WO2009042121A2 - Externally activated seal system for wellhead - Google Patents
Externally activated seal system for wellhead Download PDFInfo
- Publication number
- WO2009042121A2 WO2009042121A2 PCT/US2008/011020 US2008011020W WO2009042121A2 WO 2009042121 A2 WO2009042121 A2 WO 2009042121A2 US 2008011020 W US2008011020 W US 2008011020W WO 2009042121 A2 WO2009042121 A2 WO 2009042121A2
- Authority
- WO
- WIPO (PCT)
- Prior art keywords
- wearbushing
- wellhead
- tubing member
- sealing
- hanger
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Ceased
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Classifications
-
- E—FIXED CONSTRUCTIONS
- E21—EARTH OR ROCK DRILLING; MINING
- E21B—EARTH OR ROCK DRILLING; OBTAINING OIL, GAS, WATER, SOLUBLE OR MELTABLE MATERIALS OR A SLURRY OF MINERALS FROM WELLS
- E21B33/00—Sealing or packing boreholes or wells
- E21B33/02—Surface sealing or packing
- E21B33/03—Well heads; Setting-up thereof
Definitions
- the invention is related to concentric casings and strings in wellheads wherein it is necessary to effect a seal between concentric members of the wellhead and is specifically directed to a seal system wherein the sealing members are activated via an external, non-invasive seal energizing system.
- casing hangers are fixed in position on each casing.
- casing hanger is unsatisfactory, because the hang-off point of one casing on another may require to be adjusted.
- Such drilling wellheads have to accommodate a casing with an undetermined hang-off point, it has been known to use casing slip-type support mechanisms.
- Wellheads are used in oil and gas drilling to suspend casing, seal the annulus between casing strings, and provide an interface with the BOP.
- the design of a wellhead is generally dependant upon the location of the wellhead and the characteristics of the well being drilled or produced.
- One specific type of wellhead is a unitized wellhead for platform or land applications.
- Unitized wellheads are composed of several individual components, including a wellhead housing that is used to support a number of casing hangers and tubing hangers.
- the hangers support the weight of the casing and tubing, and pass loads back to the wellhead housing.
- Annulus seals seal the annular spaces between casing and tubing strings.
- Conventional land or platform wellheads are either slip-type conventional wellheads or through-the-BOP multi-bowl wellheads.
- Slip-type wellheads use casing slips to support casing strings. These slips are friction wedges that "grip" the top of a casing string and use slip teeth to bite into the casing.
- Wellheads of this type require higher-risk operations, as they require lifting the BOP to install casing slips and annulus seals. The seals that are used with slip-type casing hangers must be actively maintained throughout the field life of the well.
- Multi-bowl type wellheads feature reduced-risk operations, as the BOP does not need to be lifted to set casing slips.
- a multi-bowl wellhead uses a fixed landing shoulder in the wellhead housing to support the first casing hanger. All other casing hangers are stacked on top of this initial casing hanger.
- the seals installed on multi-bowl wellheads can be more dependable than those installed in slip-type wellheads, but are still often unreliable, due to eccentricities . in the casing hanger / wellhead alignment and unreliability in the seal setting mechanisms.
- the initial load shoulder must support the weight of all casing strings and any loads due to test pressures, this load shoulder must intrude into the bore of the wellhead quite a bit. This can create an operational restriction that limits operations through this well.
- Various sealing devices are known and employed in such wellheads.
- a wellhead slip and seal assembly includes a slip assembly with slips supported within a slip bowl and a seal assembly positioned above the slip assembly and interconnected thereto for supporting the slip assembly, the seal assembly includes two segments connected to form the seal ring and each of the segments includes arcuate elements embedded in a resilient material which forms an inner seal in an inner groove.
- the segments of the slip bowl include segments interconnected by toe nails and the seal ring includes pin and recess connection for connecting the two segments together. It is also known from European Patent No. 0 251 595 to use an adjustable landing ring on a surface casing hanger to accommodate a space-out requirement when the casing is also landed in a surface wellhead.
- an external clamp for clamping two concentric tubes typically two concentric tubes in an oil or gas well, has two axially movable tapered components which can be pulled over one another in an axial direction to provide a contraction of internal diameter which grips the smaller diameter tube.
- United States Patent No. 6,488,084 shows and describes a casing hanger adapted for landing on a load shoulder in a wellhead to seal and support a string of casing.
- hanger has a lower ring for landing on the load shoulder, the lower ring having an upward facing surface.
- a plurality of circumferentially spaced recesses are in the upward facing surface of the lower ring, each of the recesses having a base.
- a seal is located on the lower ring and has a plurality of holes that register with the recesses in the upward facing surface of the lower ring.
- a slip assembly bowl has a wedging surface that carries a plurality of slip members. The slip members grip the casing and cause the bowl to transmit downward forces from the casing to the seal to axially compress and energize the seal.
- Fasteners extend from the lower ring through apertures provided in the seal into threaded apertures provided in a downward facing surface of the bowl to secure the lower ring to the slip assembly but allow relative axial movement between the bowl and the lower ring.
- a plurality of substantially cylindrical stop members are located in the holes in the seal and in the recesses of the lower ring. The stop members are secured into threaded holes formed in the shoulder ring and
- the subject invention is directed to a method and apparatus for a seal assembly for a unitized wellhead system for land or platform applications utilizing a friction grip technology to create maintainable metal-to-metal seals with finely-controlled contact stresses, lock-down casing and tubing hangers, support test loads to minimize the size of landing shoulders required, and to rotationally lock casing hangers to provide simplified running procedures.
