The present invention relates to a downhole sealing assembly for providing a seal in a borehole between a first face and a second face of a completion component having an axial extension along the borehole. The invention also relates to a downhole sealing unit comprising a first downhole sealing assembly and a second downhole sealing assembly. Moreover, the invention relates to a completion component comprising a first component part having a first face and a second component part having a second face. Finally, the invention also relates to a downhole system comprising the completion component mounted as part of a well tubular metal structure and an annular barrier.
Completion devices in an oil or gas well often need sealing means in order to control the flow of fluids in the well. One completion device is a sliding sleeve that can be operated to provide a flow path between the production conduit and the annulus. Sliding sleeves incorporate a system of ports that can be opened or closed by a sliding component that is generally controlled and operated by an intervention tool string. Known conventional sealing means are rated to a certain pressure difference and a certain temperature. However, some wells experience larger differential pressure and higher temperatures for the known sealing means to function in these wells.
It is an object of the present invention to wholly or partly overcome the above disadvantages and drawbacks of the prior art. More specifically, it is an object to provide an improved sealing assembly being able to seal between two faces downhole also at temperatures above 220° C. and to withstand a pressure difference above 1400 PSI.
The above objects, together with numerous other objects, advantages and features, which will become evident from the below description, are accomplished by a solution in accordance with the present invention by a downhole sealing assembly for providing a seal in a borehole between a first face and a second face of a completion component having an axial extension along the borehole, comprising:
wherein the downhole sealing assembly further comprises a first spring element arranged in the cavity between the first annular flange and the metal ring-shaped element in order to press the first annular flange to abut against the second face.
Also, the first indentation may be a curvature from the first ring end to the second ring end so that the first ring face is concave, forming the curvature.
Moreover, the first spring element may be plate- and tubular-shaped.
In addition, the cavity may have an extension extending from the base part to an end of the first annular flange, the spring element having the same extension as the cavity.
Moreover, the first indentation may have a first indentation length along the axial extension.
Further, the projection of the first annular flange may have a first projection length which is shorter than the first indentation length.
Also, the first spring element may have a first element length along the axial extension.
Furthermore, the metal ring-shaped element may have a second length along the axial extension, and the first element length may be substantially the same length as the second length.
In addition, the first spring element may be ring-shaped.
Moreover, the first spring element may have a slit.
Further, the metal ring-shaped element may have a slit so that the metal ring-shaped element can be slightly expanded when the metal ring-shaped element is mounted.
Also, the second annular flange may comprise a projection projecting away from the first annular flange.
Furthermore, the first annular flange in cross-section may have a U-shape forming a lip flange for abutting the second face.
In addition, the projection of the first annular flange may be part of the lip flange.
Moreover, the metal ring-shaped element may be formed of two abutting ring-shaped elements being a first metal ring-shaped element and a second metal ring-shaped element.
Further, the first ring face forming a first indentation may be formed partly of the first metal ring-shaped element and partly of the second metal ring-shaped element for forming the cavity.
Also, the lip flange may have a tip facing towards the base part.
Moreover, the downhole sealing assembly may further comprise a second spring element arranged between the lip flange and the first annular flange.
Further, the second spring element may overlap the base part.
Also, the second spring element may be ring-shaped.
Furthermore, the second spring element may have a slit.
In addition, the metal ring-shaped element may have a second ring face forming a second indentation for receiving the second annular flange.
Moreover, the second ring face may be concave towards the second annular flange for receiving the second annular flange so that the second ring face forms the second indentation, in the form of a curvature, from the first ring end to the second ring end.
Further, the second indentation may have a second indentation length along the axial extension.
Also, the projection of the second annular flange may have a second projection length which is shorter than the second indentation length.
Furthermore, the downhole sealing assembly may also comprise a third spring element between the second ring face and the second annular flange.
In addition, the second annular flange may be shorter than the first annular flange along the axial extension.
Moreover, the second ring face may face the second annular flange.
Further, the second ring face may be straight.
Also, the first ring face may face the first annular flange.
Furthermore, one of the first ring face and the second ring face may be substantially straight, and the other of the first ring face and the second ring face may have an indentation such as a curvature.
In addition, the downhole sealing assembly may further comprise a fourth spring element abutting the second spring element so as to strengthen the second spring element.
