[0001] The present invention relates generally to equipment utilized, and operations performed,
in conjunction with a subterranean well and, in an embodiment described herein, more
particularly provides a method and apparatus for use with two or more hydraulic fluid
conduits deployed downhole.
[0002] The use of two or more hydraulic fluid conduits or lines downhole in production wells
is becoming more widespread. Typically, a plurality of hydraulic lines are run from
surface equipment such as a hydraulic fluid pump and associated control equipment
therefor, through a wellhead and to downhole tools in a well. For example, sliding
sleeves, interval control valves (ICV's), chokes and other downhole tools may be actuated
using hydraulic lines in a well.
[0003] The downhole tools may be placed in different, and potentially isolated, sections
of a production tubing string. When actuated by the presence of pressurized hydraulic
fluid within an associated hydraulic line, a choke or valve can be operated to control
a production fluid flow rate within its associated production tubing section. This
is but one example of the many ways hydraulic lines are used to actuate downhole tools
and control different aspects of wells. A further example of the use of multiple hydraulic
lines to control actuation of multiple downhole tools is described in
PCT Application No. GB 99/02694.
US 4,804,045 describes a diversionary spool assembly for an oil or gas well.
[0004] Generally, when multiple hydraulic lines are used in a well, each hydraulic line
must penetrate the wellhead located at the mouth of the wellbore, and must also penetrate
other pressure bulkheads, such as packers and other downhole equipment, in order to
reach the hydraulically actuated downhole tools. Penetrations through the wellhead
and other pressure bulkheads are preferably kept to a minimum, since each penetration
represents a possible leak path through a bulkhead.
[0005] Unfortunately, in the past, it has been necessary to use a penetration through a
bulkhead for each hydraulic line passing through the bulkhead. This situation either
requires that the number of penetrations (and thus, the number of possible leakpaths)
be increased when additional hydraulic lines pass through the bulkhead, or prevents
the use of such additional hydraulic lines when the number of penetrations cannot
be increased.
[0006] Form the foregoing, it may be clearly seen that it would be highly advantageous to
provide a method and apparatus whereby multiple hydraulic lines may be used with a
single penetration through a bulkhead. Such a method and apparatus would permit an
increased number of hydraulic lines to be used with a given number of penetrations.
It is accordingly an object of the present invention to provide such a method and
apparatus.
[0007] In carrying out the principles of the present invention, in accordance with an embodiment
thereof, a method and apparatus which permits two or more hydraulic fluid paths to
extend through a single penetration of a wellhead or other structure is provided which
solves the above problem in the art.
[0008] According to a first aspect of the present invention, there is provided an apparatus
for use with two or more hydraulic fluid conduits deployed downhole. The apparatus
includes a fluid conductor which provides a respective and separate fluid path for
the fluid contained within each of multiple hydraulic fluid conduits. The fluid conductor
is adapted to be at least partially located within an aperture formed through a well
bulkhead.
[0009] According to another aspect of the present invention, there is provided a method
of passing two or more hydraulic fluid paths through an aperture formed through a
well bulkhead, the method comprising locating a fluid conductor at least partially
within the aperture, the fluid conductor providing a respective and separate fluid
path for the fluid contained within each of multiple hydraulic fluid conduits.
[0010] The well bulkhead may be a downhole tool such as a packer, electric submersible pump
or any other tool located downhole within an open or cased wellbore, or located within
production tubing. Alternatively, the bulkhead may be a tubing hanger, wellhead or
Christmas tree which is located at least partially outside the wellbore itself, such
as at the mouth of the wellbore.
[0011] Preferably, the apparatus includes two couplings. The couplings are connected to
the fluid conductor on opposite sides of the bulkhead. Each coupling provides a mechanical
connection between the multiple hydraulic conduits and the fluid conductor, and further
provides fluid communication between each of the hydraulic conduits and a respective
one of the fluid paths in the fluid conductor.
[0012] In one embodiment, the fluid conductor has multiple bores formed therethrough. Each
of the bores corresponds to one of the fluid paths through the fluid conductor. In
another embodiment, the fluid conductor includes multiple tubular members. One fluid
path is formed within an inner one of the tubes, and another fluid path is formed
between two of the tubular members.
[0013] These and other features, advantages, benefits and objects of the present invention
will become apparent to one of ordinary skill in the art upon careful consideration
of the detailed description of representative embodiments of the invention hereinbelow
and the accompanying drawings.
