Horizontal directional drill pipe drive connection with locking feature
10851599 ยท 2020-12-01
Assignee
Inventors
- Greg L. Slaughter, Jr. (Perry, OK, US)
- Floyd R. Gunsaulis (Perry, OK, US)
- Max A. Metcalf (Stillwater, OK, US)
Cpc classification
F16D1/033
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
E21B17/03
FIXED CONSTRUCTIONS
E21B17/046
FIXED CONSTRUCTIONS
Y10T403/551
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
International classification
E21B17/046
FIXED CONSTRUCTIONS
E21B17/03
FIXED CONSTRUCTIONS
F16D1/033
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A spindle assembly for connecting a drill string to a rotational drive for use in a horizontal directional drilling operation. The assembly comprises a saver sub attached to the rotational drive, and a drive chuck for connection to the drill string. The drive chuck and saver sub form a torque-transmitting connection by engaging through a seat in the saver sub and an engagement point on the drive chuck. Dowel pins may be used to rotationally lock and provide the engagement between the saver sub and the drive chuck. A collar may thread to the saver sub and cause an interference fit by engaging the drive chuck at a shoulder.
Claims
1. A torque-transmitting assembly comprising: a saver sub; a drive chuck; an internal locking mechanism comprising at least one dowel pin that maintains the drive chuck and saver sub in rotationally-fixed relationship; and a collar that surrounds at least a portion of the saver sub and drive chuck in which the collar comprises a threaded connection; wherein the saver sub and the drive chuck are in torque-transmitting engagement only at the internal locking mechanism and the collar and in which the threaded connection engages one and only one of the saver sub and the drive chuck.
2. The assembly of claim 1 wherein the drive chuck defines at least one depression for placement of the at least one dowel pin.
3. The assembly of claim 1 wherein the internal locking mechanism comprises six dowel pins.
4. The assembly of claim 1 wherein the at least one dowel pin is characterized by a circular cross-section.
5. The assembly of claim 1, wherein the saver sub and the drive chuck each have a rim in which a plurality of concavities are formed.
6. The assembly of claim 5 in which the plural concavities in one rim are alignable in one-to-one face-to-face correspondence with the plural concavities in the other rim.
7. The assembly of claim 6 in which the internal locking mechanism comprises a plurality of dowel pins positionable between the plural concavities of the saver sub and the plural concavities of the drive chuck.
8. A horizontal directional drill for rotating a drill string comprising: the assembly of claim 7; and a rotational drive, operatively connected to the assembly such that operation of the rotational drive rotates the saver sub and the drive chuck.
9. The assembly of claim 5 in which the rim of the saver sub and the rim of the drive chuck are at least partially flat.
10. The apparatus of claim 5 in which at least a portion of the rim of the drive chuck is opposed to and is not in contact with the rim of the saver sub.
11. The assembly of claim 1 further comprising: a shoulder disposed on the drive chuck; and an internal shoulder disposed within the collar; wherein the internal shoulder contacts the shoulder of the drive chuck when the saver sub and the collar are attached.
12. The assembly of claim 11 wherein the saver sub and collar are attached in a threaded connection.
13. The assembly of claim 11 in which the internal shoulder is tapered.
14. The assembly of claim 1 wherein the drive chuck is attached to a dual-member pipe string.
15. A horizontal directional drill for rotating a drill string comprising: the assembly of claim 1; and a rotational drive, operatively connected to the assembly such that operation of the rotational drive rotates the saver sub and drive chuck.
16. The horizontal directional drill of claim 15 wherein the drive chuck is connected to a drill string such that operation of the rotational drive rotates the drill string.
17. The assembly of claim 1 in which the collar comprises a flange and the saver sub comprises a plurality of bolt holes, and further comprising: a plurality of bolts disposed through the flange, each of the plurality of bolts receivable in one of the plurality of bolt holes of the saver sub.
18. The assembly of claim 17 further comprising: a shoulder disposed on the drive chuck; and a tapered internal shoulder disposed within the collar; wherein the tapered internal shoulder contacts the shoulder of the drive chuck when the saver sub and the collar are attached.
19. A torque-transmitting assembly comprising; a saver sub having a rim in which a plurality of concavities are formed; a drive chuck having a rim in which a plurality of concavities are formed, the concavities being alignable in one-to-one face-to-face correspondence with the plural concavities in the other rim; an internal locking mechanism comprising a plurality of dowel pins positionable between the plural concavities of the saver sub and the plural concavities of the drive chuck, wherein the plurality of dowel pins maintain the drive chuck and saver sub in rotationally-fixed relationship; a collar that surrounds at least a portion of the saver sub and drive chuck; wherein the saver sub and the drive chuck are in torque-transmitting engagement only at the internal locking mechanism and the collar; and wherein each of the plurality of dowel pins is radially removable from directly between the drive chuck and saver sub.
20. A method for securing a drive chuck and a saver sub, the saver sub and the drive chuck each having a rim in which a plurality of concavities are formed, the method comprising: placing a plurality of pins between the rim of the saver sub and the rim of the drive chuck such that each of the plurality of pins engages one of the plurality of concavities in torque-transmitting relationship; placing a collar about the rim of the saver sub and the rim of the drive chuck to maintain them in coaxial relationship, such that at least a portion of the rim of the saver sub is opposed to and does not contact the rim of the drive chuck.
