Milling Bypass Valve
20190136653 ยท 2019-05-09
Assignee
Inventors
- Gregory L. Hern (Porter, TX, US)
- William A. Hered (Houston, TX, US)
- Darin H. Duphorne (Jersey Village, TX, US)
Cpc classification
E21B45/00
FIXED CONSTRUCTIONS
E21B21/103
FIXED CONSTRUCTIONS
E21B34/14
FIXED CONSTRUCTIONS
E21B34/10
FIXED CONSTRUCTIONS
International classification
E21B21/10
FIXED CONSTRUCTIONS
E21B45/00
FIXED CONSTRUCTIONS
E21B7/20
FIXED CONSTRUCTIONS
Abstract
A method and apparatus for controlling fluid flow through a drill string includes a housing having an axis, a radial wall with a bore extending axially therethrough, and an aperture formed in the radial wall. The aperture is in fluid communication with the bore. A piston is located inside the housing and has an orifice configured to permit axial fluid flow through the housing. The spring axially biases the piston to a closed position.
Claims
1. A flow control apparatus to a borehole tool supported on a tubular string, comprising: a housing further comprising an inlet, a straight through outlet and at least one lateral wall port; a piston in said housing selectively covering said wall port, said piston comprising a straight through passage from a top end thereof in flow communication with said straight through outlet and a discrete lateral passage beginning adjacent said top end to a circulation outlet and extending to an outer periphery of said piston, said circulation outlet movable into aligned or misaligned positions with respect to said at least one lateral wall port responsive to flow generated force opposing a bias force on said piston.
2. The apparatus of claim 1, wherein: said discrete lateral passage intersects said straight through passage.
3. The apparatus of claim 1, wherein: said discrete lateral passage does not intersect said straight through passage.
4. The apparatus of claim 1, wherein: said piston is rotationally locked to said housing.
5. The apparatus of claim 1, wherein: said piston further comprises a travel stop at a location of axial alignment of said circulation outlet and said lateral wall port.
6. The apparatus of claim 1, wherein: said discrete lateral passage further comprises a crescent shaped inlet at said top end of said piston.
7. The apparatus of claim 1, wherein: said housing defines an interior plenum about said at least one lateral wall port; said discrete lateral passage comprising multiple outlets selectively axially aligned with said plenum.
8. The apparatus of claim 7, wherein: said at least one wall port comprises multiple circumferentially spaced wall ports communicating with said interior plenum; at least one of said multiple outlets is circumferentially misaligned with at least one said wall port.
9. The apparatus of claim 7, wherein: said discrete lateral passage extending substantially parallel to said straight through passage until turning radially outwardly to orient said multiple outlets radially toward said plenum.
10. The apparatus of claim 9, wherein: said multiple outlets further comprise hardened nozzles with outlets oriented radially into said plenum.
11. The apparatus of claim 1, wherein: said at least one wall comprises a plurality of spaced wall ports; said discrete lateral passage comprising multiple outlets each selectively aligned with a respective said wall port.
12. The apparatus of claim 1, wherein: said discrete lateral passage comprising multiple outlets each angularly oriented toward a downhole end of said piston.
13. The apparatus of claim 1, wherein: said housing further comprising a hardened ring to protect at least one seal around said piston from erosion of fluid flowing past one or more outlets from said discrete lateral passage.
14. The apparatus of claim 1, wherein: said straight through passage and said discrete lateral passage extend axially from said top end of said piston with said discrete lateral passage comprising a crescent shape cross section with multiple outlets radially extending outlets adjacent said outer periphery of said piston.
15. The apparatus of claim 14, wherein: said piston is fabricated with an additive manufacturing process.
16. The apparatus of claim 1, wherein: said piston comprises a clearance fit to said housing for damping high frequency movement of said piston resulting from fluid flow.