[0014] Reference is now made to the accompanying drawings, in which:
FIG. 1 is a schematic view of a portion of a well incorporating an apparatus and utilizing
a method, the apparatus and method embodying principles of the present invention;
FIG. 2A is a cross-sectional view of a first embodiment of the apparatus shown in
FIG. 1;
FIG. 2B is a cross-sectional view of a first fluid conductor of the first apparatus,
taken along line 2B-2B of FIG. 2A;
FIGS. 3-6 are cross-sectional views of alternate constructions of the first fluid
conductor;
FIG. 7 is a side elevational view of an axial portion of a second fluid conductor;
FIG. 8 is a cross-sectional view of a second embodiment of the apparatus shown in
FIG. 1, the second apparatus utilizing the second fluid conductor of FIG. 7; and
FIG. 9 is a cross-sectional view of a third embodiment of the apparatus shown in FIG.
1, the third apparatus utilizing the second fluid conductor of FIG. 7.
[0015] Representatively illustrated in FIG. 1 is a method which embodies principles of the
present invention. In the following description of the method 1 and other apparatus
and methods described herein, directional terms, such as "above", "below", "upper",
"lower", etc., are used only for convenience in referring to the accompanying drawings.
Additionally, it is to be understood that the various embodiments of the present invention
described herein may be utilized in various orientations, such as inclined, inverted,
horizontal, vertical, etc., and in various configurations, without departing from
the principles of the present invention.
[0016] FIG. 1 depicts a well which has been completed in a conventional manner, in that
a casing string 3 has been lowered into a drilled wellbore and cemented into place
in order to protect the integrity of the wellbore. Thereafter, a production tubing
string 5 has been inserted into the inner bore of the casing string 3 and hung from
a tubing hanger in a wellhead 7 which is located at or close to the surface of the
wellbore. The wellhead 7 provides a pressure bulkhead at the top of the wellbore.
[0017] A packer 9 is provided in the tubing string 5. The packer 9 provides a seal between
the tubing string 5 and the casing string 3. Thus, the packer 9 also provides a pressure
bulkhead in the wellbore.
[0018] A hydraulically actuated downhole tool, such as a sliding sleeve valve 11, is also
made up into the production tubing string 5. The sliding sleeve valve 11 can be actuated
by application of pressurized hydraulic fluid to open or close the valve, such that
fluids being produced from a production zone of the well into the casing string 3
can either flow into the production tubing string 5 or be prevented from flowing into
the production tubing string. In this manner, if multiple sliding sleeve valves 11
are included in the production tubing string 5 at spaced apart locations, they can
be operated to control the production of fluids from different production zones of
the well.
[0019] A pair of hydraulic fluid conduits or control lines 13A, 13B are run from the surface,
or another remote location, to the valve 11 for actuation thereof. A suitable hydraulic
fluid pump (not shown) is attached to at least one of the hydraulic lines 13A, 13B,
and is actuated to pump pressurized hydraulic fluid down at least one of the hydraulic
lines to operate the valve 11 or other hydraulically actuated downhole tool.
[0020] It should be noted that one of the hydraulic lines 13A, 13B may serve to supply hydraulic
fluid from the pump to the sliding sleeve valve 11, and the other hydraulic line may
serve to return the hydraulic fluid from the valve to the pump and/or an associated
hydraulic fluid reservoir. Alternatively, both hydraulic lines 13A, 13B may serve
to supply hydraulic fluid to the valve 11 and/or other downhole tools, with the hydraulic
fluid thereafter being exhausted to the annulus, to the interior of the production
tubing string 5 and/or to a downhole formation if its return to surface is not required
and/or desired.
[0021] Of course, many variations may be made to the well described above, without departing
from the principles of the present invention. For example, multiple packers, multiple
downhole tools, different downhole tools, more hydraulic lines, etc., may be used.
The wellbore may be uncased. The hydraulic lines 13A, 13B may pass through a pressure
bulkhead other than, or in addition to, the wellhead 7 at the surface. The hydraulic
lines 13A, 13B may pass through additional bulkheads, etc.
