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Patent Searching and Data


Title:
VALVE STEM SEAL ARRANGEMENT
Document Type and Number:
WIPO Patent Application WO/2012/154056
Kind Code:
A1
Abstract:
The invention provides a valve useful as a production valve in or connected to a production tree subsea, and other similar uses subsea or topside, the valve comprises a valve element, a valve element pressure housing, an actuator, a stem and a bonnet, the actuator is via the stem operatively arranged to close or open a fluid passageway through the valve element, the bonnet enclose the stem and is connected to the valve element pressure housing and seals are arranged between the stem and the bonnet for sealing against the pressure of the valve element pressure housing. The valve is distinctive in that the valve comprises at least one seal for sealing between stem and bonnet, the seal having identical inner sealing diameter against the stem and outer sealing against a single body or element of the bonnet.

Inventors:
NEWLANDS NICK (NO)
SAEFVENBERG OLLE (SE)
DAHLBORG BENGT (SE)
MOEGEDAL OEYSTEIN (NO)
Application Number:
PCT/NO2012/050082
Publication Date:
November 15, 2012
Filing Date:
May 08, 2012
Export Citation:
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Assignee:
AKER SUBSEA AS (NO)
NEWLANDS NICK (NO)
SAEFVENBERG OLLE (SE)
DAHLBORG BENGT (SE)
MOEGEDAL OEYSTEIN (NO)
International Classes:
F16K41/04; E21B34/02; F16K41/02
Foreign References:
EP0485743A11992-05-20
EP0525261A11993-02-03
US5221063A1993-06-22
US4576385A1986-03-18
Attorney, Agent or Firm:
PROTECTOR IP CONSULTANTS AS (Oslo, NO)
Download PDF:
Claims:
CLAIMS

1.

Valve useful as a production valve in or connected to a production tree subsea, and other similar uses subsea or topside, the valve comprises a valve element, a va!ve element pressure housing, an actuator, a stem and a bonnet, the actuator is via the stem operatively arranged to dose or open a fluid

passageway through the vaive element, the bonnet enclose the stem and is connected to the valve element pressure housing and seals are arranged between the stem and the bonnet for sealing against the pressure of the valve element pressure housing, c h a r a c t e r i s e d i n that the valve comprises at least one seal for sealing between stem and bonnet, the seal having identical inner sealing diameter against the stem and outer sealing against a single body or element of the bonnet. 2.

Valve according to claim 1 , wherein the sealing elements for sealing the stem to the bonnet are of the same inner and outer seal diameter, such as a single seal and an environmental seal arranged between the valve stem and the single body or single element of the bonnet; or primary seals, secondary seals and environmental seals arranged between the valve stem and the single body or single element of the bonnet.

3.

Valve according to claim 1 or 2, wherein each of the single seal or primary and secondary seals, on the side away from the pressure housing and in direction away from the pressure housing, are supported by a support mechanism consisting of a support ring followed by a segmented load ring followed by a retainer ring. 4.

Valve according to claim 3, wherein the support ring on the axial surface away from the pressure housing is inclined outward, the facing axial surface of the segmented load ring is correspondingly inclined inward, the segmented load ring on the axial face away from the pressure housing comprises an axial surface that is inclined inward and the facing axial surface of the retainer ring comprises an axial surface that correspondingly is inclined outward.

5.

Valve according to one of claims 3 and 4S wherein the segmented load ring comprises a protrusion around the radial outer surface, the protrusion fits into an adapted groove around the inne surface of the bonnet or bonnet element, the groove is deeper than the height of the protrusion.

8.

Valve according to one of claims 3 - 5, wherein the segmented load ring in cross section has a wedge-like shape, the widest part of the wedge is at the upper radial outer surface, so that axial forces acting on the segmented load ring will provide a force component pressing the segmented load ring toward the bonnet or bonnet element and the protrusion of the segmented load ring will be pressed into the groove of the bonnet or bonnet element.

7.

Valve according to one of claims 5 and 6, wherein the groove has axial side surfaces and the protrusion has axial side surfaces, the axial side surfaces providing axial support.

8.

Valve according to one of claims 3 - 6, wherein the retaine ring in cross section has an L~shape, the bottom part of the L lay toward the stem and partly under the segmented load ring, the part of the L under the segmented load ring fits into an adapted step-out or cut-out of the segmented load ring.

9,

Valve according to one of claims 3 - 7, wherein the segmented load ring comprises three segments.

Description:
VALVE STE M SEAL ARRANGEMENT

Field of the invention

The present invention relates to valves useful for closing off or opening up for fluid at high pressure, such as a production valve for connection to or integration with a subsea XT (Christmas tree) for production of oil and gas. More specifically, the invention relates to the seals of subsea valves for control of production of oil and gas as well as the seals of other similar valves.