- the subject invention that combines the benefits of a slip-type wellhead and a multi- bowl type wellhead and is able to provide numerous advantages by using radial compression of the wellhead to create seals and support load.
- the invention provides the apparatus and method for accomplishing a circumferential seal between two substantially concentric members by externally activating the seal once the two members are in position.
- a wellhead housing accommodates and supports a concentric tubing hanger.
- the tubing hanger may be supported within the wellhead in any of the conventional ways.
- One suitable method for supporting the tubing hanger in the well is the clamping mechanism shown and described in my previously mentioned U.S. Patents No. 6,092,596 and 6,662,868, incorporated herein, by reference.
- a friction fit is provided between the inner diameter of the wellhead housing and the outer diameter of the tubing hanger.
- a compressor system mounted on the exterior of the wellhead housing is activated, whereby the a cam or ramp surface on the compressor system is moved axially relative to a mated cam surface on outer circumference of the wellhead housing to compress the wellhead housing radially inward for engaging and clamping the tubing hanger along coextensive surfaces.
- the present invention is directed to a sealing mechanism comprising a compression system such as that shown in my aforementioned patents, metal-to-metal sealing members, and where desired, redundant resilient seals.
- the sealing members are integral, machined surface on the outer circumferential wall of the tubing hanger and inner circumferential wall of the wellhead housing..
- the sealing surface extends circumferentially about the walls.
- the sealing surface of the tubing hanger is best designed to clear the inner diameter of the wellhead housing, i.e., there is not any radial interference between the sealing surface of the tubing hanger and the interior wall of the wellhead housing. This preserves the integrity of the seal during assembly.
- the sealing assembly of the subject invention provides for a flexible design that can be used for a variety of specific applications, as will be described herein.
- the simple design promotes dependability and reduces size of the overall architecture of the well.
- the resulting wellhead assembly has near-zero eccentricity between hangers and housing with near-zero torque and minimal axial setting load required to energize metal-to-metal annular seals
- the sealing assembly may include external test capability for metal -to-metal annular seajs.
- the sealing mechanism is activated by external lockdown and sealing activation.
- the rigid lockdown eliminates annular seal fretting, with contact stress evenly distributed around seal perimeter.
- the sealing assembly permits controlled and monitored application of seal loading.
- the annular seals are maintainable throughout field life.
- a minimal number of running tools are required since hangers are locked in place torsionally.
- a high-torque connection e.g., a standard casing coupling on the end of a standard casing string, can be used to run the hangers.
- the primary load shoulder can be smaller than conventional multi-bowl load shoulders, as much of the load is supported through the various friction-grip interfaces. This smaller load shoulder means that the bore through the wellhead is increased, allowing the first casing string run through the wellhead to be larger in size. Alternately, a smaller load shoulder can allow the outer diameter of the wellhead to be decreased while maintaining the diameter of the casing, resulting in a smaller overall size.
- the friction and gripping areas function over a length. Therefore, if the first casing hanger is landed high, subsequent casing/tubing hangers can tolerate this stack-up error by landing and sealing at slightly different places along the functional bore length.
- the tubing hanger can be nested to reduce the work-over stack dimension.
- the friction grip area supports test loads on the tubing hanger permitting the tubing hanger load shoulder to be smaller than it prior art configurations. More space is then available in the tubing hanger to maximize the number of control line penetrations through the tubing hanger.
- the design of the subject inventions minimizes the number of wellhead penetrations.
- blow out preventers Due to minimizing stress and torque, the system is a fatigue resistant design for dynamic applications.
- the flexible design allows incorporation of tensioned casing and tubing hangers.
- the use of hydraulic pistons and lock nuts to activate and lock the . flanges allows for a simplified flange design.
- Fig..1 is a simplified cross-section of a wellhead showing the seal system in detail.
- Fig. 2 is a cross-section of a typical wellhead configuration incorporating the seal system of the subject invention.
- Fig..3 is an enlarged fragmentary view of the seal system of Fig. 1, and corresponds generally to Fig. 1.
- Figs. 4 is a cross-section of a typical wellhead configuration incorporating the seal system of the subject invention with the tubing hanger nested to reduce the work-over stack dimension.
- Fig. 5 is a cross-section of the wellhead of Fig. 4 taken at a 90 degree rotation from that of Fig. 4.
- Fig. 6 is a cross-section of a wellhead with a wearbushing temporarily securing a first casing hanger in the wellhead utilizing an externally activated grip mechanism.
- Fig. 7 is a cross-section of the wellhead of Fig. 6, illustrating a second casing hanger supported at the wellhead by the wearbushing and grip mechanism of the invention.
- Fig. 8 is a cross-section of the wellhead of Fig. 7, wherein a tubing hanger is locked down above the casing hangers.
- FIG. 1 A simplified, diagrammatic view of the seal system to the subject invention is shown in Fig. 1.
- the invention provides the apparatus and method for accomplishing a circumferential seal between two substantially concentric members by externally activating the seal once the two members are in position.
- a wellhead 1 includes having an external sealing apparatus 10 for clamping a tubular casing 4 of a first diameter within a tubular casing (here the wellhead 1) of larger internal diameter.
- the outer tubular member has an inner circumferential wall with a sealing zone 83.
- the inner tubular member is adapted to be positioned substantially concentrically within the outer tubular member having an outer circumferential wall with a sealing zone 28.
- the circumferential compression system 10 is mounted outwardly of the outer tubing member and operable to be activated for compressing the outer tubular member into contact with the inner tubular member for engaging the sealing zones therein and activating a seal between the outer tubular member and the inner tubular member.