[0022] As described above, the wellhead 7 and packer 9 are examples of pressure retaining
bulkheads used in conjunction with a well. As used herein, the term "bulkhead" means
any structure, tool or object which separates differently pressurized regions and
presents an obstacle to passage of hydraulic lines therethrough. Due to the function
of a bulkhead in separating differently pressurized regions, an aperture formed through
a bulkhead for passage of a hydraulic line therethrough typically must not permit
any leakage of fluid from one side of the bulkhead to the other. The possibility of
such leakage due to the presence of each aperture makes it desirable to reduce the
number of apertures which are required through well bulkheads to allow hydraulic lines
to pass therethrough.
[0023] An aperture 15 is formed through the wellhead 7 shown in FIG. 1. A similar aperture
15 is formed through the packer 9, although the aperture is not visible in FIG. 1.
Conventionally, such apertures have an inner diameter somewhat greater that 0.25 in.
(6.35mm), so that a single 0.25 in. (6.35mm) hydraulic line may pass therethrough.
Heretofore, it has not been possible to pass more than one fluid conduit through the
aperture 15 while maintaining the pressure bearing integrity of the wellhead 7. Thus,
only one fluid path could extend through a single aperture.
[0024] Referring additionally now to FIGS. 2A & B, a coupling 17 embodying principles of
the present invention is representatively illustrated. The coupling 17 permits two
fluid paths to extend through the aperture 15, and permits two hydraulic lines to
be interconnected to the fluid paths.
[0025] In this manner, the multiple fluid paths associated with the multiple hydraulic lines
may extend through a single aperture, without the need for the multiple hydraulic
lines themselves to extend through the aperture. The hydraulic lines are connected
to a first coupling 17 on one side of a bulkhead, a fluid conductor 29 extends between
the first coupling and a second coupling on the other side of the bulkhead, and the
hydraulic lines are connected to the second coupling.
[0026] In the method 1 depicted in FIG. 1, a first coupling 17A is used above each of the
wellhead 7 and the packer 9, and a second coupling 17B is used below each of the wellhead
and packer. Thus, a section of the hydraulic lines 13A, 13B connects to the coupling
17A above the wellhead 7, a section of the hydraulic lines connects between the coupling
17B below the wellhead and the coupling 17A above the packer 9, and another section
of the hydraulic lines connects between the coupling 17B below the packer and the
valve 11.
[0027] The coupling 17 includes a housing 19. Two hydraulic connection ports 21A, 21B are
respectively formed in the left and right hand sides of the housing 19. The ends of
each section of the hydraulic control lines 13A, 13B are provided with suitable conventional
connectors such that an end of one of the sections of control line 13A is fitted into
side port 21A and an end of one of the sections of control line 13B is fitted into
side port 21B. Side ports 21A, 21B are provided with a suitable connection, such as
a National Pipe Thread (NPT) connection, which is a standard tapered thread connection.
[0028] The housing 19 is provided with a vertical bore 23 therethrough. The side port 21A
is arranged to be in fluid communication with the vertical bore 23 via a fluid passage
25a and a bore recess 27A. The other side port 21B is also in fluid communication
with the vertical bore 23 via a similar fluid passage 25B and bore recess 27B.
[0029] A fluid conductor 29 having multiple bores 31A, 31B therein is located longitudinally
within the vertical bore 23. The two bores 31A, 31B are separated by a barrier 33.
The barrier 33 prevents commingling of hydraulic fluid between the bores 31A, 31B.
[0030] An opening 35A is provided in the sidewall of the left hand side of the conductor
29 and a similar sidewall opening 35B is located in the right hand sidewall of the
conductor. The conductor 29 and sidewall openings 35A, 35B are arranged within the
vertical bore 23 such that the left hand sidewall opening 35A is vertically aligned
with the bore recess 27A, and similarly, the right hand sidewall opening 35B is vertically
aligned with the bore recess 27B.
[0031] When the conductor 29 is located within the housing 19 as previously described, a
suitable upper anchoring and sealing device 37 is operated to lock the upper end of
the conductor 29 in place. An example of such a suitable device 37 is also shown in
FIG. 2A as comprising a tapered ferrule 41, ferrule backup 43 and jam nut 45, and
is arranged so that when the jam nut 45 is torqued up, screw threads provided on the
outer surface of the jam nut engage screw threads provided on the upper end of the
vertical bore 23, such that the jam nut compresses the ferrule backup, which further
compresses the tapered ferrule against a tapered surface 47 of the vertical bore 23.
