FLUID PULSE VALVE
20170362916 · 2017-12-21
Inventors
- Joshua J. Smith (Vernal, UT, US)
- Joseph Aschenbrenner (Blackfoot, ID, US)
- Gilbert Troy Meier (Vernal, UT, US)
Cpc classification
E21B7/24
FIXED CONSTRUCTIONS
E21B28/00
FIXED CONSTRUCTIONS
E21B34/10
FIXED CONSTRUCTIONS
International classification
E21B34/10
FIXED CONSTRUCTIONS
F16K31/53
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A fluid pulse valve and a method of using the fluid pulse valve are disclosed. The fluid pulse valve comprises an outer housing, a rotor contained within the outer housing, a stator tube surrounding the rotor and adjacent to the outer housing, the stator tube comprising a plurality of slots, and a closer coaxially and rotationally coupled to the rotor and at least a portion of the closer in line with the plurality of slots. As the closer rotates, the closer covers and uncovers the plurality of slots to create a pulse.
Claims
1. A fluid pulse valve, comprising: an outer housing; a rotor contained within the outer housing; a ceramic stator tube surrounding the rotor and adjacent to the outer housing, the stator tube comprising a plurality of slots; and a ceramic closer rotationally coupled to the rotor and at least a portion of the closer in line with the plurality of slots; wherein as the closer rotates, the closer covers and uncovers the plurality of slots to create a pulse.
2. The fluid pulse valve of claim 1, wherein as fluid passes through the fluid pulse valve, the fluid enters the outer housing, passes through the plurality of oblong slots, into the stator and rotates the rotor.
3. The fluid pulse valve of claim 1, further comprising at least one fixed flow area port in the stator tube.
4. The fluid pulse valve of claim 3, further comprising a gearbox, wherein gear reduction within the gearbox causes the closer to rotate at a different rate than the rotor.
5. The fluid pulse valve of claim 4, wherein at least one of gear ratio of the gearbox or pitch of the rotor is adjusted to alter pulse rate relative to flow rate.
6. The fluid pulse valve of claim 1, wherein the fluid pulse valve is a component of a well bore string.
7. The fluid pulse valve of claim 1, further comprising an anchor coupled to the rotor.
8. The fluid pulse valve of claim 7, wherein the anchor, the rotor, and the closer are removable from the stator tube without removing a down hole portion of the well bore string.
9. The fluid pulse valve of claim 7, wherein the anchor is a hold point to remove the rotor and closer from the drill string.
10. The fluid pulse valve of claim 1, wherein the fluid pulse valve closes and opens at 0.1-10 Hz.
11. The fluid pulse valve of claim 1, wherein there are no fluid bypasses.
12. The fluid pulse valve of claim 1, wherein at least one of the slot's quantity and size and a gap between the slot and the closer are adjusted to alter pulse intensity.
13. The fluid pulse valve of claim 1, wherein the ceramic is zirconium dioxide.
14. A method of vibrating a drill string, comprising: providing a bottom hole assembly (BHA); providing a fluid pulse valve positioned uphole of the BHA, the fluid pulse valve comprising: an outer housing; a rotor contained within the outer housing; a ceramic stator tube surrounding the rotor and adjacent to the outer housing, the stator tube comprising a plurality of slots; and a ceramic closer rotationally coupled to the rotor and at least a portion of the closer in line with the plurality of slots; and passing fluid through the fluid pulse valve to the BHA, wherein the fluid forces the closer to rotates, which covers and uncovers the plurality of slots to create a pulse, thereby vibrating the drill string.
15. The method of claim 14, wherein as fluid passes through the fluid pulse valve, the fluid enters the outer housing, passes through the plurality of oblong slots, into the stator and rotates the rotor.
16. The method of claim 14, wherein the fluid pulse valve further comprises at least one fixed flow area port in the stator tube.
17. The method of claim 16, wherein the fluid pulse valve further comprises a gearbox, wherein gear reduction within the gearbox causes the closer to rotate at a different rate than the rotor.
18. The method of claim 17, wherein at least one of gear ratio of the gearbox or pitch of the rotor is adjusted to alter pulse rate relative to flow rate.