Moreover, the downhole sealing assembly may further comprise a metal ring having a flange overlapping the base part of the downhole sealing assembly and a body part abutting the base part, forming a back-up to the annular sealing element.
Further, the flange may have a flange length along the axial extension being the same or longer than the first thickness of the base part.
Also, the annular sealing element may be made of Polytetrafluoroethylene (PTFE).
Furthermore, the spring elements may be made of spring metal or spring steel.
In addition, the metal ring-shaped element may be made of metal proven for use in an oil or gas well.
The invention moreover relates to a downhole sealing unit comprising a first downhole sealing assembly and a second downhole sealing assembly, wherein the base part of the first downhole sealing assembly is arranged closer to the base part of the second downhole sealing assembly than the first annular flanges are to each other so that the first annular flange of the first downhole sealing assembly extends from the base part of the first downhole sealing assembly away from the first annular flange of the second downhole sealing assembly.
Further, the first downhole sealing assembly and the second downhole sealing assembly may be arranged back-to-back in that the base parts are closer to each other than the first annular flanges are to each other.
Also, the downhole sealing unit may further comprise a metal ring having a T-shape in cross-section, the metal ring being arranged between the first downhole sealing assembly and the second downhole sealing assembly, abutting the base parts of the first and second downhole sealing assemblies.
Furthermore, the metal ring may comprise two flanges, each flange overlapping the base part of the first downhole sealing assembly and the second downhole sealing assembly, respectively, and a body part being arranged between the first downhole sealing assembly and the second downhole sealing assembly.
In addition, the metal ring having a T-shape in cross-section may be formed of a stem part and projecting flanges.
Moreover, the downhole sealing unit may further comprise a first element having a first inclined face abutting a second inclined face of the metal ring.
Further, the downhole sealing unit may further comprise a first element having a first inclined face abutting a second inclined face on a first side of the metal ring and a second element having a first inclined face abutting a second inclined face on a second side of the metal ring.
Also, the metal ring may be formed of two abutting rings being a first metal ring and a second metal ring.
Furthermore, each abutting ring may have an L-shaped cross-section.
Further, the downhole sealing unit may further comprise a first element having a first inclined face abutting a second inclined face on the first metal ring and a second element having a first inclined face abutting a second inclined face on the second metal ring.
In another embodiment, the downhole sealing unit may comprise a first downhole sealing assembly and a second downhole sealing assembly, wherein the first downhole sealing assembly abuts the second downhole sealing assembly so that the first annular flange of the first downhole sealing assembly extends towards and faces the first annular flange of the second downhole sealing assembly.
In addition, the downhole sealing unit may comprise a first metal ring and a second metal ring.
Moreover, the first metal ring may be arranged to abut the base part of the first downhole sealing assembly, and the second metal ring may be arranged to abut the base part of the second downhole sealing assembly.
Further, the first metal ring having an L-shaped cross-section may be formed of a stem part and one projecting flange.
Also, the second metal ring having an L-shaped cross-section may be formed of a stem part and one projecting flange.
Furthermore, the metal ring-shaped element of the first downhole sealing assembly may abut the metal ring-shaped element of the first downhole sealing assembly.
In addition, the at least one through-bore may intersect both metal ring-shaped elements, so that part of the through-bore forms a groove in one of the metal ring-shaped elements, and the other part of the through-bore forms a groove in the other of the metal ring-shaped elements, which grooves together form the through-bore.
Moreover, the downhole sealing unit may further comprise a first element having a first inclined face abutting a second inclined face of the first metal ring and a second element having a first inclined face abutting a second inclined face of the second metal ring.
In addition, the metal ring may have at least one through-bore extending radially in a direction perpendicular to the axial extension for providing fluid communication.
Also, the at least one through-bore may intersect both of the two abutting rings, so that part of the through-bore forms a groove in one of the two abutting rings, and the other part of the through-bore forms a groove in the other of the two abutting rings, which grooves together form the through-bore.
Moreover, the metal ring may have a first projecting flange overlapping the base part of the first downhole sealing assembly along the axial extension and a second projecting flange overlapping the base part of the second downhole sealing assembly along the axial extension.