This vertical compression also compresses the ferrule 41 radially inwardly to compress
against the outer surface of the conductor 29 to lock it in place.
[0032] A similar ferrule 41, ferrule backup 43 and jam nut 45 are also shown in FIG. 2A
as being a suitable example of a lower anchoring and sealing device 39 and which is
also actuated to lock the lower end of the conductor 29 in place. It will be readily
appreciated by one skilled in the art that the devices 37, 39 are conventional compression
tubing fittings, and that these devices may be replaced by any of a variety of separate
or combined anchoring devices and sealing devices.
[0033] An o-ring seal 49 is provided within a recess 51 located at approximately the mid-point
of the vertical bore 23. The seal 49 operates to seal between the fluid conductor
29 and the bore 23, thereby isolating the upper bore recess 27A with respect to the
lower bore recess 27B.
[0034] As described above for the method 1, the fluid conductor 29 extends between one coupling
17A positioned on one side of a bulkhead, and another coupling 17B positioned on the
other side of the bulkhead. Thus, a fluid conductor 29 extends through the aperture
15 formed through the wellhead 7, and another fluid conductor extends through the
aperture formed through the packer 9 shown in FIG. 1. A seal is provided between the
outer surface of each of the conductors 29 and the inner surface of each of the apertures
15. Of course, other means of sealing the apertures 15, such as a seal between one
or both of the couplings 17A, 17B and the respective bulkhead, etc., may be provided
in keeping with the principles of the present invention.
[0035] In addition, opposite ends of the fluid conductor 29 are preferably blanked off,
so that the bores 31A, 31B do not permit fluid communication completely through the
fluid conductor. This may be accomplished by welding the ends of the fluid conductor
29, by the use of plugs in each end of the bores 31A, 31B, or by any other suitable
method. Thus, the fluid conductor 29 extends into two of the couplings 17 at either
end of the conductor and on opposite sides of a bulkhead, and the bores 31A, 31B provide
respective isolated fluid paths between the ports 21A, 21B in the couplings.
[0036] Further embodiments of multiple bore fluid conductors 53, 54, 55 and 56 are shown
in FIGS. 3, 4, 5 and 6. FIG. 3 shows a three bore fluid conductor 53, FIG. 4 shows
a four bore fluid conductor 54, FIG. 5 shows a two bore fluid conductor 55 and FIG.
6 shows a three bore fluid conductor 56. The fluid conductors 53, 54 may be formed
by an extrusion method, and fluid conductors 55, 56 may be formed from a solid bar
with the bores 31A, 31B, 31C being drilled by any suitable means.
[0037] The fluid conductor 55 can be utilized with the coupling 17 of FIG. 2A, with suitable
sidewall openings 35A, 35B being formed therein. The fluid conductors 53, 56 can be
used with the coupling 17 of FIG. 2A if an additional hydraulic connection 21, fluid
passage 25, bore recess 27 and seal 51 are provided in the coupling at suitable locations,
and three suitably located sidewall openings 35 are also provided in the three bore
fluid conductors 53, 56.
[0038] The fluid conductor 54 can be used with the coupling 17 of FIG. 2A if a further two
hydraulic connections 21, fluid passages 25, bore recesses 27 and seals 51 are provided
in the coupling 17 at suitable locations, and four suitably located sidewall openings
35 are also provided in the four bore hydraulic fluid conductor 54.
[0039] FIG. 7 shows an alternative multiple fluid path conductor 59. The fluid conductor
59 includes an inner tubular member 61 and an outer tubular member 63. The tubular
members 61, 63 are coaxial with respect to one another. Between the inner and outer
tubular members 61, 63 is an annulus 65.
[0040] An internal bore 67 of the tubular member 61 provides one fluid path through the
fluid conductor 59, and the annulus 65 provides another fluid path through the fluid
conductor. It will be readily appreciated that a fluid path may still be provided
between the tubular members 61, 63, even if the tubular members are not coaxial. In
use, the fluid conductor 59 is arranged to extend within an aperture formed through
a well bulkhead, with suitable coupling and sealing mechanisms being provided on opposite
sides of the bulkhead.