21. The method of claim 20 in which each concavity extends between spaced boundaries on its rim and subtends an included angle of less than 360 degrees.
22. The method of claim 20 in which the plural concavities in one rim are alignable in one-to-one face-to-face correspondence with the plural concavities in the other rim.
23. The method of claim 20 wherein the collar maintains the entire rim of the saver sub and the entire rim of the drive chuck in non-contacting relationship.
24. The method of claim 20 in which the pins are placed directly into the concavities in the radial direction relative to the axes of the drive chuck and the saver sub.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
(9) The disclosed invention is directed to a torque-transmitting spindle assembly 10 for use in horizontal directional drilling operations for boring under a surface of the ground 11. With reference to
(10) With reference to
(11) The drive chuck 20 comprises a first end 40, a second end 42, an engagement point 44, a plurality of depressions 46, and a shoulder 48. The first end 40 extends within the opening 28 of the saver sub 18. The first end 40 may operate to transmit thrust between the saver sub 18 and drive chuck 20, or may alternatively only seal the connection between the saver sub and drive chuck. The second end 42 is a connection member for thrust and rotation-transmitting connection to a drill string (
(12) The plurality of depressions 46 provide a location for the dowel pins 21 to be placed. The depressions 46 may be formed with a tapered opening to allow the dowel pins 21 to easily slip into and out of the depressions. Alternatively, the depressions 46 may have parallel walls to provide a press-fit connection when the spindle assembly 10 is assembled. The engagement point 44 may be machined such that the engagement point only engages the seat 32 through the dowel pins 21. In this embodiment, no direct connection between the seat 32 and engagement point 44 takes place, and all the torque-transmission and thrust-transmission occurs between the seat and the dowel pins 21 and the dowel pins and the engagement point. The depressions 46 may be evenly spaced or may be unevenly spaced to allow for clocking orientation between the saver sub 18 and the drive chuck 20. The shoulder 48 comprises a section of the drive chuck 20 where the diameter of the drive chuck changes. Preferably, the shoulder 48 comprises a sloped surface for interaction with internal features of the collar (
(13) The collar 22 comprises a first end 60 and a second end 62. The first end interacts with the threaded portion 30 of the saver sub 18 to hold the elements of the spindle assembly 10 together. One skilled in the art will appreciate that the spindle assembly could transmit torque without the use of the collar 22.
(14) With reference now to
(15) One skilled in the art will appreciate that an angle of contact between the internal shoulder 64 and shoulder 48 may be set at acute angles, or angles below 45 degrees. This causes a radial component in the preload force between the collar 22 and the drive chuck 20 as the threaded section 66 of the collar is tightened onto the threaded to portion 30 of the saver sub. Thus, during the assembly of the spindle assembly 10, some of the rotational energy used forces the diameter of the collar 22 to expand and the diameter of the drive chuck 20 to contract. This reduces relative movement between the saver sub 18 and drive chuck 20 and thus decreases wear on internal components of the spindle assembly 10.
(16) When fully formed, the spindle assembly 10 may comprise an internal channel 70 located within the center of the saver sub 18 and drive chuck 20. The internal channel 70 allows fluid to be transmitted from the HDD machine (
(17) With reference now to
(18) With reference to
(19) When fully connected to the rotational drive 12 of the HDD machine 14, this embodiment of the spindle assembly 10 appears as shown in
(20) Alternative embodiments of the spindle assembly 10 without the use of dowel pins are disclosed herein. With reference to
(21) With reference to
(22) In operation, the spindle assembly 10 is assembled for use with HDD machine 14. The saver sub 18 is fixed to the rotational drive 12 of the HDD machine. The dowel rods 21 are placed within the depressions 46 of the drive chuck 20. The drive chuck 20 is then placed into the saver sub 18 such that the seat 32 is proximate the engagement point 44. As shown in
(23) While the dowel rods 21 have been disclosed herein as seated in depressions 46 of the drive chuck 20 for interaction with castellations on the saver sub 18, it is anticipated that this may be reversed. The depressions may alternatively be placed on the saver sub 18 for interaction with castellations on the drive chuck 20. In this alternative arrangement, the components would still be constrained by the tightening of the collar 22.
(24) One skilled in the art will appreciate that the embodiments herein are not limiting on the scope of this invention. Alternative mechanisms for locking the spindle assembly 10 together such that torque is transmitted between the rotational drive 12 and drill string 16 are possible with slight variation. For example, the dowel rods 21 may be integrally formed with the drive chuck 20. The dowel rods may be replaced with a ring that interacts with the drive chuck 20 and saver sub 18 to transmit torque.
(25) Further, the connection discussed herein could also be used to connect the drill string 16 with a downhole tool or cutting apparatus (not shown) at a terminal end of the drill string.
(26) The spindle assembly 10 disclosed may be modified for use with a dual-member drill string 16, for torque transmission to the inner member, outer member, or both (not shown).