This application is claims priority to EP Patent Application No. 20204922.7 filed 30 Oct. 2020, the entire contents of which is hereby incorporated by reference.
The present invention relates to a downhole packer assembly for expansion of a metal sleeve, such as a metal patch, in a well downhole in a well tubular metal structure. The invention also relates to a downhole system comprising the downhole packer assembly and a positive displacement pump for expanding the expandable tubular element.
When expanding a metal patch within a well tubular metal structure which has no leaks or perforations, the liquid between the radially expanding patch and the inner face of the well tubular metal structure may be trapped since the liquid cannot escape through any openings, such as leaks or perforations. Such entrapped liquid in a pocket between the metal patch and the well tubular metal structure hinders full expansion of the patch and thus prevents that the patch can seal properly against the inner face of the well tubular metal structure.
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 downhole packer assembly for expanding a metal patch within a well tubular metal structure without entrapping liquid in a pocket between the metal patch and the well tubular metal structure, hindering full expansion of the metal patch.
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 packer assembly for expansion of a metal sleeve, such as a metal patch, in a well downhole in a well tubular metal structure, comprising:
wherein the expandable tubular element comprises a friction-enhancing material providing a higher friction coefficient of the outer face than the friction coefficient of the elastomeric or rubber material.
Moreover, the expandable tubular element may be made of elastomer or rubber and is an expandable elastomeric or rubber tubular element.
Further, the friction-enhancing material may be grains, such as individual grains.
Furthermore, the grains may form an outermost part or layer of the expandable tubular element, the outermost part or layer facing away from the body part.
Additionally, the expandable tubular element may have a first thickness, the outermost part or layer having a second thickness of 5-25% of the first thickness, preferably 5-20%, 5-25% of the first thickness, more preferably 10-20% of the first thickness, and even more preferably 10-15% of the first thickness.
Further, the downhole packer assembly may be coverless, i.e. the downhole packer assembly having a cover which is to be removed before use.
In addition, the friction-enhancing material may not be a mechanical reinforcement of the expandable tubular element itself.
In addition, the grains may be embedded in an outer material face of the elastomeric or rubber material of the expandable tubular element, the outer material face forming the outer face of the expandable tubular element.
By having grains embedded in an outermost part of the expandable tubular element, a simple friction enhancement is provided which is ready to use without a protective cover or other means nor that any actions prior to running the downhole packer assembly into hole.
Thus, the embedded grains do not easily fall off and does not need extra protection while still being able to provide the increased friction to the rubber or elastomeric material.
Furthermore, some of the grains may provide a projection radially outwards away from the body.
Additionally, each of some of the grains may provide a local projection radially outwards away from the body.
Also, the grains may be adhered to the outer face of the expandable tubular element.
Furthermore, the friction-enhancing material may be a friction-enhancing layer.
Moreover, the friction-enhancing layer may be an adhesive or paint.
Further, the friction-enhancing layer may comprise a mixture of grains and an adhesive or a paint.
In addition, the friction-enhancing layer may be applied on the outer face of the expandable tubular element.
Also, the body part may have an opening for providing fluid communication to the expandable space in order to expand the expandable tubular element.
Furthermore, the grains may be made of silicon dioxide (SiO2), zirconium silicate (ZrSiO4), aluminium oxide (Al2O3), cubic boron nitride (cBN) or metal alloy.
Moreover, the grains may comprise ceramics.
Also, the expandable tubular element may comprise metal enhancement, such as metal strips, metal lamellas or slats, a weave or mesh structure, or a metal grid.
Further, the expandable tubular element may comprise metal enhancement, such as strips, slats, lamellas, a weave or mesh structure, or a grid, where the strips, slats, lamellas, a weave or mesh structure, or a grid are made of metal, a composite, fibre material, etc.
In addition, the metal strips, metal lamellas or metal slats may extend axially along the body part or circumferentially around the body part.