Further, the base part may have a first thickness along the axial extension, the first annular flange having a second thickness, and the second annular flange having a third thickness perpendicular to the axial extension, the first thickness being greater than the second thickness and/or the third thickness.
Also, the base part may have a first height, and the annular sealing element may have a first length along the axial extension which is longer than the first height.
Furthermore, the metal ring-shaped element may have a second length along the axial extension being shorter than the first length.
The invention also relates to a completion component comprising a first component part having a first face and a second component part having a second face facing the first face, the first component part and the second component part being slidable in relation to each other, and the completion component further comprising a downhole sealing assembly for arrangement between the first face and the second face.
Moreover, the completion component may be a sliding sleeve or a telescopic joint.
Further, the sliding sleeve may have a sliding sleeve part being the second component part, and the sliding sleeve part may be slidable in relation to an opening in a tubular section being the first component part and mountable as part of a well tubular metal structure.
Also, the tubular section may comprise a groove in which the slidable sleeve is slidably arranged.
Furthermore, the telescopic joint may be mountable as part of a well tubular metal structure, and the first component part may comprise a first part overlapping a second part of the second component part.
In addition, the telescopic joint may comprise a plurality of downhole sealing assemblies arranged in between the first component part and the second component part for sealing against the first face and the second face.
Moreover, the second component part may comprise an outer projection projecting radially outwards from the second face, the outer projection having an outer diameter larger than an inner diameter of the first component part so as to hinder the first component part from sliding past the outer projection.
Further, the first component part may comprise an inner projection projecting radially inwards from the first face so as to hinder the second component part from sliding past the inner projection.
The invention further relates to a downhole system comprising the completion component mounted as part of a well tubular metal structure and an annular barrier.
Finally, the annular barrier may comprise a tubular metal part having an aperture and an expandable metal sleeve surrounding the tubular metal part, each end of the expandable metal sleeve being connected with the tubular metal part, forming an expandable space when fluid enters the aperture for expanding the expandable metal sleeve until the expandable metal sleeve abuts a wall of the borehole.
The invention and its many advantages will be described in more detail below with reference to the accompanying schematic drawings, which for the purpose of illustration show some non-limiting embodiments and in which:
All the figures are highly schematic and not necessarily to scale, and they show only those parts which are necessary in order to elucidate the invention, other parts being omitted or merely suggested.
As shown in
In
In
The second indentation 22 in
In
As shown in
By having such design of the downhole sealing assembly 1 as shown in
The downhole sealing unit 30 further comprises the metal ring 24 having a T-shape in cross-section and being arranged between the first downhole sealing assembly 1, 1a and the second downhole sealing assembly 1, 1b, abutting the base parts 6 of the first and second downhole sealing assemblies 1, 1a, 1b. The metal ring 24 comprises two flanges 33, 33A, 33B, each flange overlapping the base part 6 of the first downhole sealing assembly 1, 1a and the second downhole sealing assembly 1, 1b, respectively, and the body part 34 being arranged between the first downhole sealing assembly 1, 1a and the second downhole sealing assembly 1, lb. The metal ring 24 has the two flanges, i.e. a first projecting flange 33A overlapping the base part 6 of the first downhole sealing assembly 1, 1a along the axial extension L and a second projecting flange 33B overlapping the base part 6 of the second downhole sealing assembly 1, 1b along the axial extension L. The metal ring 24 thus forms a back-up to both the first downhole sealing assembly 1, 1a and the second downhole sealing assembly 1, lb. The flanges 33, 33A, 33B have a thickness that is substantially thicker than the lip flange 19. The metal ring 24 has at least one through-bore 25 extending radially in a direction perpendicular to the axial extension L for providing fluid communication. The through-bore 25 serves the purpose of equalising the pressure across the seal when one downhole sealing assembly 1, 1a, 1b is sliding past an opening in the second face 4 of the completion component 50; the pressure is quickly equalised through the through-bore 25 for optimising the sealing ability of the other downhole sealing assembly 1, 1a, 1b. This is due to the fact that when the first downhole sealing assembly 1, 1a is passing the opening and thus not sealing optimally, then the second downhole sealing assembly 1, 1b is able to provide sufficient sealing as the pressure is equalised to also affect the second annular flange 8 of the second downhole sealing assembly 1, lb. The metal ring 24 may have several through-bores 25 as shown in
The completion component 50 is shown in
The telescopic joint 50B of
As shown in
Furthermore, the metal ring 24 is formed of two abutting rings 24a, 24b being a first metal ring 24a and a second metal ring 24b, so that the abutting first metal ring 24a and second metal ring 24b have a T-shaped cross-section which is formed of a stem part 53 and projecting flanges 33, 54a, 54b, where each of the projecting flanges 33, 54a, 54b overlaps the first downhole sealing assembly 1, 1a and the second downhole sealing assembly 1, 1b, respectively. Thus, each abutting ring 24a, 24b has an L-shaped cross-section which, when the ring is abutting, forms a T-shaped cross-section. The downhole sealing unit 30 further comprises at least one through-bore 25 which intersects both of the two abutting rings 24a, 24b, so that part of the through-bore 25 forms a groove 25a in one of the two abutting rings, and the other part of the through-bore 25 forms a groove 25b in the other of the two abutting rings, which grooves together form the through-bore.
