Drill string rotation brake
10407991 ยท 2019-09-10
Assignee
Inventors
- Max A. Metcalf (Stillwater, OK, US)
- Philip J. Wosmek (Perry, OK, US)
- Harry Bendure (Perry, OK, US)
- Rick E. Barrett (Owasso, OK, US)
Cpc classification
F16H47/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
E21B15/04
FIXED CONSTRUCTIONS
E21B17/03
FIXED CONSTRUCTIONS
Y10T408/356
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
E21B19/16
FIXED CONSTRUCTIONS
B23Q5/04
PERFORMING OPERATIONS; TRANSPORTING
International classification
E21B19/16
FIXED CONSTRUCTIONS
E21B17/03
FIXED CONSTRUCTIONS
Abstract
A rotation brake for stopping rotation of a spindle assembly on a horizontal directional drill. The rotation brake comprises a brake lock that is actuated by a cylinder and spring to interact with a non-rotating brake cap and a rotating pinion, thereby stopping rotation of the pinion. The brake lock is removed from the pinion by applying pressurized fluid to a cylinder such that a cylinder rod moves the brake lock out of a cavity between the brake cap and the pinion. Upon removing fluid pressure from the cylinder, a compressed spring moves the brake lock back to into the cavity, preventing rotation.
Claims
1. An apparatus, comprising: a motor; a pinion rotationally driven by the motor and having a surface having a plurality of pinion splines formed thereon, the plural pinion splines extending in a parallel relationship; a spindle rotationally driven by the pinion, wherein the spindle is connectible to a pipe segment; and a brake assembly configured to selectively stop rotation of the pinion, comprising: a brake lock having a surface having a plurality of lock splines formed thereon, the plural lock splines extending in a parallel relationship and interlockable with the plural pinion splines; and an actuator to move the brake lock between a first position and a second position; wherein the brake lock and pinion are engaged and locked against relative rotation in the first position, and are disengaged and relatively rotatable in the second position, in which the brake lock is a hollow member having an interior surface and an exterior surface and in which the plural lock splines are situated only on the interior surface, and in which the brake lock further comprises a plurality of second lock splines situated only on the exterior surface.
2. The apparatus of claim 1 wherein the actuator comprises a spring.
3. The apparatus of claim 2 in which the brake lock surrounds the spring.
4. The apparatus of claim 2 in which the pinion surrounds the spring and the brake lock surrounds the pinion when the brake lock is in the second position.
5. The apparatus of claim 1 further comprising a control system to place the motor in a neutral condition when the brake lock is in the second position.
6. The apparatus of claim 5 wherein the control system comprises a mechanical switch.
7. The apparatus of claim 1 further comprising a gear box for transferring rotation from the motor to the spindle.
8. The apparatus of claim 1 further comprising an air vent in communication with the brake assembly.
9. The apparatus of claim 1 wherein the brake assembly further comprises a brake cap having an inner surface that at least partially conforms to an outer surface of the brake lock, wherein the inner surface of the brake cap and the outer surface of the brake lock interact when the brake lock is in the second position.
10. The apparatus of claim 1 in which the pinion is disposed at least partially within an internal passage formed in the brake lock when the brake lock is in the second position.
11. The apparatus of claim 1 further comprising a pipe segment directly connected to the spindle.
12. The apparatus of claim 1 wherein the shape of the brake lock is complementary to the shape of at least a portion of the pinion.
13. The apparatus of claim 1 further comprising an elongate drill string formed from a plurality of tubular pipe segments arranged in end-to-end engagement, the drill string rotationally coupled to the spindle.
14. The apparatus of claim 1 in which the plural pinion splines extend along a length of the pinion.
15. The apparatus of claim 1 in which the plural lock splines and the plural second lock splines extend in a parallel relationship.
16. The apparatus of claim 1 in which the brake lock and the pinion each have a central longitudinal axis, in which the central longitudinal axis of the brake lock is coincident with the central longitudinal axis of the pinion.
