of the drilling fluid from the circulation coupler to the top end of the drill string after addition of the stand of drill pipe to the drill string.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) A more complete understanding of the present embodiments may be acquired by referring to the following description taken in conjunction with the accompanying drawings, in which like reference numbers indicate like features.
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DETAILED DESCRIPTION
(8) Preferred embodiments are best understood by reference to
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(10) Drilling mud is circulated via a mud pump 30. The drilling mud is supplied to the drill string 13 via a diverter manifold 31. A pressure line 36 extends from the mud pump 30 to the diverter manifold 31. A line extends from the diverter manifold to the stand pipe 32, wherein the stand pipe 32 is connected to the top drive 20 via a rotary hose 33. Another line extends from the diverter manifold 31 floor pipe 34, wherein the floor pipe 34 is connected to the circulation coupler 40 of the iron roughneck 80 via a rotary hose 35. A discharge line extends from the diverter manifold 31 to a retention tank or sump 38. Drilling mud being circulated up the annulus 22 is returned to the retention tank 38 via return line 39 connected to the surface casing 23 below the rotating control device 24. Drilling mud from the retention tank 38 is supplied to the mud pump 30 via a supply line 42.
(11) During drilling, the mud pump 30 injects drilling mud through the top drive 20 into the drill string 13. The diverter manifold is configured to only supply drilling mud to the stand pipe 32. When a stand of drill pipe 14 is to be added to the drill string 13, the drill string 13 is raised and the slips 17 are set. The iron roughneck 80 grips the stump 19 of the drill string 13 with the wrench unit 81 and engages the new stand of drill pipe 14 with the spinner unit 84, while the circulation coupler 40 engages a circulation sub in the drill string having a radial port. The operator may then increase a supply of drilling mud to the circulation coupler 40 while a supply of drilling mud to the top drive 20 is decreased, so as to maintain a constant circulation while the supply is shifted from the top drive 20 to the circulation coupler 40. When drilling mud is no longer being supplied to the top drive 20, the top drive 20 is disconnected from the stump 19 of the drilling string 13 and another stand of drill pipe 14 is made up to the top drive 20. While the top drive 20 is disconnected from the drill string 13, the rotary table 18 may continue to turn the drill string 13 while drilling mud is supplied to the drill string 13 via the circulation coupler 40. The new stand of drill pipe 14 may then be made up to the stump 19 of the drill string 13. The operator may then decrease a supply of drilling mud to the circulation coupler 40 while a supply of drilling mud to the top drive 20 is increased, so as to maintain a constant circulation while the supply is shifted from the circulation coupler 40 to the top drive 20. Both the top drive 20 and the rotary table 18 may rotate the drill string 13 as circulation is shifted from the circulation coupler 40 to the top drive 20.
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(17) An alternative embodiment may use a pressure sensor in the chamber 46 to detect whether the pressure has been relieved, which may indicate that the sliding sleeve valve 53 and/or the radial valve 52 is open/closed. In alternative embodiments of the invention, sensors may also be placed to indicate whether the radial valve 53 and the axial valve 51 are open/closed.
(18) In further embodiments of the invention, sensors in the constant circulation sub 50 may be detected by transducers in the circulation coupler 40 to detect whether the circulation coupler 40 of the iron roughneck 80 is vertically position relative to the constant circulation sub 50 for proper engagement. The arm 41 may be manipulated automatically or be the operator to properly position the iron roughneck 80.
(19) Referring again to
(20) A new stand of drill pipe 14 may then be made up to the top drive 20. While the drill string is being rotated via the rotary table 18 and drilling mud is being circulated via the circulation coupler 40, the new stand of drill pipe 14 may be made up to the stump 19 of the drill string 13. In particular, the stump 19 of the drill string 13 may be gripped by the wrench unit 81 of the iron roughneck 80 while the spinner unit 84 engages the new stand of drill pipe 14. The spinner unit 84 rotates the drill pipe 14 to thread its pin thread into a box thread of the constant circulation sub 50. Once the new stand of drill pipe 14 is connected to and become part of the drill string 13, the drill string 13 may continue to be rotated via the rotary table 18 or the top drive 20. The drill string 13 may be lifted by the top drive 20 and the slips 17 released. Drilling mud may continue to be circulated through the drill string 13 by opening valve V1 to supply drilling mud to the top drive 20, while V2 is partially closed to reduce fluid flow to the circulation coupler 40. As drilling mud begins to flow down through the internal bore of the constant circulation sub 50, the axial valve 51 will open and the radial valve 52 will close. Valve V3 is opened to allow the drilling mud in the circulation coupler 40, rotary hose 35 and floor pipe 34 to drain back into the retention tank 38. As the pressure is relieved from the chamber 46 in the circulation coupler 40, an indication may be given to the operator that the sliding sleeve 53 of the constant circulation sub 50 is closed and/or that the pressure in the chamber 46 has been relieved, so that it is safe to open or unclamp the circulation coupler 40 from the constant circulation sub 50. The drill string 13 may continue to be rotated and lowered to continue drilling the well bore 21. After the drill string has drilled the wellbore the length of a drill pipe, the process is repeated.
(21) When drill string 13 is tripped out of the well bore 21, a similar process is followed, in reverse order, to allow constant circulation of drilling mud and constant rotation of the drill string 13.
(22) In the embodiment of the invention shown in
(23) Although the disclosed embodiments are described in detail in the present disclosure, it should be understood that various changes, substitutions and alterations can be made to the embodiments without departing from their spirit and scope.