[0041] A first example of a coupling 69 for use with the fluid conductor 59 is shown in
FIG. 8. The coupling 69 includes a housing 71. The inner member 61 is anchored within
the housing 71 by a pair of suitable anchoring and sealing devices 73. The outer member
63 is also anchored and sealed to the housing 71 by a suitable device 75, such that
the outer member is coaxial with and located around the inner member 61. However,
as mentioned above, it is not necessary for the members 61, 63 to be coaxial.
[0042] The control line 13A is also anchored and sealed to the housing 71 by a device 75.
The control line 13A, the inner member 61 and the housing 71 are configured such that
the control line 13A and the internal bore 67 of the inner member 61 are in fluid
communication. The other control line 13B is also secured and sealed to the housing
71 by a device 75 such that the longitudinal axis of the control line 13B is offset
by an angle of approximately 30 degrees to the longitudinal axis of the coaxial inner
61 and outer 63 members. The control line 13B, housing 71 and annulus 65 are configured
such that the annulus and control line are in fluid communication with one another.
[0043] In use of this embodiment, a pair of couplings 69 are provided for use with each
bulkhead, such as the wellhead 7 or packer 9. One of the couplings 69 is provided
on one side of the bulkhead and another coupling is provided on the other side of
the bulkhead, with the fluid conductor 59 extending through the aperture 15 between
the couplings. Thus, the coupling 69 may be substituted for the coupling 17, and the
fluid conductor 59 may be substituted for the fluid conductor 29, in the method i
depicted in FIG. 1.
[0044] Another alternative embodiment of a coupling 77 for use with the fluid conductor
59 is shown in FIG. 9. The coupling 77 is similar in some respects to the coupling
69. However, a housing 79 of the coupling 77 is configured such that the longitudinal
axis of the control line 13A is perpendicular to the longitudinal axis of the inner
member 61, and the longitudinal axis of the control line 13B is also perpendicular
to the longitudinal axis of the annulus 65. This results in a more vertically compact
coupling 77 when compared to the coupling 69. However, the coupling 69 has an advantage
in that it is more compact in width than the coupling 77.
[0045] The reader will understand that the fluid conductor 59 of FIG. 7 may be combined
with any of the multiple bore fluid conductors 29, 53, 54, 55, 56 of FIGS. 2 to 6
as desired, with appropriate combinations of couplings 17, 69, 77 being utilized.
Furthermore, any number of the fluid conductors 29, 53, 54, 55, 56, 59 may be utilized.
[0046] Of course, a person skilled in the art would, upon a careful consideration of the
above description of representative embodiments of the invention, readily appreciate
that many modifications, additions, substitutions, deletions, and other changes may
be made to the specific embodiments, and such changes are contemplated by the principles
of the present invention. It will be appreciated that the invention described above
can be modified within the scope of the appended claims.
1. A method of providing fluid communication for multiple fluid paths through an aperture
(15) formed through a well bulkhead, the well bulkhead having a central flow passage
formed axially therethrough, and the aperture (15) being positioned in a pressure-bearing
portion of the well bulkhead outside of the central flow passage, the method comprising
the step of:
positioning a fluid conductor (29) at least partially within the aperture (15), the
fluid paths extending within the fluid conductor (29).
2. A method according to Claim 1, further comprising the step of forming the fluid paths
as bores extending at least partially through the fluid conductor (29).
3. A method according to Claim 1, further comprising the step of forming at least one
of the fluid paths as an annular space (65) disposed between multiple tubular members
(61, 63) of the fluid conductor (29).
4. A method according to Claim 1, further comprising the step of providing the fluid
conductor (29) including a first tubular member (61) disposed within a second tubular
member (63), a first one of the fluid paths being formed within the first tubular
member (61), and a second one of the fluid paths being formed between the first and
second tubular members (61, 63).
5. A method according to Claim 1, further comprising the steps of:
interconnecting a first coupling (17A) to the fluid conductor (29); and
connecting a plurality of first fluid lines to the first coupling (17A) on a first
side of the well bulkhead, the first coupling (17A) providing fluid communication
between each of the first fluid lines and a respective one of the fluid paths in the
fluid conductor (29).
6. An apparatus for use in providing multiple fluid paths through a well bulkhead
characterised in that, the apparatus comprises:
a fluid conductor (29) having the fluid paths extending at least partially therein,
the fluid conductor (29) being inserted at least partially within an aperture (15)
formed through a pressure-bearing portion of the well bulkhead outside of a central
flow passage formed axially through the well bulkhead; and
first and second couplings (17A, 17B) interconnected at respective first and second
opposite ends of the fluid conductor (29).