17. The apparatus of claim 1 in which the plural pinion splines extend parallel to a rotational axis of the pinion.
18. A horizontal directional drill comprising: a frame; a carriage movable along the frame; and the apparatus of claim 1.
19. A method of using the apparatus of claim 1, comprising: rotating the spindle and the pinion; and moving the brake lock from the first position to the second position such that the brake lock interlocks with the pinion and stops its rotation.
20. The method of claim 19 wherein the brake lock is moved from the first position to the second position by a spring.
21. The method of claim 19 wherein the brake lock is moved from the first position to the second position by a hydraulic cylinder.
22. The method of claim 19 further comprising placing the motor into neutral.
23. The method of claim 19 wherein the motor is automatically placed into neutral upon moving the brake lock from the first position.
24. The method of claim 19 further comprising advancing and rotating the spindle to advance a drill string.
25. The method of claim 24 further comprising rotating the spindle to disconnect a pipe segment from the drill string.
26. The method of claim 25 further comprising retracting and rotating the spindle to advance a backreamer.
27. An apparatus, comprising: a motor; a spindle connectable to a pipe segment; a drive train configured to rotationally couple the motor to the spindle, and comprising: a rotatable pinion; and a brake assembly configured to selectively stop rotation of the pinion, comprising: a brake lock; and an actuator configured to move the brake lock between a first position, in which the brake lock surrounds and engages a periphery of the pinion, and a second position, in which the brake lock does not surround and does not engage the same periphery.
28. The apparatus of claim 27 in which the brake lock is characterized as a hollow member having an interior region within which the pinion is at least partially receivable.
29. The apparatus of claim 27 in which the pinion is characterized as an elongate member having a pair of opposed ends separated by an intermediate section, in which the periphery of the pinion surroundable by the brake lock is situated adjacent one of the ends, and in which the apparatus further comprises: a gear intermeshed with the pinion at its intermediate section.
30. An apparatus, comprising: a motor; a pinion rotationally driven by the motor and having a surface having a plurality of pinion splines formed thereon; a spindle rotationally driven by the pinion, wherein the spindle is connectible to a pipe segment; and a brake assembly comprising: a brake lock having a surface having a plurality of lock splines formed thereon, the plural lock splines engageable with the plural pinion splines; and an actuator comprising a spring and configured to move the brake lock between a first position and a second position, in which the brake lock surrounds the spring; wherein the brake lock and pinion are engaged and locked against relative rotation in the first position, and are disengaged and relatively rotatable in the second position.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
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DESCRIPTION OF THE PREFERRED EMBODIMENTS
(8) The present invention is directed to a rotation brake for the spindle on a horizontal directional drill (HDD) system. With reference to
(9) It should be understood that during repetitive drilling operations, a spindle assembly 12 is rotated and advanced by a carriage 5 until the spindle assembly is at its full range of travel forward relative to a drill frame 6. At this point, the spindle assembly 12 is disconnected from the drill string so that the next pipe section can be added to extend the overall length of the drill string. The rotation provided to the output gear during drilling is in a first rotational direction, while a second rotational direction is used when the spindle is unthreaded from the drill string.
(10) Turning now to
(11) The spindle assembly 12 comprises a drill string connection 18. The connection 18, as shown, comprises a drive chuck, or shaft 20 and a saver subassembly 22. The shaft 20 is preferably connected by a collar 24 to the saver subassembly 22. The saver subassembly 22 is adapted to thread onto pipe segments 4 (
(12) With reference now to
(13) The rotation assembly 11 further comprises a water swivel 42 attached to the back of the output shaft 40 through an output cap 44. The water swivel 42 is a rotating connection element that allows for drilling fluids, such as water, air, bentonite, and other known fluids, to be provided between a high-pressure pump (not shown) for providing the drilling fluid, and the rotating elements of the drill string and output shaft 40. Fluid provided through the water swivel 42 enters the drill string (not shown) during drilling operations through an internal passage 46 located within the output shaft 40, drive chuck 20, and saver subassembly 22.