Background of h

Production of oil, condensate and gas from reservoirs located subsea, more and more often is from wellheads located on the seabed. A subsea XT

(Christmas tree) is located on such wellheads, providing valves for control between the wellhead and the choke valve. The XT valves are typically either open or closed for production flow. The valves are usually gate valves controlled via a reciprocating function of an actuator. The actuator can be designed as a spring loaded piston where the piston rod is extended to open the valve when hydraulic pressure or electric power is applied to the actuator.

The piston rod is typically coaxiai to the valve stem, and said elements operate as one element and they can be one single element or be divided into sections. The valve stem connects the actuator to a valve element, often termed a gate, in a pressure housing containing the va!ve element. At least a part of the valve stem is exposed to the pressure of the pressure housing of the valve as it may be extended into said pressure housing. The valve stem can be a single or several coaxial lengths.

Sealing against the pressure of the valve housing takes place between the valve stem and a bonnet surrounding the valve stem . In a typical sealing arrangement the seals comprise primary and secondary dynamic seals, and also further seals. Currently the secondary seal is held in a carrier. This results in the need for a static sea! on the outer diameter surface of the carrier, toward the bonnet. Such prior design has evolved under considerations with respect to assembly, maintenance and replacement. However, the prior design results in severai seals of different design, geometry and pressure integrity, resulting in a voluminous and compiex seal arrangement providing severai paths for leakage and making testing and qualification of each seai very difficult. Therefore, a demand exists for a new valve stem seal arrangement providing improvements with respect to number and length of leakage paths, number of different designs and geometries, providing simplified seal arrangement, prolonged service life, allowing smaller dimensions and simplifications with respect to testing, qualification and maintenance. The objective of the present invention is to meet the demand.

Summary of the invention

The demand is met with the valve according to the invention. More specifically, the invention provides a valve useful as a production va!ve in or connected to a production tree subsea, and other similar uses subsea or topside, the vaive comprises a va!ve element, a valve element pressure housing, an actuator, a stem and a bonnet, the actuator is via the stem operativeiy arranged to close or open a fluid passageway through the valve element, the bonnet enclose the stem and is connected to the vaive element pressure housing and seals are arranged between the stem and the bonnet for sealing against the pressure of the vaive element pressure housing. The valve is distinctive in thai the valve comprises at least one seai for sealing between stem and bonnet, the seal having identical inner sealing diameter against the stem and outer sealing against a single body or element of the bonnet.

Preferably, the sealing elements for sealing the stem to the bonnet are of the same inner and outer seal diameter, such as a single seal and an

environmental seal arranged between the valve stem and the single body or single element of the bonnet; or primary seals, secondary seals and

environmental seals arranged between the valve stem and the single body or single element of the bonnet. Preferably all seals are identical. This will reduce the number of seai geometries and simplify testing and maintenance.

Alternatively, different seal geometries can be used. Preferably, each of the single seal or primary and secondary seals, on the side away from the pressure housing and in direction away from the pressure housing, are supported by a support mechanism consisting of a support ring followed by a segmented load ring followed by a retainer ring. The support ring, load ring and retainer ring in combination are termed primary and secondary support mechanisms, respectively, for valve embodiments with primary and secondary seals. Preferably the support ring on the axial surface away from the pressure housing is inclined outward, the facing axial surface of the segmented load ring is correspondingly inclined inward, the segmented load ring on the axial face away from the pressure housing comprises a axial surface that is inclined inward and the facing axial surface of the retainer ring comprises an axial surface that correspondingly is inclined outward. Inclined outward means thai a normal vector directed out from the surface of the relevant element points outward from the valve stem axis, which is divergent and away from the valve stem axis. Inclined inward means that a normal vector directed out from the surface of the relevant element points inward to the valve stem axis, which is convergent to the valve stem axis so that such inward normal vectors will meet at the stem axis. Such normal vectors can be said to lie in a cone plane, whereby inclined inward vectors point at the cone apex whilst inclined outward vectors point away from the cone apex. Due to said inclinations, axial forces on the seals and support mechanisms provide a force component pressing the segmented load ring toward the bonnet or bonnet element and a protrusion around the segmented load ring outer surface will be pressed into an adapted groove around the inner surface of the bonnet or bonnet element. This arrangement ensures that very high forces, corresponding to many hundreds of bar, can be handled by the valve stem seal arrangement without extrusion of material, unwanted displacements or rotations of elements or leakages of fluid. Preferably, the segmented load ring comprises a protrusion around the radial outer surface, the protrusion fits into an adapted groove around the inner surface of the bonnet or bonnet element, the groove is deeper than the height of the protrusion. The groove preferably has axial side surfaces and the protrusion has axial side surfaces, the axial side surfaces providing axial support. The segmented load ring in cross section preferably has a wedge-like shape, the widest part of the wedge is at the upper radial outer surface, so that axial forces acting on the segmented load ring wit! provide a force component pressing the segmented load ring toward the bonnet or bonnet element and the protrusion of the segmented load ring will be pressed into the groove of the bonnet or bonnet element.