7. An apparatus according to Claim 6, further comprising a first section of fluid lines
connected to the first coupling (17A), such that the first coupling (17A) provides
fluid communication between each of the fluid lines of the first section and a respective
one of the fluid paths.
8. An apparatus according to Claim 7, wherein the first coupling (17A) secures the first
section of fluid lines relative to the fluid conductor (29).
9. An apparatus according to Claim 7, further comprising a second section of fluid lines
connected to the second coupling (17B), such that the second coupling (17B) provides
fluid communication between each of the fluid lines of the second section and a respective
one of the fluid paths.
10. An apparatus according to Claim 9, wherein the fluid conductor (29) and first and
second couplings (17A, 17B) provide fluid communication between each of the fluid
lines of the first section and a respective one of the fluid lines of the second section.
1. Ein Verfahren zur Bereitstellung von Verbindungen für Fluide für mehrere Fluidverläufe
durch einen Durchlass (15), welcher durch ein Bohrlochschott ausgebildet ist, wobei
das Bohrlochschott eine in dessen Achse ausgeformte zentrale Durchflusspassage besitzt
und der Durchlass (15) in einem Drucklagerteilbereich des Bohrlochschotts außerhalb
der zentralen Durchflusspassage angeordnet ist und das Verfahren den Schritt umfasst:
Anordnen eines Fluidleiters (29) zumindest teilweise innerhalb des Durchlasses (15),
wobei die Fluidverläufe sich innerhalb des Fluidleiters (29) erstrecken.
2. Ein Verfahren nach Anspruch 1, weiter umfassend den Schritt des Ausbildens der Fluidverläufe
als Bohrlöcher, welche sich zumindest teilweise durch den Fluidleiter (29) erstrecken.
3. Ein Verfahren nach Anspruch 1, weiter umfassend den Schritt des Ausbildens wenigstens
einer der Fluidverläufe als ringförmigen Raum (65), angeordnet zwischen mehreren Röhrenelementen
(61, 63) des Fluidleiters (29).
4. Ein Verfahren nach Anspruch 1, weiter umfassend den Schritt der Bereitstellung des
Fluidleiters (29), einschließend ein erstes Röhrenelement (61) angeordnet innerhalb
eines zweiten Röhrenelements (63), wobei ein erster der Fluidverläufe innerhalb des
ersten Röhrenelements (61) geformt wird und ein zweiter der Fluidverläufe zwischen
dem ersten und dem zweiten Röhrenelement (61, 63) geformt wird.
5. Ein Verfahren nach Anspruch 1, weiter umfassend die Schritte:
Verbinden einer ersten Kupplung (17A) mit dem Fluidleiter (29); und
Anschließen einer Mehrzahl von ersten Fluidleitungen an die erste Kupplung (17A) auf
einer ersten Seite des Bohrlochschotts, wobei die erste Kupplung (17A) eine Verbindung
für Fluide zwischen jeder der ersten Fluidleitungen und einem entsprechenden Fluidverlauf
in dem Fluidleiter (29) bereitstellt.
6. Eine Vorrichtung zur Nutzung bei einer Bereitstellung von mehreren Fluidverläufen
durch ein Bohrlochschott,
dadurch gekennzeichnet, dass die Vorrichtung umfasst:
Ein Fluidleiter (29), bei dem sich die Fluidverläufe zumindest teilweise innen erstrecken,
der Fluidleiter (29) zumindest teilweise in einem Durchlass (15) eingefügt ist, welche
durch einen Drucklagerteilbereich des Bohrlochschotts außerhalb einer zentralen, axial
durch das Bohrlochschott ausgebildeten Fluidpassage ausgeformt wird; und
ersten und zweite Kupplungen (17A, 17B), welche mit entsprechende, gegenüberliegende
erste und zweite Enden des Fluidleiters (29) verbunden sind.
7. Eine Vorrichtung nach Anspruch 6, weiter umfassend einen ersten Abschnitt von Fluidleitungen,
verbunden mit der ersten Kupplung (17A), so dass die erste Kupplung (17A) eine Verbindung
für Fluide zwischen jeder der Fluidleitungen des ersten Abschnitts und einem entsprechenden
Fluidverlauf bereitstellt.
