Drill string rotation controller for directional drilling
11834928 · 2023-12-05
Assignee
Inventors
- Jialin Tian (Chengdu, CN)
- Haolin Song (Chengdu, CN)
- Yinglin Yang (Chengdu, CN)
- Yanniu Ren (Chengdu, CN)
- Lin Yang (Chengdu, CN)
- Zhe Zhang (Chengdu, CN)
- Bo He (Chengdu, CN)
- Jun Li (Chengdu, CN)
- Yu Wei (Chengdu, CN)
- Lei Cha (Chengdu, CN)
Cpc classification
International classification
Abstract
A drill string rotation controller includes an anti-torque balance module, a TC bearing retaining ring, an upper TC bearing, an upper thrust ball bearing, an upper Haval ring, a middle seal retaining ring, an upper mandrel, an upper shell, a rotary control cylinder, an upper spring, a spline shell, a spline sleeve, a spline mandrel, a lower shell, a spring push sleeve, a lower spring, a floating piston, a lower mandrel, a bulkhead, a lower thrust ball bearing, a lower Haval ring, a lower TC bearing, a conversion joint, an anti-drop joint, a lower joint, and a control pin. The rotary control cylinder causes the spline sleeve to switch the transmission relationship between the spline mandrel and shell. Therefore, the drill string rotation controller controls the conversion between the composite drilling mode and the directional drilling mode.
Claims
1. A drill string rotation controller, comprising: an anti-torque balance module including an upper joint, a wear ring, a roller shell, a shell joint, a roller, a roller spring, and a spring base, an upper bearing module including a TC (tungsten carbide) bearing retaining ring, an upper TC bearing, an upper thrust ball bearing, an upper Haval ring, and a middle sealing retaining ring, an upper mandrel, an upper shell assembly including an upper shell and a control cylinder module, wherein the control cylinder module comprises a rotary control cylinder, an upper spring, and a control pin, a spline group module including a spline shell, a spline sleeve, and a spline mandrel, a lower spring module including a lower shell, a spring push sleeve, and a lower spring, a floating piston, a lower mandrel, and a bulkhead, a lower bearing module including a lower thrust ball bearing, a lower Haval ring, and a lower TC bearing, and a conversion joint, an anti-drop joint, and a lower joint, wherein: the anti-torque balance module is connected to the upper bearing module, the upper bearing module is connected to the control cylinder module, the upper shell is connected to the upper bearing module, the control cylinder module and the upper mandrel; the upper mandrel is connected to the upper bearing module and the control cylinder module; the control cylinder module is connected to the spline group module, the spline group module is connected to the lower spring module and the upper shell; the lower spring module is connected the floating piston, the bulkhead, the lower mandrel and the lower bearing module; the lower bearing module is connected to the conversion joint; the conversion joint is connected to the anti-drop joint; the anti-drop joint is connected to the lower joint; the spline mandrel transmits a torque from an upper drill string to the spline sleeve, the spline sleeve transmits the torque to the spline shell, the rotary control cylinder (i) enables the spline group module to have an un-meshed state and a meshed state, so as to transmit or cut off the torque, and (ii) controls conversion of a composite drilling state and a sliding drilling state of the drill string rotation controller; when the spline group module is in the meshed state, the drill string rotary controller performs compound drilling, and the anti-torque balance module does not bear an anti-torque; and when the spline group module is in the un-meshed state, the drill string rotation controller performs directional drilling, and the anti-torque balance module bears the anti-torque.
2. The drill string rotation controller according to claim 1, wherein the spline sleeve includes an inner spline and an outer spline, and when the spline group module is in the meshed state, the inner spline of the spline sleeve meshes with the spline mandrel, and the outer spline of the spline sleeve meshes with the spline shell.
3. The drill string rotation controller according to claim 2, wherein when the spline group module is in the un-meshed state, the inner spline of the spline sleeve is not meshed with the spline mandrel, and the outer spline of the spline sleeve is not meshed with the spline shell.
4. The drill string rotation controller according to claim 1, comprising a balance module including the roller, the roller spring and the spring base.
5. The drill string rotation controller according to claim 4, comprising a plurality of the balance modules.
6. The drill string rotation controller according to claim 5, wherein each of the plurality of the balance modules is distributed in the roller shell at an angle of 120° with respect to another one of the plurality of the balance modules.
7. The drill string rotation controller according to claim 5, wherein the roller shell bears the anti-torque when the upper drill string is operating to break one or more rocks.
8. The drill string rotation controller according to claim 1, wherein the upper bearing module and the lower bearing module separate rotation of at least one of (i) the roller shell, the upper shell, the spline shell and the lower shell from rotation of at least one of (ii) the upper mandrel, the spline mandrel, and the lower mandrel.
9. The drill string rotation controller according to claim 1, wherein the rotary control cylinder includes an upper end surface that can bear pressure, and movement and a position of the rotary control cylinder are restricted by the control pin.
10. The drill string rotation controller according to claim 1, comprising a spring system including the lower spring module and the upper spring.