17. The apparatus of claim 1, wherein: said flow generated force is created in said straight through passage.
18. The apparatus of claim 16, wherein: said straight through passage is unrestricted.
19. The apparatus of claim 1, wherein: the shape of at least one of said passages is round, oval or crescent.
20. A flow control method for a borehole tool, comprising: providing a housing further comprising an inlet, a straight through outlet and at least one lateral wall port with end connections for attaching to a tubular string to position a borehole tool in a borehole; additively manufacturing a piston in said housing selectively covering said wall port, said piston comprising a straight through passage from a top end thereof in flow communication with said straight through outlet and a discrete lateral passage beginning adjacent said top end to a circulation outlet and extending to an outer periphery of said piston, said circulation outlet movable into aligned or misaligned positions with respect to said at least one lateral wall port responsive to flow generated force in said straight through passage opposing a bias force on said piston; maintaining a predetermined flow to the borehole tool by circulating excess flow into said housing through said discrete lateral passage.
21. The method of claim 20, comprising: maintaining said discrete lateral passage circulation outlet no lower than said at least one wall port.
22. The method of claim 20, comprising: shaping said discrete lateral passage in a crescent shape in an axial orientation with multiple openings as said circulation outlet.
23. The method of claim 22, comprising: making said at least one wall port multiple wall ports; directing said multiple openings into a plenum defined by said housing and placing nozzles in said openings to direct flow into said plenum and through said multiple wall ports.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
[0031] Referring to
[0032] Lateral passage 19 is shown as being crescent shaped. The reason it is preferably crescent shaped is to provide maximum flow area around the internal passage 19. There is a gradual transition from the crescent shape to outlet to minimize erosion. This could also be accomplished by making both passage 19 and 24 crescent shaped, or making passage 19 crescent shaped and passage 24 circular. Another possibility would be for one of both of the passages 19 and 24 to be oval instead of circular.
[0033] Life of seals 30 and 32 can be reduced if piston 16 rapidly oscillates in housing 10 because of inconsistent flow rates through the piston. Seal damage can be reduced by controlling how quickly fluid flows in and out of chamber 41 between extension tube 36 and housing 10. By creating a tight radial clearance 39 between extension tube 36 and housing 10 high frequency movement of piston 16 is damped because fluid entering and leaving chamber 41 is restricted by the tight clearance. Passage 24 can be totally independent of passage 18 to the top of piston 16 or intersect passage 18 near the top end of the piston 16 so that incremental flow as piston 16 moves goes through passage 24 as ports 26 and 34 come into alignment. At flow rates above a predetermined level, typically over 4 barrels a minute (for a 2 motor with higher flow rates contemplated for larger motors), displacement of piston 16 begins until travel stop and rotational lock 20 halts axial movement with the outlet 26 aligned with wall opening 34. Although a single passage 24 leading to an opening 26 that ultimately aligns with opening 34 is illustrated, more than one path out of the housing 10 is contemplated as will be later described. The orifice 18 may be a removable disc or a carbide nozzle with a passage through it so that it can be replaced if it wears or it may be integral with passage 19 through the piston 16 that can be lined with a removable sleeve or unlined. In any event, the orifice remains higher than the wall opening 34 even in the full bypass flow out of port 34 into the surrounding annular space. While the recirculation flow out opening or openings 34 is variable the flow to the mud motor that is not shown remains constant. The flow straight through to the mud motor and laterally out the housing 10 both go through the piston 16. Preferably, the total flow rate should be increased so that if there is to be bypass flow out port or ports 34 the axial travel of the piston 16 should be at the stop represented by 20 so that openings 26 line up with openings 34. Variations of the
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[0038] The various described embodiments split flow between straight through and recirculation so that as the flow increases there are two distinct paths and recirculated flow avoids the straight through flow restricting path. While all flow goes through the piston, the flow is split within the piston in discrete straight through and recirculating paths. The piston with these discrete paths is additively manufactured to allow multiple exit nozzles for the recirculating path that can discharge into aligned outlet ports in the surrounding housing or into a plenum between the piston and the outer housing where flow can exit out radially or can be redirected at least once to a nearby housing exit port. The discrete recirculation path can be crescent shaped to maximize the number of outlets particularly in the smaller sizes.
[0039] The above description is illustrative of the preferred embodiment and many modifications may be made by those skilled in the art without departing from the invention whose scope is to be determined from the literal and equivalent scope of the claims below: