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EP 2 904 193 B1 |
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EUROPEAN PATENT SPECIFICATION |
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Mention of the grant of the patent: |
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09.01.2019 Bulletin 2019/02 |
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Date of filing: 20.09.2013 |
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International Patent Classification (IPC):
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International application number: |
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PCT/EP2013/069576 |
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International publication number: |
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WO 2015/039696 (26.03.2015 Gazette 2015/12) |
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SYSTEM AND METHOD FOR CONTROLLING FLOW IN A PIPE USING A FINGER VALVE
SYSTEM UND VERFAHREN ZUR STEUERUNG DER STRÖMUNG IN EINEM ROHR ANHAND EINES FINGERVENTILS
SYSTÈME ET PROCÉDÉ DE COMMANDE D'ÉCOULEMENT DANS UNE TIGE À L'AIDE D'UN PURGEUR DE
CHAMBRE
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Designated Contracting States: |
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AL AT BE BG CH CY CZ DE DK EE ES FI FR GB GR HR HU IE IS IT LI LT LU LV MC MK MT NL
NO PL PT RO RS SE SI SK SM TR |
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Date of publication of application: |
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12.08.2015 Bulletin 2015/33 |
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Proprietor: Flowpro Well Technology AS |
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1366 Lysaker (NO) |
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Inventor: |
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- BRAKKE, Kristian
0123 Oslo (NO)
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Representative: Protector IP AS |
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Oscarsgate 20 0352 Oslo 0352 Oslo (NO) |
| (56) |
References cited: :
EP-A2- 2 360 347 US-A1- 2005 183 856 US-B1- 6 230 811
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US-A- 3 768 562 US-A1- 2007 295 516 US-B1- 6 244 342
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| Note: Within nine months from the publication of the mention of the grant of the European
patent, any person may give notice to the European Patent Office of opposition to
the European patent
granted. Notice of opposition shall be filed in a written reasoned statement. It shall
not be deemed to
have been filed until the opposition fee has been paid. (Art. 99(1) European Patent
Convention).
|
BACKGROUND
[0001] This disclosure relates to a system and method for controlling flow in a pipe string
using a finger valve.
[0002] The demand for natural gas and oil has significantly grown over the years making
low productivity oil and gas reservoirs economically feasible, where hydraulic fracturing
plays an important part in these energy productions throughout the world. For several
decades different technology has been used to enhance methods for producing resources
from oil and gas wells. Long horizontal wellbores with multiple fractures is one commonly
used process to enhance extraction of oil and gas from wells. This process starts
after a well has been drilled and the completion has been installed in the wellbore.
Multi-stage fracturing is a method that involves pumping large amounts of pressurized
water or gel, a proppant and/or other chemicals into the wellbore to create discrete
multiple fractures into the reservoir along the wellbore.
[0003] One of the technologically advanced methods being used today is simultaneous proppant
fracturing of up to thirty fractures in one pumping operation. This method involves
usage of proppant to prevent fractures from closing. However, this practice can usually
cause an uneven distribution of proppant between the fractures, which will reduce
the efficiency of the fracture system. As a result, this practice can also cause fractures
to propagate in areas that are out of the target reservoir. Thus, such method can
be inefficient and unsafe.
[0004] Additionally, proppant fracturing usually involves multiple steps and requires several
tools in order to be performed successfully. Such practice that will allow even distribution
of proppant between fractures, highly depends on setting plugs between the fracture
stages or using frac balls of increasing sizes. In these methods, plugs are either
set after each fracture has been perforated and pumped, or frac balls are dropped
from the surface to successively open fracturing valves placed along the well. For
each stage, balls of different diameters are dropped into the well corresponding to
a specific fracturing valve's seat. At a point in the well, the ball will no longer
pass through due to a decrease in well diameter. Once the ball is in place, fracturing
can take place. After fracturing, the plugs must be drilled out and the balls must
be recovered. With each fracturing stage while setting plugs, much time and energy
is expended in tripping out of the hole between the stages and drilling out the plugs.
Moreover, land-based rigs are usually rented per day basis, and so any delays can
be quite expensive. Also, only about 12 different fracture stages is possible with
the ball method before a restriction in flow area due to small ball diameter makes
fracturing difficult due to large pressure losses.
EP 2 360 347 A describes an apparatus for a drop ball activated device, where a ball seat is concentrically
and axially slideably disposed within an outer sleeve having a first internal cylindrical
surface, where the seat ball comprises at least one radially extending lug, which
in a first position extends radially inwards from the internal cylindrical surface,
thereby defining a first ball seat diameter less than the diameter of the drop ball.
[0005] As such it would be useful to have a system and method for controlling flow in a
pipe string using a finger valve.
SUMMARY
[0006] Described herein is a system and method for controlling flow in a pipe string using
a finger valve. Specifically, the disclosure describes a finger valve comprising a
base pipe and a sliding sleeve. The base pipe can comprise a finger port, one or more
fingers; and one or more hinges, each of the hinges connecting one of the fingers
to the base pipe. The sliding sleeve can comprise a sliding sleeve having a first
sleeve with in inner surface comprising a void and a depressor. The first sleeve can
be positionable in a first position and a second position. In the first position,
the depressor can push the one or more fingers into a closed position. In the second
position, the void can rest at least one of the one or more fingers, allowing the
at least one of the one or more fingers to move into an open position.
[0007] The disclosure also describes a method for controlling flow in a pipe string using
a finger valve, comprise the steps connecting a base pipe within a pipe string, and
actuating a sliding sleeve from a first position to a second position. The base pipe
can comprise a finger port, one or more fingers; and one or more hinges, each of the
hinges connecting one of the fingers to the base pipe. The sliding sleeve can comprise
a first sleeve having an in inner surface with a void and a depressor. In the first
position, the depressor can push the one or more fingers into a closed position. In
the second position, the void can rest at least one of the one or more fingers, allowing
the at least one of the one or more fingers to move into an open position.
BRIEF DESCRIPTION OF THE DRAWINGS
[0008]
Figure 1A illustrates a side view of a base pipe.
Figure 1B illustrates a front view of a base pipe.
Figure 1C illustrates a cross sectional view of a base pipe.
Figure 2A illustrates a sliding sleeve connected to a fixed sleeve by an actuator,
and in line with an outer ring.
Figure 2B illustrates a front view of a sliding sleeve.
Figure 2C illustrates a cross sectional view of a sliding sleeve.
Figure 2D illustrates a cross sectional view of a sliding sleeve that further comprises
a fixed sleeve, and an actuator.
Figure 3A illustrates a peripheral view of an outer ring.
Figure 3B illustrates a front view of an outer ring.
Figure 4A illustrates a valve casing.
Figure 4B illustrates a fracturing port of a valve casing
Figure 4C illustrates a production slot of a valve casing.
Figure 5 illustrates a finger valve in a closed mode.
Figure 6 illustrates a finger valve in an open mode.
DETAILED DESCRIPTION
[0009] Described herein is a system and method for controlling flow in a pipe string using
a finger valve. The following description is presented to enable any person skilled
in the art to make and use the invention as claimed and is provided in the context
of the particular examples discussed below, variations of which will be readily apparent
to those skilled in the art. In the interest of clarity, not all features of an actual
implementation are described in this specification. It will be appreciated that in
the development of any such actual implementation (as in any development project),
design decisions must be made to achieve the designers' specific goals (e.g., compliance
with system- and business-related constraints), and that these goals will vary from
one implementation to another. It will also be appreciated that such development effort
might be complex and time-consuming, but would nevertheless be a routine undertaking
for those of ordinary skill in the field of the appropriate art having the benefit
of this disclosure. Accordingly, the claims appended hereto are not intended to be
limited by the disclosed embodiments, but are to be accorded their widest scope consistent
with the principles and features disclosed herein.
[0010] Figure 1A illustrates a side view of a base pipe 100. Base pipe can be connected
as a portion of a pipe string. In one embodiment, base pipe 100 can be cylindrical,
and can comprise a finger 101 and a finger port 102. Figure 1B illustrates finger
101 connected Finger 101 can connect to base pipe 100 by a hinge 103. In one embodiment,
a first biasing device 104 can also base pipe 100 to finger 101. In another embodiment,
first biasing device 104 can operationally be a part of hinge 103. By connecting first
biasing device to finger 101 and base pipe 102, finger can be biased to an open or
closed position. For exemplary purposes, this disclosure illustrates finger 101 biased
in an open position. In one embodiment, base pipe 100 can also comprise a first portion
of fracturing port 105 and/or a production port 106. First portion of fracturing port
105 can be made of one or more openings, and production port 106 can also be made
of one or more openings in base pipe 100.
[0011] Figure 1C illustrates a front view of base pipe 100. Base pipe 100 can further comprise
a chamber 107. When fingers 101 are in an open position, chamber 107 can be an empty
space or an opening that can allow materials to pass through. However, when fingers
101 are in a closed position, the fingers 101 come together to create a significant
or complete blockage to chamber 107, substantially or completely preventing materials
from passing through base pipe 100.
[0012] Figure 1D illustrates a cross sectional of a base pipe 100 further comprising base
ring 108. In one embodiment finger port 102 can be a plurality of orifices spaced
radially around base pipe 100. In another embodiment finger port 102 can be a cylindrical
segment missing from base pipe 100. First portion of fracturing port 105 can be circularly
placed around the middle part of base pipe 100. Production port 106 can be circularly
placed around the rear portion of base pipe 100.
[0013] Figure 2A illustrates a sliding sleeve 200 connected to a fixed sleeve by an actuator
208, and in line with an outer ring 209. In one embodiment, sliding sleeve 200 can
be a cylindrical material that can comprise a second portion of fracturing port 105.
In one embodiment, sliding sleeve 200 can have an opening large enough to fit base
pipe 100. Figure 2B illustrates a front view of a sliding sleeve 200. Sliding sleeve
200 can further comprise a sleeve chamber 201. Sleeve chamber 201 can be an opening
large enough to house base pipe 100.
[0014] Figure 2C illustrates a cross sectional view of a sliding sleeve 200. Sliding sleeve
200 can comprise a first sleeve 202 and a second sleeve 203. Further, first sleeve
202 and a second sleeve 203 can be attached through one or more curved sheet 204,
the spaces between each curved sheet 204 defining a portion of fracturing port 105.
Inner surface of first sleeve 202 can comprise surface attributes that interact with
one or more fingers 101. Surface attributes can comprise a first attribute and a second
attribute. First attribute can be one or more voids 205 and second attribute can be
a depressor 206 capable of moving finger 101 to a closed position. Void 205 can extend
radially around the complete inner diameter of base pipe 100, partially around the
inner diameter, or local to a single radial position. If completely around the inner
diameter, the ends of inner surface can have a smaller diameter than the void. If
local, void 205 can comprise a plurality of local depressions positioned radially
around the inner surface of sliding sleeve 200.
[0015] Figure 2D illustrates a cross sectional view of a sliding sleeve 200 further comprising
fixed sleeve 207, connected to fixed sleeve 207 by actuator 208, and in line with
outer ring 209. In one embodiment, actuator 208 can be a biasing device such as a
spring. Second sleeve 203 of sliding sleeve 200 can be attached to fixed sleeve 207
using actuator 208. In one embodiment wherein actuator 208 is a biasing device, sliding
sleeve 200 can be pulled towards fixed sleeve 207, thus compressing or otherwise load
biasing device 208 with potential energy. Later biasing device 208 can be released
or otherwise instigated, pushing sliding sleeve 200 away from fixed sleeve 207. In
another embodiment, actuator 208 can retrieve sliding sleeve 200 to its original position.
Fixed sleeve 207 is depicted in the above figures as a cylinder, but in practice may
not be a continuous loop. Instead, fixed sleeve may be any device or devices connected
to base pipe 100 that gives actuator 208 a foothold to push connect to or push against
to actuate sliding sleeve 200. In one embodiment, fixed sleeve 205 can be a component
of actuator 208.
[0016] Figure 3A illustrates a peripheral view of outer ring 209. In one embodiment outer
ring 209 can be a solid cylindrical tube forming a ring chamber 301, as seen in figure
3B. In another embodiment, outer ring 209 can be attached to base ring 108 of base
pipe 100. In one embodiment outer ring 209 can be an enclosed solid material forming
a cylindrical shape. A ring chamber 301 can be the space formed inside outer ring
209. Ring chamber 301 is large enough to slide over base pipe 100. Outer ring 300
can be fixed to base pipe 100. In one embodiment, outer ring 209 can be used to halt
forward progress of sliding sleeve 200 during actuation.
[0017] Figure 4A illustrates a valve casing 400. In one embodiment, valve casing 400 can
be a cylindrical material, which can comprise a third portion of fracturing port 105,
and production port
106. As such third portion of fracturing port 105 can be a plurality of openings circularly
placed around valve casing 400, as seen in Figure 4B. Further, production port 106
can be one or more openings placed around valve casing 400, as seen in Figure 4C.
[0018] Figure 5 illustrates a finger valve 500 in a closed mode. In an embodiment wherein
fracturing valve 500 can be used in fracturing a well, fracturing valve 500 can comprise
base pipe 100, sliding sleeve 200, outer ring 300, and/or valve casing 400. In such
embodiment, base pipe 100 can be an innermost layer of finger valve 500. A middle
layer around base pipe 100 can comprise outer ring 300 fixed to base pipe 100 and
sliding sleeve 200, wherein fixed sleeve 207 is fixed to base pipe 100. Finger valve
500 can comprise valve casing 400 as an outer layer. Valve casing 400 can, in one
embodiment, connect to base ring 108, outer ring 209 and fixed sleeve 207. In a fracturing
position, fracturing port 105 can be aligned and open, due to the relative position
of base pipe 100 and sliding sleeve 200.
[0019] At an open state, biasing device 208 can be in a loaded state further moving the
hinges and pushing finger 101 into chamber 107. In such state, finger 101 can be in
a closed form, blocking the path of fluid in chamber 107. Finger valve 500 can be
useful in fracturing a well, for example, as shown in Figure 5, in a closed state
fracturing port 105 will be open, allowing flow of proppant from chamber 107 through
fracturing port 105 and into a formation, thereby allowing fracturing to take place.
[0020] Figure 6 illustrates finger valve 500 in open mode. As sliding sleeve 200 is pushed
towards outer ring 209 by biasing device 208, finger 101 can be pushed to rise up.
When used in well fracturing, sliding sleeve 200 can concurrently close fracturing
port 105 and open production port 106, allowing materials to pass through base pipe
100. Once production port 106 is opened, extraction of oil and gas can start. In one
embodiment, a plurality of finger valves 500 can be put in a well. After one has been
used to fracture a well, another can be used downstream. In such embodiment, each
production port can have a check valve to allow fracturing to continue downstream
without pushing frac fluid through the production port.
[0021] Various changes in the details of the illustrated operational methods are possible
without departing from the scope of the following claims. Some embodiments may combine
the activities described herein as being separate steps. Similarly, one or more of
the described steps may be omitted, depending upon the specific operational environment
the method is being implemented in. It is to be understood that the above description
is intended to be illustrative, and not restrictive. For example, the above-described
embodiments may be used in combination with each other. Many other embodiments will
be apparent to those of skill in the art upon reviewing the above description. The
scope of the invention should, therefore, be determined with reference to the appended
claims, along with the full scope of equivalents to which such claims are entitled.
In the appended claims, the terms "including" and "in which" are used as the plain-English
equivalents of the respective terms "comprising" and "wherein."
1. A finger valve comprising
a base pipe (100) comprising a finger port (102);
one or more fingers (101); and
one or more hinges (103), each of said hinges (103) connecting one of said fingers
(101) to said base pipe (100); and
a sliding sleeve (200) comprising a first sleeve (202) having an in inner surface,
said inner surface comprising a void (205) and a depressor (206), said first sleeve
(202) maneuverable into a first position, wherein said depressor (206) pushes said
one or more fingers (101) into a closed position; and a second position, wherein said
void (205) rests over one of said one or more fingers (101), allowing said one or
more fingers (101) to move into an open position,
a fixed sleeve (207) fixed around said base pipe (100) near a first side of said sliding
sleeve (207); and
an actuator (208) connecting said fixed sleeve (207) to said sliding sleeve, said
actuator (208) capable of moving sliding sleeve (200) from said first position to
said second position,
characterised in that
said base pipe (100) further comprises a fracking port (105) first portion; said sliding
sleeve (200) further comprises a second sleeve (203); a fracking port (105) second
portion; and
one or more curved sheets (204) connecting said first sleeve (200) to said second
sleeve (203),
wherein the space between said one or more curved sheets (204) defines said fracking
port (105) second portion.
2. The finger valve of claim 1, wherein said one or more fingers (101) comprises two
or more fingers (101).
3. The finger valve of claim 1 or 2, further comprising one more first biasing devices
(104), each of said first biasing devices (104) biasing one or more of said fingers
(101) to an open position.
4. The finger valve of claim 3, wherein at least one of said first biasing devices (104)
is a structural component of one of said hinges (103).
5. The finger valve of claim 3, wherein at least one of said first biasing devices (104)
is a spring.
6. The finger valve of claim 3, wherein at least one of said biasing devices (104) is
a magnetized portion of one of said fingers (103) .
7. The finger valve of claim 3, wherein at least one of said biasing devices(104) is
a magnetized portion of said first sleeve (202).
8. The finger valve of claim 1, wherein said void (205) comprises a plurality of depressions,
each depression allowing one or more of said one or more fingers (101) to move into
said open position.
9. The finger valve of claim 1, wherein said sliding sleeve (200), while in said first
position, said fracking port (105) first portion aligns with said fracking port (105)
second portion; and said second position, said fracking port (105) first portion does
not align with said fracking port (105) second portion.
10. The finger valve of claim 1, wherein said base pipe (100) further comprises a production
port (106).
11. The finger valve of claim 10, further wherein said sliding sleeve (200), while in
said first position, said sliding sleeve (200) blocks said production port (106);
and said second position, said sliding sleeve (200) does not block said production
port (106).
12. The finger valve of claim 9, wherein said base pipe (100) further comprises a production
port (106).
13. The finger valve of claim 12, wherein said sliding sleeve (200), while in said first
position, said second sleeve (200) blocks said production port (106); and said second
position, said second sleeve (200) does not block said production port (106).
14. The finger valve of claim 1, wherein said actuator (208) is a second biasing device.
15. The finger valve of claim 14, wherein said second biasing device (208) is a spring.
16. A method for controlling flow through a pipe string comprising the steps
connecting a base pipe (100) within a pipe string, said base pipe (100) comprising
a finger port (102); a fracking port (105) first portion; one or more fingers (101);
and one or more hinges (103), each of said hinges (103) connecting one of said fingers
(101) to said base pipe (100); and
actuating by an actuator (208), a sliding sleeve (200) from a first position to a
second position relative to a fixed sleeve (207) connected to said sliding sleeve
(200) by said actuator (208), said sliding sleeve (200) comprising a first sleeve
(202), a second sleeve (203), a fracking port (105) second portion, and one or more
curved sheets (204), said one or more curved sheets (204) connecting said first sleeve
(202) to said second sleeve (207), further the space between said one or more curved
sheets (204) defining said fracking port (105) second portion, said first sleeve (202)
comprising an in inner surface, said inner surface comprising a void (205) and a depressor
(206), characterized in that
said first position, said depressor (206) pushes said one or more fingers (101) into
a closed position; and
said second position, said void (205) rests over one of said one or more fingers (101),
allowing said one or more fingers (101) to move into an open position.
17. The method of claim 16, comprising the step of fracturing a well.
18. The method of claim 17, comprising the following step of producing hydrocarbons from
an open position.
1. Fingerventil, Folgendes aufweisend
ein Basisrohr (100), das eine Fingeröffnung (102) aufweist;
einen oder mehrere Finger (101); und
ein oder mehrere Scharniere (103), wobei jedes der Scharniere (103) einen der Finger
(101) mit dem Basisrohr (100) verbindet; und
eine Schiebehülse (200), die eine erste Hülse (202) mit einer Innenfläche aufweist,
wobei die Innenfläche einen Hohlraum (205) und einen Drücker (206) aufweist, wobei
die erste Hülse (202) in eine erste Position manövrierbar ist, wobei der Drücker (206)
den einen oder die mehreren Finger (101) in eine geschlossene Position drückt; und
eine zweite Position, wobei der Hohlraum (205) über einem des einen oder der mehreren
Finger (101) aufliegt, so dass es ermöglicht wird, dass sich der eine oder die mehreren
Finger (101) in eine offene Position bewegen, eine feste Hülse (207), die um das Basisrohr
(100) herum in der Nähe einer ersten Seite der Schiebehülse (207) befestigt ist; und
einen Aktor (208), der die feste Hülse (207) mit der Schiebehülse verbindet, wobei
der Aktor (208) in der Lage ist, die Schiebehülse (200) von der ersten Position in
die zweite Position zu bewegen,
dadurch gekennzeichnet, dass
das Basisrohr (100) ferner einen ersten Fracking-Öffnungs (105)-Abschnitt aufweist;
die Schiebehülse (200) ferner eine zweite Hülse (203); einen zweiten Fracking-Öffnungs
(105)-Abschnitt; und
ein oder mehrere gebogene Bleche (204), die die erste Hülse (200) mit der zweiten
Hülse (203) verbinden, aufweist
wobei der Raum zwischen den einen oder den mehreren gekrümmten Blechen (204) den zweiten
Fracking-Öffnungs (105)-Abschnitt begrenzt.
2. Fingerventil nach Anspruch 1, wobei der eine oder die mehreren Finger (101) zwei oder
mehrere Finger (101) aufweisen.
3. Fingerventil nach Anspruch 1 oder 2, ferner eine oder mehrere erste Vorspanneinrichtungen
(104) aufweisend, wobei jede der ersten Vorspanneinrichtungen (104) einen oder mehrere
der Finger (101) in eine offene Position vorspannt.
4. Fingerventil nach Anspruch 3, wobei wenigstens eine der ersten Vorspannvorrichtungen
(104) eine Strukturkomponente eines der Scharniere (103) ist.
5. Fingerventil nach Anspruch 3, wobei wenigstens eine der ersten Vorspanneinrichtungen
(104) eine Feder ist.
6. Fingerventil nach Anspruch 3, wobei wenigstens eine der Vorspanneinrichtungen (104)
ein magnetisierter Abschnitt eines der Finger (103) ist.
7. Fingerventil nach Anspruch 3, wobei wenigstens eine der Vorspanneinrichtungen (104)
ein magnetisierter Abschnitt der ersten Hülse (202) ist.
8. Fingerventil nach Anspruch 1, wobei der Hohlraum (205) eine Vielzahl von Vertiefungen
aufweist, wobei jede Vertiefung es einem oder mehreren der einen oder der mehreren
Finger (101) ermöglicht, sich in die offene Position zu bewegen.
9. Fingerventil nach Anspruch 1, wobei, während sich die Schiebehülse (200) in der ersten
Position befindet, der erste Fracking-Öffnungs (105)- Abschnitt sich mit dem zweiten
Fracking-Öffnungs (105)-Abschnitt ausrichtet; und der erste Fracking-Öffnungs (105)-Abschnitt
sich in der zweiten Position nicht mit dem zweiten Abschnitt der Fracking-Öffnung
(105) ausrichtet.
10. Fingerventil nach Anspruch 1, wobei das Basisrohr (100) ferner eine Förderöffnung
(106) aufweist.
11. Fingerventil nach Anspruch 10, wobei die Schiebehülse (200) ferner, während sie sich
in der ersten Position befindet, die Förderöffnung (106) blockiert; und in der zweiten
Position die Schiebehülse (200) die Förderöffnung (106) nicht blockiert.
12. Fingerventil nach Anspruch 9, wobei das Basisrohr (100) ferner eine Förderöffnung
(106) aufweist.
13. Fingerventil nach Anspruch 12, wobei die Schiebehülse (200), während sie sich in der
ersten Position befindet, die Förderöffnung (106) blockiert; und in der zweiten Position
die zweite Hülse (200) die Förderöffnung (106) nicht blockiert.
14. Fingerventil nach Anspruch 1, wobei der Aktor (208) eine zweite Vorspannvorrichtung
ist.
15. Fingerventil nach Anspruch 14, wobei die zweite Vorspannvorrichtung (208) eine Feder
ist.
16. Verfahren zum Steuern des Durchflusses durch einen Rohrstrang, umfassend die Schritte
des Verbindens eines Basisrohrs (100) innerhalb eines Rohrstrangs, wobei das Basisrohr
(100) eine Fingeröffnung (102), einen ersten Fracking-Öffnungs (105)-Abschnitt, einen
oder mehrere Finger (101) und ein oder mehrere Scharniere (103) aufweist, wobei jedes
der Scharniere (103) einen der Finger (101) mit dem Basisrohr (100) verbindet; und
die Schritte des Betätigens durch einen Aktor (208) einer Schiebehülse (200) von einer
ersten Position in eine zweite Position in Bezug auf eine feste Hülse (207), die mit
der Schiebehülse (200) mittels des Aktors (208) verbunden ist, wobei die Schiebehülse
(200) eine erste Hülse (202), eine zweite Hülse (203), einen zweiten Fracking-Öffnungs
(105)-Abschnitt und ein oder mehrere gebogene Bleche (204) aufweist, wobei das eine
oder die mehreren gekrümmten Bleche (204) die erste Hülse (202) mit der zweiten Hülse
(207) verbinden, ferner der Raum zwischen dem einen oder den mehreren gekrümmten Blechen
(204), der den zweiten Fracking-Öffnungs (105)-Abschnitt begrenzt, wobei die erste
Hülse (202) eine Innenfläche aufweist, wobei die Innenfläche einen Hohlraum (205)
und einen Drücker (206) aufweist,
dadurch gekennzeichnet, dass
in der ersten Position, der Drücker (206) den einen oder die mehreren Finger (101)
in eine geschlossene Position drückt; und
in der zweiten Position, der Hohlraum (205) über einem der einen oder mehreren Finger
(101) liegt, so dass ermöglicht wird, dass sich der eine oder die mehreren Finger
(101) in eine offene Position bewegen.
17. Verfahren nach Anspruch 16, umfassend den Schritt des Ausbrechens eines Bohrlochs.
18. Verfahren nach Anspruch 17, umfassend den folgenden Schritt der Herstellung von Kohlenwasserstoffen
aus einer offenen Position.
1. Valve à doigt comprenant
un tuyau de base (100) comprenant un orifice de doigt (102) ;
un ou plusieurs doigts (101); et
une ou plusieurs charnières (103), chacune desdites charnières (103) reliant un desdits
doigts (101) audit tuyau de base (100) ; et
un manchon coulissant (200) comprenant un premier manchon (202) ayant une surface
intérieure, ladite surface intérieure comprenant un vide (205) et un élément d'affaissement
(206), ledit premier manchon (202) pouvant être manoeuvré dans une première position,
dans laquelle ledit élément d'affaissement (206) pousse lesdits un ou plusieurs doigts
(101) dans une position fermée ; et dans une seconde position, dans laquelle ledit
vide (205) repose sur l'un desdits un ou plusieurs doigts (101), permettant auxdits
un ou plusieurs doigts (101) de se déplacer dans une position ouverte,
un manchon fixe (207) fixé autour dudit tuyau de base (100) à proximité d'un premier
côté dudit manchon coulissant (207) ; et
un actionneur (208) reliant ledit manchon fixe (207) audit manchon coulissant, ledit
actionneur (208) étant capable de déplacer le manchon coulissant (200) de ladite première
position vers ladite seconde position,
caractérisée en ce que
ledit tuyau de base (100) comprend en outre une première partie d'orifice de fracturation
(105) ; ledit manchon coulissant (200) comprend en outre un second manchon (203) ;
une seconde partie d'orifice de fracturation (105) ; et
une ou plusieurs feuilles incurvées (204) reliant ledit premier manchon (200) audit
second manchon (203),
dans laquelle l'espace entre lesdites une ou plusieurs feuilles incurvées (204) définit
ladite seconde partie d'orifice de fracturation (105).
2. Valve à doigt selon la revendication 1, dans laquelle lesdits un ou plusieurs doigts
(101) comprend deux ou plus de deux doigts (101).
3. Valve à doigt selon la revendication 1 ou 2, comprenant en outre un ou plusieurs premiers
dispositifs de sollicitation (104), chacun desdits premiers dispositifs de sollicitation
(104) sollicitant un ou plusieurs desdits doigts (101) vers une position ouverte.
4. Valve à doigt selon la revendication 3, dans laquelle au moins l'un desdits premiers
dispositifs de sollicitation (104) est un composant structurel de l'une desdites charnières
(103).
5. Valve à doigt selon la revendication 3, dans laquelle au moins l'un desdits premiers
dispositifs de sollicitation (104) est un ressort.
