A DRIVE DEVICE FOR ROTATABLE OPERATION OF A DRILL BIT OF A DOWN-THE-HOLE HAMMER
20230374860 · 2023-11-23
Inventors
- Magnus HÖRMAN (ÄLTA, SE)
- Fredrik EGERSTRÖM (NACKA, SE)
- Martin ÖHNSTRÖM (Saltsjö-Boo, SE)
- Magnus FRIDSELL (Sollentuna, SE)
Cpc classification
International classification
Abstract
The invention relates to a rotary device (101) for a down-the-hole hammer (1), which rotary device is accommodated in a rotation motor housing (3) and mounted behind a drill housing (2) for transferring a torque to a drill bit (8) and a pressurized drive fluid (22) to a striking mechanism (4) for the drill bit. The rotary device includes a cam curve with a plurality of drive lobes (28:1-28:3) and working chambers (30:1, 30:2, 30:3) along a circumference in the rotation motor housing (3), a rotor disc (38) carrying a plurality of radially movable vanes (40:1-40:12), which are accommodated in piston tracks (41:1-41:12) in the rotor disc. Characteristics of the rotary device are that it includes; an odd integer of a number of drive lobes (28:1-28:3), which is equal to or higher than three; an odd integer of a number of working chambers (30:1, 30:2, 30:3), which is equal to or higher than three; an odd integer of a number of vanes (40:1-40:12), which is equal to or higher than three, and wherein said number of vanes are simultaneously pressurized in each working chamber (30:1, 30:2, 30:3).
Claims
1. A rotary device for a down-the-hole hammer, said rotary device being accommodated in a rotation motor housing and mounted behind a drill housing included in the down-the-hole hammer with the purpose of both transferring a torque to a drill bit accommodated at the front end of the drill housing and a pressurized drive fluid to a striking mechanism included in the drill housing for the drill bit, wherein the rotary device includes, a cam curve with a plurality of drive lobes and working chambers along a circumference in the rotation motor housing, a rotor disc carrying a plurality of radially moveable vanes, which are accommodated in vane piston tracks in the rotor disc, wherein: a number of the drive lobes is an odd integer, which is equal to or higher than three; a number of the working chambers is an odd integer, which is equal to or higher than three; a number of the vanes is an odd number, which is equal to or higher than three, and said number of vanes are pressurized simultaneously in each working chamber; an annular stator shell portion, which on a radially directed internal envelope surface of a stator ring has said cam curve, a first end gable portion and a second end gable portion, respectively, which are connected with the annual stator shell portion by two transverse division planes spaced from each other in an axial direction, a rotor shaft extending through the stator shell portion along a centre axis is rotatably bedded in said first respectively second end gable portion, wherein the first end gable portion includes at least three inlet ports for admitting pressurized drive fluid to each working chamber, and the second end gable portion includes at least three outlet ports for discharge of consumed drive fluid from each working chamber, wherein each of said inlet ports and outlet ports has an axial direction coinciding with the axial direction of the centre axis through the rotary device, but at a radial distance from said centre axis.
2. The rotary device according to claim 1, wherein the rotor disc carries at least twelve radially moveable vanes, which are evenly distributed along the circumference of the rotor disc, and three of which are simultaneously pressurized in each working chamber.
3. The rotary device according to claim 1, having an absence of the spring component or the expansion element usually sitting behind each moveable vane displaceable in the radial direction in order to, particularly at start in a radial direction at a certain force, to reinforce the outwardly acting centrifugal force that affects each vane.
4. The rotary device according to claim 1, wherein the free edge of each vane is rounded to reduce the frictional force that usually occurs between the vane and the internal envelope surface of the circumference of the stator ring.
5. The rotary device according to claim 1, including a plurality of at least three inflow tracks respectively a plurality of at least three outlet tracks, which are arranged as axially directed drills in the first and the second end gable portion, respectively, and placed at a certain determined spacing along a circle, which is co-axial with the centre axis.