- each tubular member may be a metal sealing surface on each of said tubular members for defining a metal-to-metal seal when the compressions system is activated.
- the wellhead sealing system may include one or more resilient seal members 84, 85 in the sealing zone of one of the tubular members and extending outwardly therefrom toward the other tubular member, wherein the resilient seal member is adapted to be compressed between the two tubular members when the compression system is activated.
- the compression system comprises a wedge surface 15 and a flange 14 adapted for engaging the wedge, one of said wedge and flange being each located on one of the outer tubular member and the compression system, whereby the tubular member is compressed radially inwardly upon relative axial movement between the wedge and the flange.
- the preferred method for activating the compression system is a hydraulic ram adapted for causing axial movement between the wedge and the flange.
- the system includes a positive lock 21 for locking the wedge and flange in position once the seal has been engaged.
- the invention is a method for providing an external sealing device for concentric tubular members in a wellhead.
- the method comprises placing sealing zones on the mated surfaces of a plurality of concentric tubular members in radial alignment with one another and compressing the outermost tubular member toward the central axis of the concentric tubular members for engaging the sealing zones with one another.
- the method includes the step of locking the compressed assembly in sealing position.
- a redundant resilient seal is positioned in the sealing zone. When a plurality of axially spaced resilient seals are located in the sealing zone, the gap between the resilient seals may be ported to the exterior of the system.
- a wellhead housing 1 accommodates and supports a concentric tubing hanger 4.
- additional concentric tubular members may also be sealed using the system of the subject invention.
- the tubing hanger may be supported within the wellhead in any of the conventional ways.
- One suitable method for supporting the tubing hanger in the well is the clamping mechanism shown and described in my earlier U.S. Patent No. 6,092,596, incorporated herein by reference. Using the system therein described, a friction fit is provided between the inner circumferential wall 83 of the wellhead housing and the outer circumferential wall 28 of the tubing hanger 4.
- the compressor system 10 mounted on the exterior of the wellhead housing 1 is activated by the threaded driver 20, 21, whereby the compression flange 14 on the compressor system is moved axially relative to the compression wedge 15 on outer circumference of the wellhead housing to compress the wellhead housing radially inward for engaging and clamping the tubing hanger along the coextensive surfaces 28 and 83.
- the compression system may comprise an annular, axially tapering surface, an axially movable sleeve surrounding the outer wall of the wellhead and has a corresponding tapering surface facing the outer wall, and a driver for producing relative axial movement between the tapering surfaces to exert a radial compressive force to the outer wall of the wellhead.
- the means for producing relative axial movement comprises a pressure chamber between the sleeve and the wellhead, and means for pressurising the chamber with hydraulic pressure.
- the means for producing relative axial movement may comprise a flange on the sleeve, a flange on the wellhead, and means for applying a mechanical force between the flanges to move the sleeve axially along the wellhead.
- the present invention is directed to the sealing mechanism comprising the compression system 10, the metal-to-metal sealing member 29, and where desired, redundant resilient seals 84 and 85.
- the sealing member 29 may is an integral, machined surface on the outer wall 28 of the tubing hanger.
- the sealing surface extends circumferentially about the outer wall of the tubing hanger.
- the sealing surface is best designed to clear the inner wall of 83 of the wellhead housing, i.e., there is not any radial interference between the sealing surface of the tubing hanger and the interior wall of the wellhead housing. This preserves the integrity of the seal during assembly.
- the seal is activated by driving the compression flange 14 of the compressor system 10 relative to the compression wedge 15 mounted on the wellhead housing 1, forcing the wellhead housing to compress radially inward about the entire circumference and engage the seal.
- the metal-to-metal seal includes mated and complementary sealing surfaces 29 and 90 on both the exterior wall of the tubing hanger and the interior wall of the wellhead housing.
- Resilient back up seals 84, 85 may also be provided.
- the exterior wall of the tubing hanger includes channels 86, 87, for receiving an the resilient o-ring type resilient seal 84, 85.
- the channels and o-rings could also alternatively be housed in the interior wall of the wellhead housing.
- the resilient seal system is also activated by the compressor system 10. It is also desirable to provide a seal test port 114 in communication with the seal for testing its integrity once activated.
- the seals are released by decompressing the compressor system 10 to withdraw the ramp surface 14 axially downward from the ramp surface 16 via the screw drive system 21.
- the drive means may be any of a number of systems which support the exertion of circumferential pressure on the outer wall of the wellhead. Examples of such systems are shown and described in my U.S. Patent No. 6,662,868 and copending application USSN 10/721,443. All of these are incorporated by reference herein.
- Fig. 2 depicts a simple configuration of a three-string wellhead system utilizing the clamping system of my aforementioned patents and the sealing system of the present invention.
- the main components of this system are a wellhead housing 1, a production casing hanger 2 with annulus seal assembly 3, and a tubing hanger 4.
- the entire assembly is supported on a base plate 5 that sits on the conductor string 6.
- a load shoulder 37 on the support plate supports the wellhead housing.
- the wellhead housing 1 supports the weight of the intermediate casing string 7 in a traditional manner (in this case, via a threaded casing coupling connection in the bottom of the wellhead housing).
- the exterior of the wellhead housing features two sets of annulus access ports 8 and 9, two clamping compression systems 10 and 11, a control-line access port 12, two sets of external seal test ports 113 and 114, and a thread-on flange profile up.
- a thread on flange 35 attaches to this profile to interface with the tree adapter 33.
- the bore of the wellhead housing is featured with a number of sealing profiles and lockdown profiles for the casing hanger, seal assembly, and tubing hanger. These bores may be on a series of steps so that each higher bore is on a slightly larger diameter, therefore protected from operations on the smaller diameter bores.
- an index shoulder 22 for the tubing hanger neck seal and a gasket sealing profile At the top of the wellhead housing bore is an index shoulder 22 for the tubing hanger neck seal and a gasket sealing profile.
- a load shoulder 23 At the bottom of the wellhead housing bore is a load shoulder 23 that is sized to support the casing weight of the production casing string only. Any additional axial load (for instance load from other casing strings or from test pressures) passes through the friction-grip lockdown areas.
- the production casing hanger 2 features a casing thread profile down for support of the production casing string 24 and a casing thread profile up to interface with the casing hanger's casing running string (not shown).
- the exterior of the casing hanger features a load shoulder that is slotted to allow flow-by and cement returns to pass the exterior of the casing hanger as it is being run.
- the external surface of the load shoulder area 25 is a controlled surface featuring a friction profile. When the casing hanger is landed, this friction surface is parallel to a mating surface in the bore of the wellhead housing. External compression of the wellhead housing provided by the lower compression cartridge 11 forces the two surfaces to be perfectly concentric and brings them into contact.
- Friction at this interface provides rotational and axial lock-down support for the casing hanger, as well as additional load support for production casing weight and test loads on the production casing hanger.
- Above the casing hanger load shoulder is a profile for the annulus seal system 3. • ⁇
- the annulus seal 3 fits between the production casing hanger 2 and the inner bore of the wellhead housing 1.
- the seal features two sets of seal profiles 115, 1 16 on both the inner and outer diameters, respectively.
- the outer diameter and inner diameter seal profiles feature two pairs each of metal-to-metal seals as well as resilient seal back-ups 1 18, 119.
- a port 113 between the two sets of seals allows external testing of all seals created by the seal assembly.
- These seal profiles do not have initial radial interference with either the casing hanger or the wellhead housing. Rather, interference (and radial contact pressure) is provided by external compression of the wellhead housing through the use of the lower compression cartridge 11.
- An extended neck 120 on the seal assembly protrudes above the top of the casing hanger. This extended neck features ports 122 to allow communication between the production/tubing annulus and the upper annulus access port 8 in the wellhead housing.
- the top of the seal assembly serves as a landing shoulder 124 for the tubing hanger 4 at load shoulder 26.
- the tubing hanger 4 supports the tubing string 27 with a threaded connection down.
- the thicker main body 125 of the tubing hanger provides a load shoulder 26 that lands on top of the production casing hanger annulus seal assembly on landing shoulder 124. This load shoulder supports full tubing string weight only. Any additional axial loads (for instance, loads due to test pressure) are supported by the friction-grip lockdown area.
- the outer diameter of the thick section 125 of the tubing hanger features a friction-lock profile 28 below a sealing profile 29.
- the friction profile is a machined surface suitable for support of friction loads.
- the . sealing profile consists of a pair of metal-to-metal seal bumps with resilient back-ups, as described with above and shown more clearly in Figs. 1 and 3.
- Both of these profiles are parallel to mating surfaces on the wellhead housing bore, and have no initial interference.
- the upper compression cartridge 10 When the upper compression cartridge 10 is activated, that section of the wellhead housing is compressed inwards to contact the tubing hanger. Contact pressure along this interface forces the pieces to be concentric, provides axial and rotational lockdown of the tubing hanger, and activates the metal-to-metal seals with resilient back-ups.
- the friction interface supports any test pressure loads on the tubing hanger.
- Hydraulic control lines 30 pass through the tubing hanger body in a conventional manner.
- the tubing hanger features an extended neck 126 upwards. This neck features a tubing connection box up to interface with the tubing running string (not shown). Below this threaded box is a seal profile to accept the tubing hanger neck seal..
- the tubing hanger neck seal 31 sits on a support ring 32 that is carried on the tubing hanger neck and indexes on a load shoulder in the wellhead housing bore.
- the seal sits on the upper face of this support ring, and features metal-to-metal seal profiles on both the straight inner diameter and the tapered outer diameter.
- a port 127 between these seal profiles allows external testing of all seals created by the tubing hanger neck seal via an external test port 36 in the Christmas tree adapter 33.
- This seal is activated as the Christmas tree adapter 33 is drawn by studs and nuts 34 down onto the wellhead housing. Movement over the tapered external surface of the tubing hanger neck seal compresses the seal inwards and creates high radial contact pressures on both the seal inner diameter and the seal outer diameter.
- Fig. 3 is an enlarged a detail of the system shown in Fig. 2, generally in the area of the upper compressor system 10.
- Fig. 3 is generally of the same cross-section of Fig. 1, but with all of the detail of the wellhead housing of Fig. 2.
- Each POS-GRIP compression system is composed of a compression flange 14 and a compression wedge 15.
- the compression flanges are rings with tapered inner surfaces that mate with the tapered outer surfaces of the compression wedges. Axial movement of the compression flanges over the compression wedges compresses the compression wedges inwards, in turn compressing a portion of the wellhead housing 1 inwards (within the wellhead housing's elastic range).
- the compression systems may be configured with a split spacer ring 16 between the compression wedge and the wellhead housing, as shown in the top compression system 10 of Fig. 2.
- the split spacer rings have minimal hoop stiffness, and simply pass the radial contact loads from the compression wedge into the wellhead housing.
- the compression flanges have handling profiles 17 on the flange outer diameters. These handling profiles interface with a release tool (not shown) that can be used to push the flanges apart, releasing the compression.
- the compression flanges also have activation and locking profiles 18 cut into the wide end of the flanges. These profiles accept a set of small hydraulic pistons (not shown) during activation. These hydraulic pistons react against the thick section of the wellhead housing in the region of the upper annulus access port 8, see Fig. 2. When pressure is applied to a set of hydraulic pistons, the associated compression flange is pushed away from the thick section of the wellhead housing into the "activated" position. Once the compression flange has been moved into its activated position, mechanical lock nuts 19 replace the hydraulic pistons in the locking profiles, and are used to lock the flange in the activated position.
- the lock nuts consist of a male thread member 20 and a female thread member 21.
- the male thread member has a threaded length and a flat face at one end to sit on the wellhead housing.
- the female thread member has threads to mate with the male thread member and a flat face to react on the compression flange. Rotation of the female thread member on the male thread member allows the lock nut to adjust in length, to fill whatever gap is developed between the wellhead housing and the compression flanges during activation of the compression system. Once the lock nut has been adjusted to the necessary length, it effectively locks the compression flange in its current position, so that the hydraulic pistons may be removed.
- Figs. 4 and 5 depict two separate sections of a more involved configuration of a four- string wellhead.
- the main components of this system are a wellhead housing 38, a push- through wearbushing 39, an intermediate casing hanger 40 with annulus seal assembly 41.
- the annulus seal assembly is of the same configuration as that shown in Fig. 2 and is activated in a similar manner by the lower compression system .11.
- the assembly shown in Figs. 4 and 5 uses an alternate means of wellhead support.
- the entire assembly is supported on a friction support mechanism 45 that connects the bottom of the wellhead housing to the top of a large-diameter casing string 46.
- the friction support mechanism consists of a gripping sub 47, a compression sub 49, and a set of studs and nuts 50.
- This gripping system comprising gripping sub 47, compression sub 49 and the driver 50, operates in accordance with the gripping system shown and described in my aforementioned patents.
- the gripping sub is connected to the inner diameter of the wellhead housing 38 via a threaded profile at 130 with a metal-to-metal seal.
- the lower portion 131 of the gripping sub consists of a friction and sealing profile on the inner diameter and a tapered surface on the outer diameter.
- the friction profile diameter fits as a socket around the casing string 46.
- the tapered diameter mates with a tapered surface on the compression sub 49.
- the gripping sub is compressed inwards. This closes the gap between the gripping sub and the outer diameter of the casing, and creates a high radial contact pressure between the two pieces.
- This high radial contact pressure provides a metal-to-metal seal between the gripping sub and the casing. Friction at this interface locks the pieces together axially and rotationally.
- a set of studs and nuts 50 connect the compression sub 49 to the wellhead housing 38. It is movement of the nuts along the studs that causes the compression sub to move upwards along the tapered compression sub / gripping sub interface.
- the wellhead housing 38 is largely the same as that shown in Fig. 2.
- the wellhead housing in Figs. 4 and 5 features a third annulus access port 52 (Fig. 4) to allow access to the additional annulus created in the four-string configuration.
- This annulus access port is located at 90 degrees from the production casing/intermediate casing annulus access port 51
- Both ports may be located at the same height as shown in these drawings.
- This wellhead housing also demonstrates a different means of providing a reaction point for the hydraulic activation pistons and mechanical lock nuts. Instead of having a very thick section integral to the wellhead housing (as was shown in Fig. 2), this wellhead housing features a series of split flange sections 54 that fit in a dovetail groove 55 in a slightly thicker portion 136 of the wellhead housing. These flanges may then be bolted into place. At locations where annulus access port passes through the wellhead housing, a flat is machined to allow an annulus access valve to be bolted in place.
- This system is used with a push-through wearbushing.
- This wearbushing protects the wellhead bore when drilling for the intermediate casing string.
- the wearbushing 39 is simply a thin sleeve with a thick top section. The bottom of the thin sleeve passes through the wellhead housing minimum inner diameter. A set of resilient seals 57 at the top of the wearbushing 39 prevents fluids from entering the protected area.
- the wearbushing may be supported in one of two ways. First, a pin through one of the annulus access ports can latch into a profile on the outer diameter of the wearbushing. This pin can then be removed when the wearbushing is ready to be moved out of the way. Alternately, the thick upper portion of the wearbushing may be gripped by the compression system 11. This system is released when the wearbushing is ready to be moved out of the way.
- the thicker portion at the top of the wearbushing serves as a load shoulder 138 for the intermediate casing hanger.
- the wearbushing is released when the intermediate casing hanger is run.
- the load shoulder 140 on the intermediate casing hanger lands on the top of the mating load shoulder on the wearbushing and pushes the wearbushing downwards until the thick portion of the wearbushing is sandwiched between the lower load shoulder 142 on the wellhead housing and the load shoulder 140 on the intermediate casing hanger.
- These shoulder thicknesses are all sized to support full intermediate casing weight only. Any additional load on the intermediate casing hanger (due to loads from additional casing strings and seal test loads) is supported by the friction interface which is activated by the compression system 11.
- the intermediate casing hanger 150 and intermediate casing hanger seal assembly 41 are largely identical to the production casing hanger 2 and production casing hanger annulus seal assembly 3 as discussed in Fig. 2.
- the intermediate casing hanger features a profile 58 on the inner diameter to land the production casing hanger 42. As a hanger does not land, on top of the annulus seal as one did in the configuration of Fig.2, the annulus seal is shorter, and does not have the requirement of ports for annulus access.
- the production casing hanger 42 features a casing thread profile down for support of the production casing string 59.