Preferably the retainer ring in cross section has an L-shape, the bottom part of the L iay toward the stem and partly under the segmented load ring, the part of the L under the segmented load ring fits into an adapted step-out or cut-out of the segmented load ring, and preferably said step-out or cut-out is wider than the part of the L inside it. This he!ps to retain the segmented load ring in position, be it in operation or during installation. The segmented load ring preferably comprises three segments, as this is a good compromise between sufficient segments to allow instaliation and keeping the number of parts down.

The reduced number of seals, reduced dimensions of seals and types of seals, and no seat carriers, are crucial for providing improvements with respect to the number and iength of leakage paths, number of different designs and

geometries, and simplifications with respect to testing, qualification and maintenance, and prolonged service life.

Figures

The invention is illustrated with four figures, of which:

Figure 1 illustrates, with the bonnet and valve pressure housing cut away, an embodiment of a valve according to the invention,

Figure 2 illustrates in further detail the stem seals and support of Fig. 1 , and Figure 3 illustrates in larger detail the stem seals and support of Fig. 2.

Detailed description

Reference is made to Fig. 1 illustrating an embodiment of a valve 1 according to the invention, more specifically a subsea XT production valve. The valve comprises a valve element 2, a valve element housing 3, an actuator 4, a stem 5 and a bonnet 8. The actuator 4 is via the stem 5 operativety arranged to close or open a fluid passageway 7 through the valve element 2, the bonnet enciose the stem 5 and is connected to the vaive element housing, and seals 8,9,10,1 1 are arranged between the stem and the bonnet for sealing against the pressure of the valve element pressure housing. ASi seais 8,9,10,11 for sealing between stem and bonnet have identical inner sealing diameter against the stem 5 and outer sealing against a single body or element of the bonnet 6.The valve is, as obvious for the person skilled in the art, a gate valve with non-restricted or fui! through bore or passageway when open for flow , as illustrated. Reciprocating action 12 of the stern opens or closes the passageway 7 for flow. The valve comprises a relief vaive 13, such as a check valve, arranged in a bore 14 between two environmental seals 10,11 for relief of production flow in the extremely unlikely situation that production flow leaks past the primary and secondary seals. Such relief prevents fluid from entering the control system, thereby ensuring that the valve can be operated even in a leakage situation. The environmental seals are arranged to sea! against fluid ingress from the bore 14 but allow leakage toward said bore. The vaive stem sea! arrangement is held in place on the stem by a stem seal retainer 15. The valve stem seal arrangement is illustrated in further detail in Figure 2, to which reference is made. In direction away from the valve element and valve housing that may contain high pressure fluid, the vaive stem sea! arrangement comprises a primary seal 8, a support ring 16, a segmented load ring 17, a retainer ring 18, a secondary stem seal 9, a support ring 16, a segmented load ring 1 , a retainer ring 18, a first environmental seai 10 oppositely oriented, a relief bore14, a second environmental seai 1 1 and the stem seal retainer 15. The combinations of support ring, segmented load ring, in the illustrated embodiment in three parts, and retainer ring, constitutes a primary 19 and secondary 20 support mechanism, respectively.

Further reference is made to Figure 3, illustrating in further detail the primary seal 8 and primary support mechanism 19 of Figure 2. More specifically, the mechanism and ioad path is illustrated in addition to the primary seal 8 and primary support elements support ring 16, segmented load ring 17 and retainer ring 18. A valve bore pressure, as illustrated by arrow 21 , which can be higher than 150 bar. such, as 690 bar. acts on the pressure side of the primary seal 8, which results in an axial force, a pressure end load 22, from the side of the primar sea! toward the support ring. The facing surface of the support ring is axial, but the surface of the support ring away from the pressure 21 is inclined outward. The segmented load ring comprises a surface inclined inward on the pressure side and also a surface inclined inward on the side away from the pressure. The retainer ring 18 comprises a surface inclined outward facing the oppositely inclined surface of the segmented load ring. Axia! forces, that are forces parallel with the valve stem axis, will be decomposed to have a radial component in addition to the axial component when the force is acting over facing inclined surfaces. Axial forces acting on the segmented load ring will have a radial outward component pushing the segmented load ring outward, against the bonnet or bonnet element, against which the segmented load ring has radial support 23 and axial support 24. In other words this mea s that the segmented load ring, in cross section, is shaped like a wedge that is wider further out from the stem axis, so that axiai pressure on the segmented load ring will provide an outward radial pressure component balanced by radial support pressure on the non-protrusson outer radial surfaces of the segmented load ring. The protruston is not as high as the groove is deep, which is assumed to be beneficial for withstanding the highest pressures without leakage. The axial side surfaces of the protrusion and groove provides axiai support and acts to maintain the primary seal in position. The figures reveal several design details specific for the illustrated embodiment and typical for a valve according to the invention for the intended purpose. But said details, as well as the preferable features of the invention, may vary within wide limits, provided the obligatory features of the independent claim are maintained. The valve of the invention may tnclude the features as described or illustrated in any operative combination, which combinations are part of the invention.