6. The rotary device according to claim 5, wherein the inlet flow track and the inlet port are arranged, so that the inflow track can receive pressure fluid from a fluid distributor constituent in the rotary device and similarly, the outlet port and the outlet flow track are arranged, so that the outlet port can receive the pressure fluid, so that the medium that flows in the outlet flow track can be discharged through a drain constituent in the rotary device.
7. The rotary device according to claim 1, wherein the first end gable portion and the second end gable portion, respectively, are connected with a stator shell portion via threaded connections.
8. The rotary device according to claim 1, including an open driving system, wherein consumed drive fluid is directed out via drain openings and is used as flushing fluid to flush generated drilling cuttings out of a formed drill hole.
9. The rotary device according to claim 1, wherein the drill housing includes a through-going central drill shaft, which at a rear end, via a coupling, is divisibly connected to a front shaft end of the rotor shaft, projecting out through a hole opening in the first gable housing portion.
10. The rotary device according to claim 9, wherein the divisible coupling includes a splined coupling, whose constituent central drill shaft and rotor shaft are hollow for directing drive fluid through the coupling.
Description
DESCRIPTION OF FIGURES
[0014]
[0015]
[0016]
[0017]
[0018]
DESCRIPTION OF THE INVENTION
[0019] With reference to
[0020] Through the effect of said valve in the valve housing 6, two drive surfaces (not shown) of the percussion piston 11 facing away from each other are pressurized in an alternating manner with pressure fluid, whereby said reciprocating movement of the percussion piston is obtained. At the rear end of the drill housing 2, there is a back-piece 12.
[0021] To said back-piece 12, a front end 13 of the rotation motor housing 3 is fluid-sealingly connected via a threaded conical pipe coupling 14. Through the drill aggregate 2 a hollow drill shaft 15 extends centrally, whose hollow interior forms a central flushing channel 16. The central drill shaft 15 is divisible at 17 in connection with said pipe coupling 14 between the drill housing 2 and the rotary machine housing 3, which are thereby mountable to each other as section units. A vane motor 18 with a rotor shaft 20 is included in the rotation motor housing 3. The torque from said rotor shaft 20 can thereby be transferred to the drill bit 8 via the central drill shaft 15, when said respective shafts 15, 20 are interconnected. In the exemplary embodiment shown here, the divisible coupling at 17 includes a divisible hollow beam unit in the form of a splined coupling 21, which more clearly appears from the partial enlargement in
[0022] Due to the central divisible shaft 15 comprised in the splined coupling 17 being hollow, an extension rearward of the drill housing 2 central flushing channel 16 a distance into the rotary machine housing 3 (see also
[0023] With reference to
[0024] A rotary device according to the invention is thus arranged in connection with an coupled behind the drill unit 2 included in the down-the-hole hammer 1 in order to both transfer a torque on the drill bit 8 included in the down-the-hole hammer and a pressurized drive fluid to the striking mechanism 4 for the drill bit 8 included in the down-the-hole hammer. The rotary device as well as the down-the-hole hammer can suitably, but not necessarily, include open driving systems, i.e. the type of system where consumed drive fluid is directed out via a first drain port D in a front surface of the drill bit 8 and said second drain port C. The consumed drive fluid that flows out from said drain ports C, D is used as flushing fluid to flush out generated drilling cuttings from the formed drill hole. As illustrated by the arrow 22, a pressurized drive fluid (pressure fluid) in the form of water under pressure enters from a power source at a drilling rig (not shown) connected at the second end of the drill string.
[0025] The drive assembly accommodated in the rotation motor housing 3 includes a pressure fluid-driven vane motor 18.
[0026] With reference to
[0027] Also, with reference to
[0028] The rotor shaft 20 is via beddings (not shown) rotatably bedded in said first 34 and second end gable portion 35, respectively, of the stator shell 25. The threaded connections 36, 37 of the stator shell 25 at the ends are configured as internal threads to form female parts at mounting of said end gable portions 34, 35 of the mainly tubular stator shell 25. To fit into said threaded connections 36, 37, both end gable portions 34, 35 are correspondingly configured as male parts with external threads at one end. For threaded connection to the conical threaded pipe coupling of in the drill housing 2 in the back-piece 12, said first end gable portion 34 is configured with a pipe coupling 38 corresponding to said back-piece 12 at its second end facing the drill housing 2. For threaded connection with the free end of a drill string (not shown), said second end gable portion 35 is configured with a pipe coupling 39 corresponding to said drill string end at its second end.
[0029] As most clearly appears from
[0030] In the embodiment of the invention described here, three vanes 40:1-40:12 are simultaneously pressurized in each working chamber 30:1-30:3, while each of three vanes 40:1-40:12 at the same moment is facing a respective lobe switching area 128:1-128:3 along the circumference of the stator ring 26, a vane 40:1-40:12 in a respective lobe switching area 128:1-128:3. This operation mode is illustrated in
[0031] According to the invention, it has in an embodiment turned out to be advantageous that the rotary device includes at least one of the following characteristics; an odd integer of a number of drive lobes 28:1-28:3, which is equal to or higher than three; an odd integer of a number of working chambers 30:1, 30:2, 30:3, which is equal to or higher than three; an odd integer of a number of vanes 40:1-40:12, which is equal to or higher than three, and where said number of vanes are simultaneously pressurized in each working chamber 30:1, 30:2, 30:3. In another embodiment of the invention, it has turned out to be suitable that the rotary device includes a combination of each of the characteristics stated above.
[0032] Furthermore, it has according to the invention proven possible to use vanes 40:1-40:12 with an absence of the spring component (not shown) usually sitting behind each moveable vane displaceable in the radial direction of the vane motor to particularly at start, in the radial direction with a certain spring force to press said vane against the stator ring's 26 internal envelope surface 27 and cam curve.
[0033] As shown in
[0034] For each working chamber 30:1, 30:2, 30:3, there is an inlet port 32, which is arranged in said second end gable portion 35, and there is an outlet port 33, which is arranged in said second end gable portion 36. Consequently, the present rotary device includes in total at least three inlet ports 32 and three outlet ports 33. Each of said inlet ports 32 and outlet ports 33, respectively, is axially oriented with respect to the centre axis C-C of the rotary device.
[0035] One of the advantages of the orientation of said respective ports 32, 33 compared with for example prior art radially oriented ports is that it is possible, according to the invention, to arrange the required number of drive lobes, vanes and working chambers in the machine room of the rotary device without increasing the casing size of the machine.
[0036] In addition to said inlet port 32 and outlet port 33, respectively, the first and the second end gable portion 36 include a pair of inflow tracks 32a and outflow tracks 33a, respectively, which are arranged as axis-directed drillings in the respective end gable portion and disposed at a certain division along a circle, which is coaxial with the centre axis C-C of the rotary device, so that the inlet flow track 32a and the inlet port 32 are arranged, so that the inflow track can receive the pressure fluid from the distributor A, B, and similarly the outlet port 33 and the outlet flow track 32a are arranged so that the outlet port 33 can receive pressure liquid, so that the medium that flows in the outlet flow track 32a can be discharged through the drain C.
[0037]
[0038] The end of the rotor shaft 20, which, viewed from said inlet 44, faces front to the drill bit 8, is terminated in a shaft end 48 that travels through and a portion of which protrudes a distance out from a central hole opening 148 in the first end gable portion 34. The shaft end 48 of the rotor shaft 20 is provided with the one operative portion of said splined coupling 21 for interaction with a second operating portion at a rear end of the drill housing's 2 central drill shaft 15, which is provided with a splined coupling at its rear end corresponding to the interaction. Both the torque and the pressurized drive fluid can hereby be transferred directly from the rotary device 101 3 to the drill arrangement 2 via said interconnected shafts 15 and 20.
[0039]