Down the hole drilling assembly and apparatus
11834929 · 2023-12-05
Assignee
Inventors
Cpc classification
E21B21/18
FIXED CONSTRUCTIONS
International classification
Abstract
A down the hole drilling assembly having an elongate casing, a fluid powered piston, top and bottom working chambers, a plurality of fluid passages and an exhaust system, wherein the sum of the top work area and a top intermediate work area of the piston is equal to the cross-sectional area of the casing bore.
Claims
1. A down the hole drilling assembly having a top end arranged for coupling to a drill string and a bottom cutting end, the drilling assembly comprising: an elongate casing having an outer wall and an inner wall; a bore housed within the inner wall of the casing having an inner bore diameter D.sub.1; a fluid powered piston arranged moveably inside the casing to shuttle axially back and forth, the piston having a central portion with a cross-sectional diameter D.sub.2, a top end distal portion with a cross-sectional diameter D.sub.3 and a bottom end distal portion with a cross-sectional diameter D.sub.4; a top working chamber arranged at a top end of the piston; a bottom working chamber arranged at a bottom end of the piston; a top control sleeve and bottom control sleeve arranged inside the casing; a plurality of fluid passages located between the top and bottom control sleeves and the casing including: at least one main feed passage, at least one top feed passage and at least one bottom feed passage arranged to control the feeding of pressurized fluid into the top and bottom working chambers to generate the reciprocating movement of the piston; at least one flushing port at the bottom end of the casing which is connected to at least one bottom vent passage arranged to exhaust the bottom chamber; an exhaust system including at least one exhaust port and at least one exhaust passage at the top end of the casing arranged to exhaust the top chamber via at least one top vent passage; and an air distributor having at least a first fluid passage connecting an inlet port to the at least one main feed passage and a second fluid passage connecting the top vent passage with the at least one exhaust passage, wherein the piston has a top work area (W.sub.1) and a top intermediate work area (W.sub.2), wherein the cross-sectional area of the casing bore (A.sub.CB), is equal to the sum of the top work area (W.sub.1) and the top intermediate work area (W.sub.2), and wherein
W.sub.1+W.sub.2≥0.99*A.sub.CB.
2. The down the hole drilling assembly according to claim 1, wherein the piston has a bottom work area (W.sub.3) and a bottom feed work area (W.sub.4), wherein a cross-sectional area of the casing bore (A.sub.CB) is equal to the sum of the bottom work area (W.sub.3) and the bottom feed work area (W.sub.4), and wherein
W.sub.3+W.sub.4≥0.99*A.sub.CB.
3. The down the hole drilling assembly according to claim 1, wherein the ratio of the diameters of the central portion to the two distal portions of the piston is such that: D.sub.3 is in the range 0.3*D.sub.2 to D.sub.2; and D.sub.4 is in the range 0.3*D.sub.2 to D.sub.2.
4. The down the hole drilling assembly according to claim 1, wherein a top intermediate chamber is formed between the top end distal portion of the piston and the central portion of the piston, the top end distal portion of the piston being arranged at least partly inside the top control sleeve, and wherein the top intermediate chamber is in fluid connection with the inlet port through the at least one main feed passage.
5. The down the hole drilling assembly according to claim 4, wherein the top chamber being in fluid connection with the top intermediate chamber via the at least one top feed passage.
6. The down the hole drilling assembly according to claim 4, wherein a bottom intermediate chamber is formed between the bottom end distal portion of the piston and the central portion of the piston, and wherein the bottom end distal portion of the piston is arranged at least partly inside the bottom control sleeve, and wherein the bottom intermediate chamber is in fluid connection with the top intermediate chamber via at least one intermediate feed passage.
7. The down the hole drilling assembly according to claim 6, wherein the bottom intermediate chamber is in fluid connection with the bottom chamber via the at least one bottom feed passage.
8. The down the hole drilling assembly according to claim 1, wherein a check valve is arranged between the at least one exhaust port and the at least one exhaust passage.
9. The down the hole drilling assembly according to claim 1, wherein the exhaust system is moveable axially and there is an exhaust valve which opens and closes the connection between the at least one exhaust passage and the at least one exhaust port when the drilling assembly switches from drilling to flushing modes respectively.
10. A drilling apparatus for percussive rock drilling, the drilling apparatus comprising: a drill string formed from a plurality of end-to-end coupled drill tubes; and a drilling assembly as claimed in claim 1 releasably attached at an axially forward end of the drill string.