19. The method of claim 14, wherein the fluid pulse valve further comprises an anchor coupled to the rotor.
20. The method of claim 19, wherein the anchor, the rotor, and the closer are removable from the stator tube without removing a down hole portion of the well bore string.
21. The method of claim 17, wherein the anchor is a hold point to remove the rotor and closer from the drill string.
22. The method of claim 14, wherein the fluid pulse valve closes and opens at 0.1-10 Hz.
23. The method of claim 14, wherein there are no fluid bypasses in the fluid pulse valve.
24. The method of claim 14, wherein the vibrations are caused by the flow of fluid within the fluid pulse valve starting and stopping.
25. The method of claim 14, wherein at least one of the slot's quantity and size and a gap between the slot and the closer are adjusted to alter pulse intensity.
26. The method of claim 14, wherein the ceramic is zirconium dioxide.
Description
DESCRIPTION OF THE DRAWING
[0017] The invention is described in greater detail by way of example only and with reference to the attached drawing, in which:
[0018]
[0019]
[0020]
[0021]
[0022]
[0023]
DESCRIPTION OF THE INVENTION
[0024] As embodied and broadly described herein, the disclosures herein provide detailed embodiments of the invention. However, the disclosed embodiments are merely exemplary of the invention that may be embodied in various and alternative forms. Therefore, there is no intent that specific structural and functional details should be limiting, but rather the intention is that they provide a basis for the claims and as a representative basis for teaching one skilled in the art to variously employ the present invention.
[0025]
[0026] Fluid pulse valve 100 is preferably comprised of for basic parts: housing 115, anchor 120, rotor 125, and stator 130. Housing 115 makes up the majority of the outer portion of fluid pulse valve 100. Housing 115 is tubular in shape and preferably includes end 105. Preferably, the outer diameter of housing 115 is constant and may be equal to, larger, or smaller than the diameter of the drill string or the joints of the drill string. In a preferred embodiment, the inner diameter of housing 115 increases from end 105 toward end 110 of fluid pulse valve 100. The increase in diameter can be gradual, abrupt, or a combination thereof. Preferably, housing 115 is comprised of steel. However, housing 115 may be comprised of another material, for example, brass, plastic, other metals, or other manmade or naturally occurring materials. Preferably, housing 115 is detachable from the remainder of fluid pulse valve 100.
[0027]
[0028] Rotor 125 is preferably comprised of a gearbox 150, a turbine 34, and a closer 35. Preferably rotor 125 is coupled to anchor 120 within housing 115.
[0029] Preferably, gearbox 150 is coupled to turbine 34 via shaft 33.
[0030]
[0031] As shown in
[0032] The drilling fluid flows through and round stator tube 2, is often abrasive and, as it is forced though fixed flow area ports 37 and into closer 35, can be destructive. For example, as the drilling fluid flows through fixed flow area ports 37, a high-velocity jet of fluid may form that can impact and erode the valve components. In an effort to improve the life of the valve, multiple materials and coating can be used. For example, high strength alloy steel (e.g. ASI 4145 steel), wear resistant tool steels (e.g. A2 & D2 steels), HVOF applied carbide coatings up to 0.010 inches thick over alloy steel, and laser clad carbide coatings up to 0.030 inches thick over alloy steel are all potential materials and coatings. However, with each of these some erosion may occur. For example, the fluid may be able to penetrate between the coatings and the softer steel and erode the softer steel.
[0033] In a preferred embodiment, at least a portion of fluid pulse valve 100 is comprised of a ceramic material. Preferably, at least stator tube 2 and closer 35 are comprised of a ceramic material, however other parts that come into contact with the drilling fluid may also be comprised of the ceramic material. Preferably, the ceramic material is harder than the abrasives present in the drilling fluid. Preferably, the parts are solid ceramic, however in other embodiments ceramic coatings can be used. Preferably, the ceramic is highly impact resistant and resistant to temperature changes within operating ranges of fluid pulse valve 100 (i.e. up to 400° F.). The ceramic is also preferably resistant to acidic corrosion, which can be an issue in certain wells. In a preferred embodiment, the ceramic material is zirconium dioxide (ZrO.sub.2) also known as zirconia. For example, the zirconia may be NILCRA™, produced by Morgan Advanced Materials. Other ceramics may include, for example Partially stabilized zirconia (PSZ) and silicon nitride (Si.sub.3N.sub.4).
