The present disclosure relates to a casing patch expansion apparatus for placing a casing patch in casing of a wellbore. The present disclosure also relates a method of placing a casing patch in casing of a wellbore and an assembly of a casing patch and casing patch expansion apparatus.
In hydrocarbon production, wellbores are commonly lined with steel casing to prevent wellbore collapse and facilitate hydrocarbon production from different regions along the wellbore. For example, in some circumstances, the casing is perforated to enable hydrocarbon production at the location of the perforated casing.
However, during management of oil and gas reservoirs, it is desirable to be able to patch unwanted perforations and leaking casing both to prevent unwanted fluid or gas migrations in the annulus and to manage hydrocarbon production at different regions of the wellbore.
Methods of patching casing are known using inflatable packers to expand steel casing patches against the surface of the casing to be patched. However, such methods generally only expand the casing patch to a point at which the patch is not flush with the internal diameter of the casing. This leaves a restriction in the casing which can prevent or limit other downhole operations.
Furthermore, known casing patch methods can be complex to operate and require tool servicing on the surface for repeated operation.
Preferred embodiments of the present disclosure seek to overcome the above disadvantages of the prior art.
According to an aspect of the present disclosure, there is provided a casing patch expansion apparatus for placing a casing patch in casing of a wellbore, the apparatus comprising:
a body on which at least one deformable packer element is mounted;
casing patch expansion means comprising at least one hydraulic cylinder, wherein an increase in fluid pressure in said at least one hydraulic cylinder causes compression of said at least one deformable packer element to deform said at least one deformable packer element into an outwardly deployed condition to deform a casing patch mounted to the apparatus against casing in the wellbore, and wherein reduction of fluid pressure in said at least one hydraulic cylinder enables said at least one deformable packer element to expand to an undeployed condition;
casing patch retention means comprising at least one retaining element arranged to engage a casing patch mounted to the apparatus to retain said casing patch on the apparatus, wherein an increase in fluid pressure in said apparatus causes said at least one retaining element to release said casing patch to enable the apparatus to move relative to said casing patch.
This provides the advantage of a casing patch expansion apparatus that can simultaneously place, release and expand a casing patch by the single operation of increasing fluid pressure in the internal bore of the apparatus. By creating a differential pressure between the internal diameter of the apparatus and the annulus outside of the apparatus, the hydraulic cylinders deploy the expandable packer element to deform the casing patch. This differential pressure also releases the casing patch retention means to enable the apparatus to move relative to the casing patch. This apparatus is therefore simple for operators to use. The apparatus can also be used repeatedly downhole without having to be returned to the surface for servicing.
This also provides the advantage that by selecting the correct number of hydraulic cylinders, sufficient force can be generated to deform both the casing patch and casing such that the casing patch is flush with the internal diameter of the casing being patched. This is advantageous because it leaves no restriction in the casing after patching.
The apparatus may further comprise a plurality of hydraulic cylinders arranged to cause compression of said at least one deformable packer element to deform said at least one deformable packer element into an outwardly deployed condition in response to an increase in fluid pressure in each said hydraulic cylinder.
This provides the advantage that due to the modular nature of assembly of the apparatus, the number of hydraulic cylinders can be increased and decreased as required in a straightforward manner during assembly of the apparatus to provide the correct amount of differential pressure to deform a casing patch such that it is flush with the casing of the wellbore.
In a preferred embodiment, said at least one deformable packer element is elastomeric.
Said at least one deformable packer element may further comprise a deformable metallic outer cover.
This provides the advantage that the deformable packer element is resistant to corrosion from dissolved chemicals such as carbon dioxide and hydrogen sulphide, particularly when operating in high temperature wellbore environments. This also provides the advantage that if after multiple activations, the deformable packer element fails, the apparatus will still function and retain the deformable material in the tool without it falling into the wellbore.
This also provides the advantage that the deformable metallic outer cover has been found to reliably deform casing patches if the deforming force is sufficient, whereas elastomeric elements due to their elasticity may be less reliable.
In a preferred embodiment, said casing patch retention means comprises at least one piston having at its first end said at least one retaining element, wherein said at least one retaining element projects outwardly of the apparatus to engage a portion of a casing patch in use shaped to receive said at least one retaining element, wherein an increase in fluid pressure in said apparatus causes said at least one piston to move to retract said at least one retaining element from engagement with said casing patch.
This provides the advantage of a means of ensuring that the casing patch is released at the same time as fluid pressure is increased in the apparatus to deploy the deformable packer elements.
The apparatus may further comprise locking means arranged to hold said at least one piston in a position retaining said casing patch on said apparatus until the fluid pressure in said apparatus increases above a pre-determined threshold at which said locking means is arranged to release said at least one piston to release said casing patch from engagement with the apparatus.
In a preferred embodiment, said locking means comprises at least one protrusion formed on said piston arranged to engage a thread of said apparatus such that said piston can be screwed along said thread to a position in which said at least one retaining element engages a casing patch, and wherein said protrusion is formed from a material harder than said thread such that when fluid pressure in the apparatus increases over said pre-determined threshold, said protrusion is able to strip said thread to enable movement of the piston.