(14) With reference now to
(15) The rotation brake 10 is movable between an engaged position and a disengaged position. In the engaged position, as shown in
(16) With reference again to
(17) The cylinder rod 64 is coupled to the spring housing 72, Pressurized fluid, such as hydraulic fluid, may be applied to the hydraulic chamber 69 of the actuator assembly 60 through the cylinder coupler 68. The fluid causes the chamber 69 to expand and the piston 66 to move away from the motor output pinion 30. The piston 66 is coupled to the cylinder rod 64. Therefore, as the actuator assembly 60 is activated by fluid, the cylinder rod 64 and spring housing 72 move away from the motor output pinion 30. Additionally, the compression spring 70 is compressed as the distance between the reaction wall 75 and the spring housing 72 decreases.
(18) The brake assembly 62 comprises a brake cover 80, a brake cap 82, and a brake lock 84. The brake cover 80 is attached by connectors 86 to the gearbox 14 (
(19) The brake lock 84 comprises external features, such as splines 92 for engaging the splines 90 of the brake cap. Additionally, the brake lock 84 comprises internal features, such as splines 94 for engaging the lock interface 54. The brake lock 84 is attached to the spring housing 72 and thus movable from a first position to a second position by actuation of the actuator assembly 60. In the first position, as shown in
(20) While the actuator assembly 60 is shown with a hydraulically actuated piston 66 and a compression spring 70 moving the cylinder rod 64 in response to changes in fluid pressure, other actuator assemblies may be contemplated, such as dual-action hydraulic cylinders, screw drives, etc. Further, while the compression spring 70 of the current invention biases the rotation brake to an engaged position in the absence of fluid pressure, the opposite configuration may be utilized such that hydraulic pressure is required for activation of the rotation brake.
(21) While the features shown for interaction between the rotation brake 10 and motor output pinion 30 are splines 90, 92, 94, other features may be utilized, such as geometric profiles (for example, hexagonal cavities), rotational stops, etc. Additionally, the interface between the brake lock 84 and brake cap 82, and/or the interface between the brake lock 84 and lock interface 54, may allow for some spring resistance when in the second position to quickly slow then stop is rotation of the motor output pinion 30 rather than providing an instantaneous stop.
(22) Rotation of the motor output pinion 30 and actuation of the rotation brake 10 may cause pressure to build up in the gearbox 14. An internal passage 100 exists due to a central bore through the motor output pinion 30, spring housing 72 and cylinder rod 64. The internal passage should allow transmission of pressure changes between the gearbox 14 and a barrel end 102 of the rotation brake 10. An air vent 104 is provided at the barrel end 102 of the rotation brake 10 such that sudden increase and decrease of pressure within the gearbox 14 is translated to the atmosphere, preventing pressure-related resistance to actuation of the rotation brake 10. O-Rings 105 are placed about a periphery of the piston 66 to isolate the air existing in the barrel end 102 from the hydraulic chamber 69 of the barrel end. A mechanical switch 108, pressure sensor, or the like may be provided at the coupler 68 or elsewhere to indicate the hydraulic pressure in the chamber 69. This information may be provided to a control system (not shown) to indicate whether the brake 10 is actuated such that the motor 16 (
(23) With reference now to
(24) With reference now to
(25) In operation, with the rotation brake 10 disengaged, the spindle assembly 12 is rotated by the motor 16 to connect to a pipe segment 4. The spindle assembly 12 is then advanced along the drill frame 6 while rotating to connect the pipe segment 4 to a drill string. The spindle assembly 12 continues rotation and advancement to advance the drill string into the ground. As shown in
(26) The rotation brake 10 is then disengaged, and the rotation of the spindle assembly 12 reversed to disconnect the spindle assembly from pipe segment 4. As shown in
(27) One of ordinary skill in the art will appreciate that the above steps may be performed substantially in reverse to remove a pipe segment from a pipe string during backreaming operations of the horizontal directional drill 2.
(28) It should be appreciated by those skilled in the art that various modifications and variations can be made in the present invention without departing from the scope and spirit of the invention. It is intended that the present invention cover such modifications and variations as come within the scope and spirit of the appended claims and their equivalents.