6. Valve à doigt selon la revendication 3, dans laquelle au moins l'un desdits dispositifs
de sollicitation (104) est une partie magnétisée de l'un desdits doigts (103).
7. Valve à doigt selon la revendication 3, dans laquelle au moins l'un desdits dispositifs
de sollicitation (104) est une partie magnétisée dudit premier manchon (202).
8. Valve à doigt selon la revendication 1, dans laquelle ledit vide (205) comprend une
pluralité de dépressions, chaque dépression permettant à un ou plusieurs desdits un
ou plusieurs doigts (101) de se déplacer dans ladite position ouverte.
9. Valve à doigt selon la revendication 1, dans laquelle lorsque ledit manchon coulissant
(200) est à ladite première position, ladite première partie d'orifice de fracturation
(105) s'aligne avec ladite seconde partie d'orifice de fracturation (105) ; et à ladite
seconde position, ladite première partie d'orifice de fracturation (105) ne s'aligne
pas avec ladite seconde partie d'orifice de fracturation (105).
10. Valve à doigt selon la revendication 1, dans laquelle ledit tuyau de base (100) comprend
en outre un orifice de production (106).
11. Valve à doigt selon la revendication 10, dans laquelle, en outre, ledit manchon coulissant
(200), lorsqu'il est à ladite première position, bloque ledit orifice de production
(106); et à ladite seconde position, ledit manchon coulissant (200) ne bloque pas
ledit orifice de production (106).
12. Valve à doigt selon la revendication 9, dans laquelle ledit tuyau de base (100) comprend
en outre un orifice de production (106).
13. Valve à doigt selon la revendication 12, dans laquelle lorsque ledit manchon coulissant
(200) est à ladite première position, ledit second manchon (200) bloque ledit orifice
de production (106) ; et à ladite seconde position, ledit second manchon (200) ne
bloque pas ledit orifice de production (106).
14. Valve à doigt selon la revendication 1, dans laquelle ledit actionneur (208) est un
second dispositif de sollicitation.
15. Valve à doigt selon la revendication 14, dans laquelle ledit second dispositif de
sollicitation (208) est un ressort.
16. Méthode pour commander le flux à travers un train de tuyaux comprenant les étapes
consistant à connecter un tuyau de base (100) dans un train de tuyaux, ledit tuyau
de base (100) comprenant un orifice de doigt (102) ; une première partie d'orifice
de fracturation (105) ; un ou plusieurs doigts (101); et une ou plusieurs charnières
(103), chacune desdites charnières (103) reliant un desdits doigts (101) audit tuyau
de base (100) ; et
actionner par un actionneur (208) un manchon coulissant (200) d'une première position
vers une seconde position par rapport à un manchon fixe (207) relié audit manchon
coulissant (200) par ledit actionneur (208), ledit manchon coulissant (200) comprenant
un premier manchon (202), un second manchon (203), une seconde partie d'orifice de
fracturation (105), et une ou plusieurs feuilles incurvées (204), lesdites une ou
plusieurs feuilles incurvées (204) reliant ledit premier manchon (202) audit second
manchon (207), en outre l'espace entre lesdites une ou plusieurs feuilles incurvées
(204) définissant ladite seconde partie d'orifice de fracturation (105), ledit premier
manchon (202) comprenant une surface intérieure, ladite surface intérieure comprenant
un vide (205) et un élément d'affaissement (206),
caractérisée en ce que
à ladite première position, ledit élément d'affaissement (206) pousse lesdits un ou
plusieurs doigts (101) dans une position fermée ; et
à ladite seconde position, ledit vide (205) repose sur l'un desdits un ou plusieurs
doigts (101), permettant auxdits un ou plusieurs doigts (101) de se déplacer dans
une position ouverte.
17. Méthode selon la revendication 16, comprenant l'étape consistant à fracturer un puits.
18. Méthode selon la revendication 17, comprenant l'étape suivante consistant à produire
des hydrocarbures à partir d'une position ouverte.
REFERENCES CITED IN THE DESCRIPTION
This list of references cited by the applicant is for the reader's convenience only.
It does not form part of the European patent document. Even though great care has
been taken in compiling the references, errors or omissions cannot be excluded and
the EPO disclaims all liability in this regard.
Patent documents cited in the description