- a casing coupling box 152 to interface with the seal and support sub 43 and an external running thread profile to interface with the casing hanger's running tool (not shown).
- the exterior of the production casing hanger features slots to allow flow-by and cement returns to pass as the hanger is being run.
- a split-ring landing mechanism 60 (Fig. 5). This outwardly biased split ring is held inwards by the casing hanger running tool while the hanger is being run.
- This threaded and sealing connection is made up to the mating box 152 in the top of the production casing hanger 150.
- a running profile 61 On the inner diameter above this coupling is a running profile 61 to mate with a running tool (not shown). Above this running profile, ports 62 (Fig. 4) pass from the seal and support sub inner diameter to the outer diameter to allow communication between the production casing/tubing annulus and the annulus access port 156.
- these ports pass between a pair of metal-to-metal seals at seal assembly 160.
- the outer diameter of the seal and support sub features four sets of metal-to-metal seals 162 with resilient backup 63.
- the annulus access ports pass between the middle set of seals.
- the set of seals on either side of the annulus access port straddle external test ports in the wellhead housing wall, enabling testing of all sets of seals.
- a friction profile 64 consisting of a machined surface suitable for support of friction loads.
- Both of these profiles are parallel to mating surfaces on the wellhead housing bore, and have no initial interference.
- the upper compression cartridge 165 When the upper compression cartridge 165 is activated, that section of the wellhead housing is compressed inwards to contact the seal and support sub. Contact pressure along this interface forces the pieces to be concentric, provides axial and rotational lockdown of the seal and support sub, and activates the metal-to-metal seals with resilient back-ups.
- the friction interface supports any test pressure loads on the seal and support sub and any weight from the tubing hanger.
- the inner diameter of the support sub is a bowl that serves as a landing shoulder 170 for the tubing hanger 65. Above this landing shoulder is a bore with both a friction grip profile 66 and a sealing profile 67 for the tubing hanger.
- the tubing hanger 65 is very similar to the tubing hanger 4 shown in Fig. 2.
- the tubing hanger 65 has a reduced outer diameter, allowing it to be run through a smaller blow out preventer (BOP) .
- BOP blow out preventer
- This smaller tubing hanger is landed, locked down, and sealed inside the seal and support sub rather than inside the wellhead housing bore.
- a port 68 in the tubing hanger passes from the top face to intersect a test port that passes between the two sets of seals on the tubing.hanger outer diameter.
- To activate the seals and friction grip inside the seal and support sub requires a two- stage operation of the upper compression system 165.
- the first stage of activation compresses the wellhead housing inwards to grip, support, and seal the seal and support sub.
- the compression system is activated further. This additional activation compresses through the seal and support sub, compressing the inner diameter of the seal and support sub inwards to grip the tubing hanger. This second-stage compression provides the force necessary to activate the metal-to-metal seals and the friction- grip support.
- the tubing hanger neck seal is identical to that shown Fig 2.
- One aspect of the invention is the utilization of a compression arrangement as described herein in conjunction with the above-mentioned wearbushings.
- casing hangers are run together with a wearbushing through the wellhead.
- the wearbushings are disposed to be gripped by a grip mechanism of the invention to lock down the casing hanger during- the various wellbore drilling related activities, such as pressure testing, the next drilling phase, etc. Once the activity is complete, the grip mechanism is then released in order to remove the wearbushing before the next casing hanger is installed.
- the systems illustrated use a grip mechanism (such as upper compression system 165 of Fig. 4) to hold and lock each casing hanger, through a wearbushing on which it is run. The wearbushing stays in place until the next casing hole is drilled. BOP tests can be performed without having to pull the wearbushing and with drill pipe in the hole.
- a grip mechanism such as upper compression system 165 of Fig. 4 to hold and lock each casing hanger, through a wearbushing on which it is run. The wearbushing stays in place until the next casing hole is drilled. BOP tests can be performed without having to pull the wearbushing and with drill pipe in the hole.
- Such a system eliminates many installation steps. in prior art systems, rendering the system of the invention not only cost effective to manufacture and implement, b ⁇ t which reduces installation time, improves safety, and provides a much better tubing hanger seal design for maintenance free operation of the well, throughout field life.
- the intermediate casing hanger wearbushing is pulled, after which the production hanger is landed. Unlike the intermediate hanger, . for which the cementing procedure circulates through the outlets, the production casing hanger can be lifted to provide flow by the hanger and wearbushing seals.
- tubing hanger can be landed on top of the stacked hangers, and locked and sealed with the metal-to-metal grip mechanism sealing system, which has been qualified to Appendix F standard for 15k psi service and which has been tested to 25k psi.
- the invention uses wearbushings 210 to temporarily lock down casing hangers 212 during the drilling of a well, and then to permanently lock down the casing hanger to the tubing hanger 214 for production of the well.
- wearbushings are run into a wellhead with the sole function of protecting the wellhead bore during drilling. They are not used to lock down casing hangers as described herein. Casing hangers must be "locked down” so that they remain in place if any annular pressure under the hanger is experienced.
- tubing hanger location 224 which reduces cost and complexity of casing hangers, saves time and increases reliability of installation.
- prior art arrangements for locking down casing hangers are much more complicated and difficult to implement, such as tie-down bolts which penetrate through the wellhead.
- the mechanism 218 shown is the most beneficial as it also offers additional advantages previously disclosed above.
- Figs. 6-8 represent stages of the sequence which are an important aspect of the invention:
- Fig. 6 shows casing hanger 212 and casing 213 attached to a wearbushing 210 which is run into wellhead 220 by wearbushing running joint 221.