11. The drill string rotation controller according to claim 10, wherein the lower spring module assists a reset operation.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
(7) In the Figures: 1—upper joint, 2—wear ring, 3—roller shell, 4—shell joint, 5—TC bearing retaining ring, 6—upper TC bearing, 7—upper thrust ball bearing, 8—upper Haval ring, 9—the middle sealing retaining ring, 10—upper mandrel, 11—upper shell, 12—rotary control cylinder, 13—upper spring, 14—spline shell, 15—spline sleeve, 16—spline mandrel, 17—lower shell, 18—spring push sleeve, 19—lower spring, 20—floating piston, 21—lower mandrel, 22—bulkhead, 23—lower thrust ball bearing, 24—lower Haval ring, 25—lower TC bearing, 26—conversion joint, 27—anti-drop joint, 28—lower joint, 29—roller, 30—roller spring, 31—spring base, 32—control pin.
DETAILED DESCRIPTION OF THE INVENTION
(8) As illustrated in
(9) The working process of the drill string rotation controller is as follows. Connect the drill string rotation controller to the drill string system and check the tool action status. Go down the drilling tool and start the mud pump after reaching the bottom of the well. Apply pump pressure (e.g., increase the pressure) to the tool. In general, the pressure in the tool is increased by pumping a drilling fluid into the internal cavity 100 of the drill string. The drilling fluid passes through holes 101a-b in the upper mandrel 10, into a cavity or well 120 between the upper mandrel 10 and the upper shell 11. After the pressure reaches an initial required working pressure threshold, the drilling fluid pressure pushes the rotary control cylinder 12 down. The sliding path on the rotary control cylinder 12 cooperates with the control pin 32 to push the spline group module to mesh. The upper drill string transmits the torque and rotary speed to the upper shell 11, the lower shell 17 and the lower joint 28 through the spline group module, and then the drill string rotation controller drives the bottom hole assembly (BHA) to rotate together to realize compound drilling. During directional drilling, the pump pressure is reduced, the rotary control cylinder 12 and the spline group module move upward in the axial direction under the action of the upper spring 13 and the lower spring 19, and the spline group module demeshes. The pump pressure is increased again, the spline group module remains un-meshed, the upper drill string realizes rotary drilling, and the BHA realizes directional sliding drilling. The above process is repeated to realize the transition between the meshed state and un-meshed state of the spline group module.
(10) The rotary control cylinder 12 is a key component for transitioning or changing between the meshed state and un-meshed state. The sliding path in the rotary control cylinder 12 is shown in
(11) Referring to
(12) The drill string rotation controller is subject to the anti-torque transmitted from the geological formation to the drilling tool during the rock breaking process (e.g., using the drill bit in the drilling tool controlled by the present drill string rotation controller). During compound drilling, since the drill string rotation controller spline group module is in the meshed state, the anti-torque is balanced by the upper drill string. During directional drilling, since the spline group module is un-meshed, the anti-torque needs to be balanced by the drill string rotation controller.
(13) Referring to
(14) {circle around (1)} In the initial state, the spline group module of the drill string rotation controller is meshed, and the mandrel (e.g., the upper mandrel 10, the spline mandrel 16 and/or the lower mandrel 21) and the shell (e.g., the roller shell 3, the upper shell 11, the spline shell 14, and/or the lower shell 17) rotate synchronously. The torque is equal (e.g., to the anti-torque).
(15) {circle around (2)} The spline group module of the drill string rotation controller is un-meshed. The roller shell 3 does not bear the anti-torque, the rotation of the mandrel (e.g., the upper mandrel 10, the spline mandrel 16 and/or the lower mandrel 21) is stably controlled, and the shell does not rotate.
(16) {circle around (3)} The spline group module of the drill string rotation controller is un-meshed. The roller shell 3 bears the anti-torque, and the rotation of the mandrel (e.g., the upper mandrel 10, the spline mandrel 16 and/or the lower mandrel 21) is stably controlled. The shell has a reverse rotation tendency, but cannot be reversed. The driving torque of the mandrel is used to offset the anti-torque.
(17) {circle around (4)} The spline group module of the drill string rotation controller is un-meshed. The roller shell 3 bears the anti-torque, and the drive torque of the mandrel (e.g., the upper mandrel 10, the spline mandrel 16 and/or the lower mandrel 21) is used to offset the anti-torque. At the same time, the drive torque of the mandrel is greater than the anti-torque, and the mandrel (e.g., the upper mandrel 10) presses the roller 29.
(18) {circle around (5)} The spline group module of the drill string rotation controller is un-meshed, the roller shell 3 does not bear the anti-torque, the roller 29 is released by the mandrel (e.g., the upper mandrel 10), and the rotation of the mandrel (e.g., the upper mandrel 10) is stably controlled. The shell (e.g., the roller shell 3, the upper shell 11, the spline shell 14, and/or the lower shell 17) does not rotate.
(19) {circle around (6)} The spline group module of the drill string rotation controller is meshed to stably control the synchronous rotation of the mandrel (e.g., the upper mandrel 10, the spline mandrel 16 and/or the lower mandrel 21) and the shell (e.g., the roller shell 3, the upper shell 11, the spline shell 14, and/or the lower shell 17), and the torque is equal (e.g., to the anti-torque).
(20) The above content is merely an example to describe the structure of the present invention. Technical personnel in the technical field can make various modifications or additions to the specific embodiments described or use similar methods to replace them, as long as such modifications or additions do not deviate from the structure of the invention or go beyond the present invention, they shall all fall into the protection scope of the present invention defined by the claims of the invention.