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Title:
SEALING DEVICE FOR WELL COMPONENTS
Document Type and Number:
WIPO Patent Application WO/2013/028079
Kind Code:
A1
Abstract:
A sealing device (10) for sealing openings (2) in well components (1 ), the seal (10) including an elastic element (18) which is arranged between two flanges (16), the elastic element (18), before being placed in the opening (2), having a larger external dimension than the opening (2) to be sealed; and a gap (28) arranged between at least one of the flanges (16) and the elastic element (18), allowing liquid to enter between the flange (16) and the elastic element (18), whereby a hydraulic axial force is imparted to the elastic element (18), contributing to increasing the surface pressure from the elastic element (18) against the sealing surface (4) of the opening (2).

Inventors:
IDLAND SVEIN ARNE (NO)
Application Number:
PCT/NO2012/050151
Publication Date:
February 28, 2013
Filing Date:
August 22, 2012
Export Citation:
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Assignee:
INTERNAT RES INST OF STAVANGER AS (NO)
IDLAND SVEIN ARNE (NO)
International Classes:
E21B33/128; E21B33/12
Domestic Patent References:
WO1993005267A21993-03-18
Foreign References:
US20020121743A12002-09-05
US20050161232A12005-07-28
US20090242215A12009-10-01
Other References:
See also references of EP 2748414A4
Attorney, Agent or Firm:
HÅMSØ PATENTBYRÅ ANS (Sandnes, NO)
Download PDF:
Claims:
C l a i m s

1. A sealing device (10) for sealing openings (2) in well components (1), the seal (10) including an elastic element (18) which is arranged between two flanges (16), and the elastic element (18), before being placed in the opening (2), having a larger external diameter (D) than the internal diameter (d) of the opening (2) to be sealed, c h a r a c t e r i z e d i n that between at least one of the flanges (16) and the elastic element (18), a gap (28) is formed by a ridge (26) which abuts against said flange (16) and which allows liquid to enter between the flange (16) and the elastic element (18).

2. The device in accordance with claim 1, c h a r a c t e r i z e d i n that the ridge (26) is arranged on an intermediate piece (22) which is located between the flange (16) and the elastic element (18).

3. The device in accordance with claim 2, c h a r a c t e r i z e d i n that the intermediate piece (22) is constituted by a ring in which the ridge (26) is surrounding and divided, and projects from an end surface opposite an abutment surface (24) facing the elastic element (18).

4. The device in accordance with claim 3, c h a r a c t e r i z e d i n that the abutment surface (24) of the intermediate piece (22) towards the elastic element (18) is conical.

5. The device in accordance with claim 1, c h a r a c t e r i z e d i n that between the intermediate piece (22) and the flange (16), there is a distance (30) prior to activation.

Description:
SEALING DEVICE FOR WELL COMPONENTS

This invention relates to a seal for well components. More particularly, it relates to a seal for sealing openings in well components, the seal including an elastic element which is arranged between two flanges, and the elastic element, before being placed in the opening, having a larger external dimension than the opening to be sealed.

When sealing openings in a well, such as in a petroleum well, it is usual to move a seal having an elastic element of a larger external diameter than the diameter of the opening to be sealed, into the opening. By the elastic element being arranged between two flanges, the volume that the elastic element may occupy is restricted, whereby a greater surface pressure is achieved between the elastic element and the inner jacket of the opening, as compared to if the elastic element could lengthen freely.

During operation, damage may occur in the sealing surface of well components. For example, during wireline operations in the well, it is not unusual for one or more axial grooves to be worn into the sealing surface of a downhole safety valve. Other causes may cause other types of damage in the sealing surfaces.

Known seals often cannot be brought to seal damaged openings. The reason is that the damage is not filled by the elastic element and thereby sufficient sealing of the damage for a differential pressure to be established across the elastic element is not achieved.

As known seals notoriously provide an unreliable seal, it is usual to place a seal outside the damaged sealing surface. Seals of this kind may be functionally unreliable, which has turned out to possibly result in operational interruptions and need for repairs.

The invention has for its object to remedy or reduce at least one of the drawbacks of the prior art. The object is achieved according to the invention through the features which are specified in the description below and in the claims that follow.

A seal is provided for sealing openings in well components, the seal including an elastic element which is arranged between two flanges, and the elastic element, before being placed in the opening, having a larger external dimension than the opening to be sealed, and the seal being characterized by a gap being formed between at least one of the flanges and the elastic element, allowing liquid to enter between the flange and the elastic element.