- the wearbushing 210 is designed to interface at 222 at, an engagement zone or "sealing zone" with the upper end 224 of the wellhead 220 where the tubing hanger 214 (see Fig. 8) will eventually sit, and is locked into place with grip mechanism 218 by making up the sealing and lockdown arrangement as is later used for the tubing hanger 214 of Fig. 8.
- Fig. 7 shows the next casing hanger 212a installed with a similar wearbushing 210a which is also engaged by grip mechanism 218 in the lockdown arrangement at the tubing hanger location.
- FIG. 8 illustrates the removal of wearbushing 210 when tubing hanger 214 is ready to be installed. With wearbushing 210 removed, tubing hanger 214 lands at 230 on top of the stacked casing hanger's 212, 212a and locks them in place.
- the platform wellhead design of the subject invention has numerous enhancements and features providing substantial advantages over the wellhead designs of the prior art.
- the wellhead as described herein achieves these advantages by moving load support and seal energization functions to the exterior to the wellhead housing. This results in maximization of useable bore space and excellent control of annular seal loading.
- a high-torque connection in this case a standard casing coupling on the end of a standard casing string
- the primary load shoulder can be quite a bit smaller than conventional multi-bowl load shoulders, as much of the load is supported through the various friction-grip interfaces. This smaller load shoulder means that the bore through the wellhead is increased, allowing the first casing string run through the wellhead to be larger in size. Alternately, a smaller load shoulder can allow the outer diameter of the wellhead to be decreased, resulting in a smaller overall size.
- the friction and gripping areas function over a length. Therefore, if the first casing hanger is landed high, subsequent casing hangers / tubing hangers can tolerate this stack-up error by landing and sealing at slightly different places along the bore length.
- the tubing hanger can be nested to reduce the work-over stack dimension.
- the tubing hanger load shoulder can be smaller than it would normally be. This means that more space is available in the tubing hanger to maximize the number of control line penetrations through the tubing hanger. • Minimum number of wellhead penetrations.
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- Life Sciences & Earth Sciences (AREA)
- Engineering & Computer Science (AREA)
- Geology (AREA)
- Mining & Mineral Resources (AREA)
- Physics & Mathematics (AREA)
- Environmental & Geological Engineering (AREA)
- Fluid Mechanics (AREA)
- General Life Sciences & Earth Sciences (AREA)
- Geochemistry & Mineralogy (AREA)
- Earth Drilling (AREA)
- Excavating Of Shafts Or Tunnels (AREA)
Abstract
Description
Claims
Priority Applications (6)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| ES08834237.3T ES2664240T3 (en) | 2007-09-24 | 2008-09-23 | Externally activated sealing system for wellhead |
| DK08834237.3T DK2195508T3 (en) | 2007-09-24 | 2008-09-23 | EXTERNAL ACTIVATED FIRE HEAD SEALING SYSTEM |
| CA2700574A CA2700574C (en) | 2007-09-24 | 2008-09-23 | Externally activated seal system for wellhead |
| BRPI0817945-0A BRPI0817945B1 (en) | 2007-09-24 | 2008-09-23 | EXTERNALLY ACTIVATED WELL HEAD SEALING SYSTEM |
| MX2010003199A MX2010003199A (en) | 2007-09-24 | 2008-09-23 | Externally activated seal system for wellhead. |
| EP08834237.3A EP2195508B1 (en) | 2007-09-24 | 2008-09-23 | Externally activated seal system for wellhead |
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US11/903,715 US7740061B2 (en) | 2003-12-31 | 2007-09-24 | Externally activated seal system for wellhead |
| US11/903,715 | 2007-09-24 |
Publications (2)
| Publication Number | Publication Date |
|---|---|
| WO2009042121A2 true WO2009042121A2 (en) | 2009-04-02 |
| WO2009042121A3 WO2009042121A3 (en) | 2009-06-18 |
Family
ID=38970352
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| PCT/US2008/011020 Ceased WO2009042121A2 (en) | 2007-09-24 | 2008-09-23 | Externally activated seal system for wellhead |
Country Status (8)
| Country | Link |
|---|---|
| US (1) | US7740061B2 (en) |
| EP (1) | EP2195508B1 (en) |
| BR (1) | BRPI0817945B1 (en) |
| CA (1) | CA2700574C (en) |
| DK (1) | DK2195508T3 (en) |
| ES (1) | ES2664240T3 (en) |
| MX (1) | MX2010003199A (en) |
| WO (1) | WO2009042121A2 (en) |
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| US9382774B2 (en) | 2009-04-08 | 2016-07-05 | Cameron International Corporation | Compact surface wellhead system and method |
| US8668020B2 (en) * | 2010-11-19 | 2014-03-11 | Weatherford/Lamb, Inc. | Emergency bowl for deploying control line from casing head |
| NO334106B1 (en) * | 2011-01-11 | 2013-12-09 | Aker Subsea As | Drill protector for a pipe hanger and its use |
| US8708038B2 (en) | 2011-06-30 | 2014-04-29 | Donnie C. Tucker | Pipe grapple |