Description
BRIEF DESCRIPTION OF THE DRAWING
(1) A specific implementation of the present invention will now be described, by way of example only, and with reference to the accompanying drawings in which:
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DETAILED DESCRIPTION
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(13) The top working chamber 21 is inside the top control sleeve 20, whereas the bottom working chamber 22 is partly defined by a central recess of the drill bit 14.
(14) The piston 19 is at least partly inside the top control sleeve 20 and the bottom control sleeve 60. An inner diameter of the top control sleeve 20 defines the maximum outer diameter of a top end working surface 23 and the inner diameter of the bottom control sleeve 60 defines the maximum outer diameter of the bottom end working surface 24 at the distal ends of the piston 19.
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(16) The cross-sectional area of the casing bore (A.sub.CB) of the casing is defined as:
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(18) The top work area (W.sub.1) is defined as:
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(20) The top intermediate work area (W.sub.2) is defined as:
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(22) The bottom work area (W.sub.3) is defined as:
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(24) The bottom feed work area (W.sub.4) is defined as:
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(26) The cross-sectional area of the casing bore 33 is equal to the sum of the top work area (W.sub.1) and the top intermediate work area (W.sub.2):
WA.sub.top+WA.sub.int_top≥0.99*A.sub.CB
(27) Further, cross-sectional area of the casing bore 33 is equal to the sum of the bottom work area (W.sub.3) and the bottom feed work area (W.sub.4):
W.sub.3+W.sub.4≥0.99*A.sub.CB
(28) A work area is defined the effective area of the piston that will, under influence of pressurized fluid, induce a displacement of the piston.
(29) A top intermediate chamber 53 is formed between the top end distal portion 51 of the piston 19 and the central portion 50 of the piston 19. The top intermediate chamber 53 is in fluid connection with the inlet port 18 through at least one main feed passage 28. The at least one main feed passage 28 is connected to the inlet port 18 by means of a transverse opening 41 and is connected to the top intermediate chamber 53. A bottom intermediate chamber 54 is formed between the bottom end distal portion 52 of the piston 19 and the central portion of the piston 19. The bottom intermediate chamber 54 is in fluid connection with the top intermediate chamber 53 via at least one intermediate feed passage 30, the connection is controlled by the position of the piston 19.
(30) The top working chamber 21 is fed by conveying fluid from the top intermediate chamber 53 and through the at least one top feed passage 62, the connection is controlled by the position of the piston 19. The bottom working chamber 22 is fed by conveying fluid from the bottom intermediate chamber 54 through the at least one feed bottom passage 61. The top chamber 21 is exhausted from the top of the drilling assembly 11 through at least one exhaust port 55 located in the top end 42 of the drilling assembly to the exterior via at least one exhaust passage 56. By exhausting the top chamber 21 from the top of the hammer 42 rather than through the drill bit there is a reduction of the wear rate of the external components, including the drill bit. The bottom chamber 22 is exhausted from the bottom end 44 of the drilling assembly through at least one flushing port 59 for removing cuttings from the drill bit face.
(31) In one embodiment, the plurality of exhaust ports 55 are always open. In other words, the exhaust passage 56 are always in fluid connection with the exhaust ports 55. In another embodiment there is a check valve (non-return valve) 81 between the exhaust ports 55 and the exhaust passage 56 to prevent backflow.
(32) In an alternative embodiment, the exhaust system 58 is moveable axially with respect to the drill string 9 and so the at least one exhaust port 55 are able to open and close when switched between drilling mode and flushing mode. When the drilling assembly 11 is switched from drilling mode to flushing mode, the exhaust system 58 is moved forward relative to the drill string 9. The opening and closing of the exhaust port is enabled by the presence of at least one exhaust valves 57. When the drilling assembly 11 is in drilling mode the exhaust system 58 is positioned next to the drill string and so the exhaust valve 57 is positioned so that the exhaust ports 55 are open. This has the further advantage of reducing the wear of the outer components of the drilling assembly 11 during drilling. When the drilling assembly 11 is in flushing mode the exhaust system 58 is positioned forward of the drill string and therefore the at least one exhaust valves 57 are positioned so that the at least one exhaust ports 55 are closed. By closing the exhaust ports 55 when the drilling assembly 11 is in flushing mode all the air is directed through the drill bit which improves the effectiveness of the hole cleaning and prevents contamination of the hammer.
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