Also, the expandable tubular element may comprise a packer-reinforcement layer having at least one fibre layer, a wire, a cable, a nanofibre, a nanotube and/or a nanoparticle-modified elastomer.
Furthermore, the metal strips, metal lamellas or slats, a weave or mesh structure, or a metal grid may be embedded in the elastomeric or rubber material.
Moreover, the packer may comprise metal coil springs arranged in grooves of the outer face.
Further, the downhole packer assembly may be an inflatable packer being constructed with a packer-reinforcement layer having at least one fibre layer. The fibre layers may provide both mechanical and anti-extrusion properties in a relatively simple and small package.
In addition, the invention relates to a downhole system comprising the above downhole packer assembly and a positive displacement pump for expanding the expandable tubular element.
Also, the downhole system may comprise at least one metal sleeve arranged around the expandable tubular element.
Furthermore, the downhole system may comprise a driving unit, such as an electric motor, for driving the pump.
Finally, the downhole system may comprise a downhole tractor for propelling the downhole system forward in the well.
By “grain” is meant any physical particle or small entity. By “grains” is thus meant granules or individual particles.
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.
The downhole packer assembly 1 is arranged inside the metal patch/sleeve 10 to be expanded so that the metal patch 10 surrounds the expandable tubular element 3 and so that the metal patch 10 expands as the expandable tubular element 3 expands. The metal patch 10 is shown in a cross-sectional view in both
By increasing the friction on the outer face of the expandable tubular element 3, the metal patch 10 is expanded more equally, and no pockets are formed between the inner face of the well tubular metal structure 12 and the outer face of the metal patch 10. This is due to the fact that the pointwise expansion of the metal patch 10 is controlled so that no area point is expanded substantially more than another area point of the metal patch 10. The friction between the metal patch 10 and the expandable tubular element 3 ensures that one area point of the metal patch cannot be expanded more than another area point as compared to when less friction is present because in that case the metal patch 10 can freely expand more in some areas than in others, which creates cracks as the metal patch 10 is thinned too much in these freely expanded areas. The higher friction between the outer face of the expandable tubular element 3 and the inner face of the metal patch 10 limits free expansion and limits the possibility of some areas thinning more than others.
As shown in
In
The second pump 21 is thus a feed pump. In another embodiment, the driving means 112 may be a drill pipe or drill string for supplying pressurised fluid from the surface to drive the piston back and forth in the chamber.
In
The expandable tubular element 3 shown in
In
In
In
By having grains embedded in an outermost part of the expandable tubular element, a simple friction enhancement is provided which is ready to use without a protective cover or other means or without any actions prior to running the downhole packer assembly into hole. Thus, the embedded grains do not easily fall off and do not need extra protection while still being able to provide the increased friction to the rubber or elastomeric material.
In
The grains may be made of silicon dioxide (SiO2), zirconium silicate (ZrSiO4), aluminium oxide (Al2O3), cubic boron nitride (cBN), ceramic or metal alloy. Thus, the grains may be sand particles. By “grain” is meant any physical particle or small entity. By “grains” is thus meant granule/granules or individual particles.
The expandable tubular element 3 may comprise metal enhancement, such as metal strips, metal lamellas, metal slats, a weave or mesh structure, or a metal grid. The metal strips, metal lamellas or metal slats extend axially along the body part 2 or circumferentially around the body part 2 so as to be able to expand with the expandable tubular element 3 and deflate again after expanding the metal patch 10. The metal strips, metal lamellas, metal slats, weave or mesh structure, or metal grid may be embedded in the elastomeric or rubber material or added as an additional layer. The expandable tubular element 3 may also comprise a packer-reinforcement layer having fibres, a wire, a cable, a nanofibre, a nanotube and/or a nanoparticle-modified elastomer. The packer further comprises metal coil springs arranged in grooves of the outer face.
In
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 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.
In the event that the tool is not submersible all the way into the casing, a downhole tractor 112B as shown in
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.
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20220136363 A1 | May 2022 | US |