This provides the advantage of a means for both facilitating assembly of the apparatus and mounting a casing patch thereon, as well as providing a means to release the casing patch at a particular predetermined fluid pressure.
In a preferred embodiment, said thread is formed on a bushing insertable in said apparatus.
This provides the advantage of a means of facilitating assembly of the apparatus and enabling servicing for re-use.
According to another aspect of the present disclosure, there is provided a method of placing a casing patch in casing of a wellbore, the method comprising mounting a casing patch to a casing patch expansion apparatus as defined above to form an assembly of a casing patch and casing patch expansion tool;
mounting said assembly in a work string and deploying the work string in casing in a wellbore at a position at which the assembly is located at a portion of casing at which a casing patch is required;
increasing fluid pressure in the apparatus of said assembly to both activate the casing patch expansion means and casing patch retention means to deform the casing patch into the surface of the casing in the well bore and release the casing patch from engagement with the casing patch retention means.
This provides the advantage of a casing patch expansion method which simultaneously places, releases and expands a casing patch by the single operation of increasing fluid pressure in the internal bore of the apparatus. By creating a differential pressure between the internal diameter of the apparatus and the annulus outside of the apparatus, the hydraulic cylinders deploy the expandable packer element to deform the casing patch. This differential pressure also releases the casing patch retention means to enable the apparatus to move relative to the casing patch. This apparatus is therefore simple for operators to use. The apparatus can also be used repeatedly downhole without having to be returned to the surface for servicing.
This also provides the advantage that by selecting the correct number of hydraulic cylinders, sufficient force can be generated to deform both the casing patch and casing such that the casing patch is flush with the internal diameter of the casing being patched. This is advantageous because it leaves no restriction in the casing after patching.
The method may further comprise reducing fluid pressure in the apparatus of said casing patch expansion apparatus to retract said at least one deformable packer element into the inwardly retracted condition to enable the casing patch expansion tool to be moved relative to the casing patch.
The method may further comprise moving said casing patch expansion apparatus relative to said casing patch and increasing fluid pressure in the casing patch expansion apparatus to reactivate said at least one deformable packer element to deform a portion of said casing patch into said casing.
According to a further aspect of the present disclosure, there is provided an assembly of a casing patch and casing patch expansion apparatus as defined above.
The assembly may further comprise an elastomeric sleeve disposed on the outer surface of said casing patch.
This provides the advantage of improving the sealing capability of the casing patch.
Preferred embodiments of the present disclosure will now be described by way of example only and not in any limitative sense, with reference to the accompanying drawings in which:
Referring to
Referring to
Referring to
The principle of operation to deploy the deformable packer elements 6 is identical to that disclosed in U.S. Pat. No. 9,869,163 B2, the disclosure of which is incorporated herein by reference.
Referring to
Locking means 32 is arranged to hold piston 30 in position in which retaining element 14 retains the casing patch 100 on the apparatus 2 until fluid pressure in the longitudinal bore 18 of the apparatus 2 increases above a pre-determined threshold. In a preferred embodiment, locking means 32 comprises at least one protrusion 34 formed on piston 30. Protrusion 34 engages a screw thread 36 formed in a bushing 38 which is insertable in the apparatus 2. To therefore assemble the casing patch retention means 12, the piston 30 is firstly inserted into apparatus 2 and the bushing 38 is then inserted on top of the piston. A hex key or similar can then be used to screw protrusions 34 of the piston 30 along screw thread 36 until the retaining element 14 projects through the cut-out of the casing patch 100.
When it is required to deform and release the casing patch 100, a fluid pressure increase in longitudinal bore 18 deforms deformable packer element 6 in the manner set out above. The same increase in fluid pressure over a pre-determined threshold causes protrusions 34 of piston 30 to strip thread 36 in bushing 38 because the piston 30 is made from a harder material than the thread 36. This enables piston 30 to move upwardly in the direction of arrow B and release the casing patch 100.
Referring to
Referring to
Operators at the surface firstly mount casing patch 100 on casing patch expansion apparatus 2 by assembling casing patch retention means 12 and screwing piston 30 into the position shown in
This fluid increases fluid pressure in hydraulic cylinders 10 and once a pre-determined threshold is reached, two things happen. Firstly, hydraulic cylinders 10 expand to compress deformable packer elements 6 into the condition shown in
A first deformation 112 is therefore created in the casing patch 100. By controlling the fluid pressure in the apparatus 2, sufficient force can be generated to deform both the casing patch 100 and casing 102 such that the casing patch 100 is flush with the internal diameter of the casing being patched. This is advantageous because it leaves no restriction in the casing after patching.
The operator then reduces fluid pressure in longitudinal bore 18 which returns the deformable packer elements 6 to the condition shown in
Referring to
Alternatively, referring to
Referring to
Casing patch expansion apparatus 202 comprises hydraulic cylinders 210 which operate to expand deformable packer element 206 in the same manner as that described in relation to the embodiment of
It will be appreciated by persons skilled in the art that the above embodiments have been described by way of example only and not in any limitative sense, and that various alterations and modifications are possible without departure from the scope of the invention as defined by the appended claims.
Number | Date | Country | Kind |
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2103677.7 | Mar 2021 | GB | national |