[0034] During drilling, for example, drilling fluid enters fluid pulse valve 100 at end 105. The fluid flows into a cavity surrounding anchor 120 and within housing 115. The fluid continues around gearbox 150 and over stator tube 2. Then, the fluid flows though slots 3 in stator tube 2 and into the interior of stator tube 2. As the fluid flows through the interior of stator tube 2, it forces turbine 34 to rotate, which forces the gears in gearbox 150 to turn, which, in turn, rotate closer 35. As closer 35 is rotated, slots 3 become covered and uncovered by closer 35, causing the fluid to stop and restart, thereby creating pulses in fluid pulse valve 100. Preferably, due to the high speed and pressure of the fluid passing through fluid pulse valve 100, fluid pulse valve 100 vibrates the entire drill string. For example, fluid pulse valve 100 can vibrate the drill string at 0.1 Hz, 3 Hz, 5 Hz, 7 Hz, 10 Hz, or another rate. In the preferred embodiment, fluid pulse valve 100 is positioned 1500 to 2000 feet uphole of the bottom hole assembly (BHA) however, fluid pulse valve 100 can be attached to the BHA, positioned adjacent to the BHA, or at another distance from the BHA. Preferably, fluid pulse valve 100 has no bypass so that all of the fluid flows though fluid pulse valve 100.
[0035] Other embodiments and uses of the invention will be apparent to those skilled in the art from consideration of the specification and practice of the invention disclosed herein. All references cited herein, including all publications, U.S. and foreign patents and patent applications, are specifically and entirely incorporated by reference. It is intended that the specification and examples be considered exemplary only with the true scope and spirit of the invention indicated by the following claims. Furthermore, the term “comprising of” includes the terms “consisting of” and “consisting essentially of.”
TABLE-US-00001 TABLE 1 Item # Part 1 Housing 2 Stator Tube 3 Slot Insert 4 Anchor Body 5 Anchor Cap 6 Anchor Extraction Pin 7 Extraction Pin Head 8 Anchor Claw 9 Anchor Seal Sleeve 10 Shear Collar 11 Shear Pin Steel 12 Pulse Seal A 13 Pulse Seal B 14 Pulse Seal C 15 Gearcan 16 Gearcan Cap 17 Thrust Spacer 18 Weld Lock Collar Overlock A 19 Weld Lock Collar Overlock A No Groove 20 Weld Lock Collar Overlock B 21 Shaft Nut 22 Cam A 23 Planet Gear 24 Internal Gear A 25 Internal Gar B 26 Gear Spacer 27 Coupler A 28 Coupler B 29 Thrust Washer A 30 Oil Compensator Body 31 Filter Within 31 Filter Retainer Washer 33 Shaft 34 Turbine 35 Closer 36 Closer Centering Plug 37 Flow Area Port 38 Flow Area Plug 39 Needle Bearing Rollers 40 Bearing Needle Roller Within 40 Thrust Roller Bearing Washer Within 39 Bearing Thrust Washer Within 40 Thrust Bearing Washer Within 29 Thrust Washer 45 Washer Silicone Within 30 Rotary Seal Within 23 Bushing Within 23 Bushing 49 Bushing Within 16 Bushing Flanged 51 Wave Spring 52 Wave Spring Within 30 O-Ring 54 O-Ring Within 16 O-Ring Within 5 O-Ring Within 5 O-Ring 58 Snap Ring 59 Snap Ring 60 Snap Ring Within 30 Spiral Retaining Ring Within 5 Filter Within 5 Grease Fitting Press 64 Dowel Pin 65 Dowel Pin 66 O-Ring Metal 67 Wave Spring 68 Wave Spring 69 Wave Spring 70 Bearing Hi-Temp 71 Spiral Retaining Ring 72 Spring Plunger 73 Rotary Seal 74 Spring Ring