| US8870186B2 (en) | 2012-08-28 | 2014-10-28 | Vetco Gray Inc. | Seal assembly for a casing hanger |
| RU2507367C1 (en) * | 2012-12-19 | 2014-02-20 | Открытое акционерное общество "Татнефть" имени В.Д. Шашина | Device for fixing of pipe string with downhole motor |
| RU2531667C1 (en) * | 2013-06-24 | 2014-10-27 | Общество с ограниченной ответственностью "Газпром ПХГ" | Wellhead split sealer |
| GB2517784A (en) | 2013-09-02 | 2015-03-04 | Plexus Holdings Plc | Running tool |
| US9856711B2 (en) * | 2014-09-02 | 2018-01-02 | Cameron International Corporation | Control line connection technique |
| US9976928B2 (en) * | 2015-11-24 | 2018-05-22 | Climax Portable Machine Tools, Inc. | Test flange assemblies and related methods |
| US9644443B1 (en) | 2015-12-07 | 2017-05-09 | Fhe Usa Llc | Remotely-operated wellhead pressure control apparatus |
| US10858901B1 (en) | 2018-02-20 | 2020-12-08 | Shazam Rahim | Remotely operated connecting assembly and method |
| US12252949B2 (en) | 2018-03-28 | 2025-03-18 | Fhe Usa Llc | Fluid connection assembly with adapter release |
| US20190301260A1 (en) | 2018-03-28 | 2019-10-03 | Fhe Usa Llc | Remotely operated fluid connection |
| CN109441390B (en) * | 2018-09-30 | 2024-05-07 | 昆山艾蓓蓓阀门有限公司 | 36 Inch single-cylinder double-wellhead oil extraction device |
| US12071829B2 (en) * | 2019-04-04 | 2024-08-27 | Ducon—Becker Service Technology, Llc | Wellhead adaptor for dual concentric tubing for well operations |
| US11598418B2 (en) * | 2020-04-14 | 2023-03-07 | Patriot Research Center, LLC | Metal to metal vee seal |
| GB2594252B (en) * | 2020-04-20 | 2022-04-27 | Aquaterra Energy Ltd | An improved connector for a subsea drilling riser |
| US11396785B2 (en) * | 2020-05-11 | 2022-07-26 | Saudi Arabian Oil Company | Low pressure starter wellhead system for oil and gas applications with potential thermal growth |
| CA3126576A1 (en) | 2020-07-31 | 2022-01-31 | Schlumberger Canada Limited | Double grip retention for wellbore installations |
| US11719073B2 (en) * | 2020-07-31 | 2023-08-08 | Cameron International Corporation | Snub friendly wellhead hanger |
| US11953117B2 (en) | 2021-01-20 | 2024-04-09 | Saudi Arabian Oil Company | Gate valve indicator devices for oil and gas applications |
| WO2024137391A1 (en) * | 2022-12-20 | 2024-06-27 | Cameron International Corporation | Wellhead sealing systems and methods |
| CN121111168B (en) * | 2025-11-17 | 2026-01-23 | 胜利方兰德石油装备股份有限公司 | Integral double-pipe wellhead and christmas tree device |
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| US2097615A (en) * | 1935-08-07 | 1937-11-02 | Burns Erwin | Casing head |
| GB1366651A (en) * | 1971-03-05 | 1974-09-11 | Lucas Industries Ltd | Apparatus for use in the manufacture of electric storage batteries |
| US4559809A (en) * | 1984-07-18 | 1985-12-24 | Mayo John H | Process of testing blow-out preventer without pulling the wear bushing |
| GB8615200D0 (en) | 1986-06-21 | 1986-07-23 | Plexus Ocean Syst Ltd | Tie-back hanger |
| US4913469A (en) * | 1988-08-08 | 1990-04-03 | Cameron Iron Works Usa, Inc. | Wellhead slip and seal assembly |
| US5031695A (en) * | 1990-03-30 | 1991-07-16 | Fmc Corporation | Well casing hanger with wide temperature range seal |
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| GB9722383D0 (en) * | 1997-10-24 | 1997-12-24 | Plexus Ocean Syst Ltd | Clamping well casings |
| EP1076757B1 (en) * | 1998-05-08 | 2003-01-15 | FMC Technologies, Inc. | Method and apparatus for sealing between casing and wellhead connector structure |
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| EP1519002A1 (en) * | 2003-09-24 | 2005-03-30 | Cooper Cameron Corporation | BOP and separator combination |
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-
2007
- 2007-09-24 US US11/903,715 patent/US7740061B2/en not_active Expired - Lifetime
-
2008
- 2008-09-23 DK DK08834237.3T patent/DK2195508T3/en active
- 2008-09-23 CA CA2700574A patent/CA2700574C/en active Active
- 2008-09-23 MX MX2010003199A patent/MX2010003199A/en active IP Right Grant
- 2008-09-23 WO PCT/US2008/011020 patent/WO2009042121A2/en not_active Ceased
- 2008-09-23 EP EP08834237.3A patent/EP2195508B1/en active Active
- 2008-09-23 ES ES08834237.3T patent/ES2664240T3/en active Active
- 2008-09-23 BR BRPI0817945-0A patent/BRPI0817945B1/en active IP Right Grant
Non-Patent Citations (2)
| Title |
|---|
| None |
| See also references of EP2195508A4 |
Also Published As
| Publication number | Publication date |
|---|---|
| MX2010003199A (en) | 2010-04-21 |
| US20080017386A1 (en) | 2008-01-24 |
| WO2009042121A3 (en) | 2009-06-18 |
| EP2195508B1 (en) | 2018-02-28 |
| CA2700574A1 (en) | 2009-04-02 |
| CA2700574C (en) | 2014-08-12 |
| BRPI0817945B1 (en) | 2019-03-19 |
| EP2195508A4 (en) | 2015-08-19 |
| EP2195508A2 (en) | 2010-06-16 |
| ES2664240T3 (en) | 2018-04-18 |
| BRPI0817945A2 (en) | 2015-05-05 |
| DK2195508T3 (en) | 2018-04-16 |
| US7740061B2 (en) | 2010-06-22 |
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