By liquid being able to enter the gap, a hydraulic axial force is imparted to the elastic element, contributing to further increasing the surface pressure from the elastic element against the sealing surface of the opening. The elastic material thereby penetrates deeper into a groove in the sealing surface, for example. Thereby the leakage through the groove is reduced, whereby the differential pressure across the elastic element increases further and the elastic element fills the groove and enables the establishment of full differential pressure across the seal.

The gap may be arranged in an intermediate piece located between the flange and the elastic element, wherein the intermediate piece may be constituted by a ring, in which a surrounding divided ridge is arranged to rest against the flange.

The ridge prevents the ring from closing a gap between the ring and the flange, while, at the same time, liquid may penetrate past the ridge to the part of the gap that is located behind the ridge.

The abutment surface of the ring towards the elastic element may be conical. A conical shape has proved appropriate in order to achieve a good seal.

It may be advantageous for there to be an adapted clearance between the ring and the flange before activation, to facilitate the insertion of the seal.

The device according to the invention solves a long-felt problem in a mechanically simple way, and the seal may be set and activated without complicated procedures having to be followed.

In what follows, an example of a preferred embodiment is described, which is visualized in the accompanying drawings, in which :

Figure 1 shows an end view of a damaged well component, a groove having been worn into the sealing surface of the well component; Figure la shows a section, on a larger scale, of the damage as shown in figure 1;

Figure 2 shows a section I-I of figure 1;

Figure 3 shows a side view, partially in section, of a seal according to the

invention;

Figure 4 shows the seal as shown in figure 3 after it has been placed in the well component;

Figure 5 shows a section, on a larger scale, of the seal prior to activation;

Figure 6 shows the same as figure 5, but after the seal has been placed in the well component; and

Figure 7 shows an end view of a ring with a divided surrounding ridge.

In the drawings, the reference numeral 1 indicates a well component which is formed with a through opening 2 with a sealing surface 4, damage in the form of a groove 6 having been inflicted on the sealing surface 4. The groove 6 is shown in figure 2 as well. The opening 2 has an internal diameter d.

A seal 10 includes a cylindrical seal mount 12 which is formed with a turned-down portion 14, in which flanges 16 are formed. The seal mount 12 is movable into the opening 2 of the well component 1.

An elastic element 18 is placed in and tightly surrounds the portion 14. Externally, the elastic element 18 has been given a convex surface 20 which is arranged to seal against the sealing surface 4. The convex surface 20 has a largest diameter D which is larger than the interna! diameter d of the opening 2.

At either end portion of the elastic element 18, an intermediate piece 22 in the form of a ring is arranged, which is formed with a conical surface 24 towards the elastic element 18. On the opposite side, the ring 22 is provided with a surrounding, divided ridge 26, see figures 5-7. The ridge 26 provides for there always to be a gap 28 between a substantial portion of the ring 22 and the corresponding flange 16.

The total length of the elastic element 18 and the rings 22 is normally equal to or smaller than the length of the portion 14 when the seal 10 is in the non-activated state. Thus, there may be a distance 30 between at least one of the rings 22 and the corresponding flange 16, see figure 5. The purpose of this distance 30, when present, is to facilitate the insertion of the seal 10 in the opening 2.

As the seal 10 is moved into the opening 2, the elastic element 18 is resting against the sealing surface 4. Since the sealing surface 4 has a smaller diameter d than the free external diameter D of the elastic element, the external diameter of the elastic element is reduced, which has the effect of the length of the elastic element 18 being increased until both rings 22 abut against their respective flanges 16, see figure 6. In a manner known per se, a larger surface pressure is thereby built up between the elastic element 18 and the sealing surface 4.

However, this surface pressure is not sufficient to force the material of the elastic element 18 to the bottom in the groove 6. Because of the relatively modest cross section of the groove 6, a minor differential pressure is still built up across the elastic element 18. The pressure from the surroundings enters the gaps 28, working there as a hydraulic force against the rings 22 which are thereby moved in the direction of the elastic element 18. The elastic element 18 is compressed further, and the groove 6 is sealed by the elastic element 18 so that full differential pressure may be built up across the seal 10. Practical tests show that if the distance 30 is too large, the elastic element 18 will not be forced to the bottom inside the groove 6.