8. Eine Vorrichtung nach Anspruch 7, worin die erste Kupplung (17A) den ersten Abschnitt
von Fluidleitungen relativ zu dem Fluidleiter (29) fixiert.
9. Eine Vorrichtung nach Anspruch 7, weiter umfassend einen zweiten Abschnitt von Fluidleitungen,
verbunden mit der zweiten Kupplung (17B), so dass die zweite Kupplung (17B) eine Verbindung
für Fluide zwischen jeder der Fluidleitungen des zweiten Abschnitts und einem entsprechenden
Fluidverlauf bereitstellt.
10. Eine Vorrichtung nach Anspruch 9, worin der Fluidleiter (29) und die erste und zweite
Kupplung (17A, 17B) Verbindungen für Fluide zwischen jeder der Fluidleitungen des
ersten Abschnitts und einer entsprechenden Fluidleitung des zweiten Abschnitts bereitstellt.
1. Procédé pour fournir une communication de fluide pour plusieurs passages de fluide
à travers une ouverture (15) formée dans une cloison de puits, la cloison de puits
ayant un passage d'écoulement central formé de manière axiale à travers celle-ci,
et l'ouverture (15) étant positionnée dans une position de support de pression de
la cloison de puits à l'extérieur du passage d'écoulement central, le procédé comprenant
l'étape consistant à :
positionner un conducteur de fluide (29) au moins partiellement dans l'ouverture (15),
les passages de fluide s'étendant dans le conducteur de fluide (29).
2. Procédé selon la revendication 1, comprenant en outre une étape consistant à former
les passages de fluide comme des alésages s'étendant au moins partiellement à travers
le conducteur de fluide (29).
3. Procédé selon la revendication 1, comprenant en outre l'étape consistant à former
au moins l'un des passages de fluide comme un espace annulaire (65) disposé entre
plusieurs éléments tubulaires (61, 63) du conducteur de fluide (29).
4. Procédé selon la revendication 1, comprenant en outre l'étape consistant à prévoir
un conducteur de fluide (29) comprenant un premier élément tubulaire (61) disposé
dans un second élément tubulaire (63), un premier passage des passages de fluide étant
formé dans le premier élément tubulaire (61), et un second passage des passages de
fluide étant formé entre les premier et second éléments tubulaires (61, 63).
5. Procédé selon la revendication 1, comprenant en outre les étapes consistant à :
interconnecter un premier couplage (17A) au conducteur de fluide (29) ; et
raccorder une pluralité de premières conduites de fluide au premier couplage (17A)
sur un premier côté de la cloison de puits, le premier couplage (17A) fournissant
la communication de fluide entre chacune des premières conduites de fluide et un passage
respectif des passages de fluide dans le conducteur de fluide (29).
6. Appareil destiné à être utilisé pour fournir plusieurs passages de fluide à travers
une cloison de puits,
caractérise en ce que l'appareil comprend :
un conducteur de fluide (29) ayant les passages de fluide s'étendant au moins partiellement
à l'intérieur de celui-ci, le conducteur de fluide (29) étant inséré au moins partiellement
dans une ouverture (15) formée à travers une partie de support de pression de la cloison
de puits à l'extérieur d'un passage d'écoulement central formé de manière axiale à
travers la cloison de puits : et
des premier et second couplages (17A, 17B) interconnectés au niveau des première et
seconde extrémités opposées respectives du conducteur de fluide (29).
7. Appareil selon la revendication 6, comprenant en outre une première section des conduites
de fluide raccordée au premier couplage (17A), de sorte que le premier couplage (17A)
fournit la communication de fluide entre chacune des conduites de fluide de la première
section et un passage respectif des passages de fluide.
8. Appareil selon la revendication 7, dans lequel le premier couplage (17A.) fixe la
première section des conduites de fluide par rapport au conducteur de fluide (29).
9. Appareil selon la revendication 7, comprenant en outre une seconde section des conduites
de fluide raccordée au second couplage (17B), de sorte que le second couplage (17B)
fournit la communication de fluide entre chacune des conduites de fluide de la seconde
section et un Passage respectif des passages de fluide.
10. Appareil selon la revendication 9, dans lequel le conducteur de fluide (29) et les
premier et second couplages (17A, 17B) fournissent la communication de fluide entre
chacune des conduites de fluide de la première section et une conduite respective
des conduites de fluide de la seconde section.