The downhole sealing unit 30 further comprises a first element 41 having a first inclined face 42 abutting a second inclined face 43 of the metal ring 24. By having a first element 41 with the inclined face 42 configured to slide in relation to the second inclined face 43, the first element 41 can slide and move towards the second face 4 when the pressure acts on the downhole sealing assembly 1, squeezing the downhole sealing assembly 1 so that the base part 6 presses onto the first element 41. By being able to move towards the second face 4, the first element 41 keeps forming a sufficient back-up to the downhole sealing assembly 1 and provides a pre-tensioning force on the downhole sealing assembly 1 so that when the pressure releases, the first element 41 is able to press the downhole sealing assembly 1 to return to its less pressurised condition. The first element 41 having the first inclined face 42 abuts the second inclined face 43 on a first side 44 of the metal ring 24, and the downhole sealing unit 30 further comprises a second element 45 having a first inclined face 46 abutting a second inclined face 47 on a second side 48 of the metal ring 24. The first element 41 and the second element 45 may be of PEEK (Polyether ether ketone) or PAEK (Polyaryletherketone) or similar material, or metal.
The downhole sealing unit 30 further comprises at least one through-bore 25 intersecting both metal ring-shaped elements 11, so that part of the through-bore 25 forms a groove 25a in one of the metal ring-shaped elements 11, and the other part of the through-bore 25 forms a groove 25b in the other of the metal ring-shaped elements 11, which grooves together form the through-bore.
The downhole sealing unit 30 further comprises a first metal ring 24a and a second metal ring 24b. The first metal ring 24a is arranged to abut the base part 6 of the first downhole sealing assembly 1a, and the second metal ring 24b is arranged to abut the base part 6 of the second downhole sealing assembly 1b. The first metal ring 24a has an L-shape in cross-section and is formed of a stem part 53 and one projecting flange 54a, where the one projecting flange 54a overlaps the base part 6 of the first downhole sealing assembly 1a. The second metal ring 24b has an L-shaped cross-section which is formed of a stem part 53 and one projecting flange 54b, where the one projecting flange 54b overlaps the base part 6 of the second downhole sealing assembly 1b.
The downhole sealing unit 30 of
By “fluid” or “well fluid” is meant any kind of fluid that may be present in oil or gas wells downhole, such as natural gas, oil, oil mud, crude oil, water, etc. By “gas” is meant any kind of gas composition present in a well, completion or open hole, and by “oil” is meant any kind of oil composition, such as crude oil, an oil-containing fluid, etc. Gas, oil and water fluids may thus all comprise other elements or substances than gas, oil and/or water, respectively.
By “annular barrier” is meant an annular barrier comprising a tubular metal part mounted as part of the well tubular metal structure and an expandable metal sleeve surrounding and connected to the tubular metal part defining an annular barrier space.
By “casing” or “well tubular metal structure” is meant any kind of pipe, tubing, tubular, liner, string, etc., used downhole in relation to oil or natural gas production.
Although the invention has been described above in connection with preferred embodiments of the invention, it will be evident to a person skilled in the art that several modifications are conceivable without departing from the invention as defined by the following claims.
Number | Date | Country | Kind |
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22173008.8 | May 2022 | EP | regional |