The present invention concerns a casing tool and a method for connecting casing tubulars using a top drive as disclosed in the introductory part of the main claims. More specifically the invention concerns at casing tool that may be releasably fixed to a top drive in a drilling derrick for interconnecting casing tubulars, i.e. casings inserted into drilling holes for hydrocarbon productions.
Particularly in oil and gas industry, sections of casing tubulars are being interconnected and inserted into a borehole to achieve the extended length of the borehole lining. To avoid that the interconnected casing string falls into the well while adding a new section, the slips of a spider located on the floor of the drilling platform are often used. The new section or stand of casing is then moved from a rack to the well centre above the spider. The treaded pin of the section of casing tubular to be connected is then located over the threaded box of the casing in the well and the connection is made up by rotation there between. An elevator is then connected to the top of the new section and the whole casing string is lifted slightly to enable the slips of the spider to be released. The whole casing string is then lowered until the top of the section is adjacent the spider whereupon the slips of the spider are re-applied, the elevator disconnected and the process repeated.
It is well known to use a power tong or similar turning means to torque the connection up to a predetermined torque in order to make the connection. These turning means located on the platform, either on rails, or hung from a drilling derrick on a chain, constitute often large and complex machineries which require a considerable amount of space and maintenance.
In the last decades use of top drive has been common in order to perform the interconnection of casing tubulars with sufficient torque strength. This type of operations requires the use of a dedicated tool that may connect to the top drive in one longitudinal end and may engage with the casing tubular at the other end so that the casing tubular can be rotated and lifted/lowered in to/out of the bore hole. An example of connecting tubular sections using a top drive and a corresponding casing tool is disclosed in publication WO 00/05483. This casing tool comprises a plurality of gripping elements that are radially displaceable by hydraulic or pneumatic fluid in order to drivingly engage the tubular section. This again permits a screw connection between the engaged tubular section and a further tubular section with the required torque. Another example of a top drive and a casing tool is found in publication WO 2006/116870 A1 disclosing a casing tool comprising a body assembly and a gripping assembly with a grip surface adapted to move from a retracted position to an engaged position to radially engage a work piece in response to relative axial displacement, the latter being activated by relative rotation within the tool. Further, publication U.S. Pat. No. 8,454,066 B2 discloses a tool for moving rigid spokes arranged in close fitting relation with spike guides on an annular body to allow for radial movements only between a retracted position and an engaged position.
Common for the prior art casing tools of the type described above is the use of either hydraulic or pneumatic fluid or relative rotation within the tool, in order to initiate and complete the process of engaging the tool to the casing tubular. This increases the complexity of the tool, thus releasing important undesired aspects such as higher production cost and higher degree of maintenance.
There is therefore a need to mitigate the disadvantages with the existing systems and to reduce the investments in extra equipment.
It is thus an object of the present invention to present a solution providing an easier and more cost effective activation of the engagement between the tool and the casing tubular, and which also fulfills the requirements of robustness and reliability. Another object of the invention is to provide an engagement mechanism that may be easily released, both in normal operations and in case of certain mechanical malfunctioning.
The present invention is set forth and characterized in the main claims, while the dependent claims describe other characteristics of the invention.
In particular, the invention concerns a casing tool for connecting casing tubulars using a top drive. The casing tool comprises a top cover that may be connected either releasably or non-releasably to the top drive and an elongated inner body that may be connected releasingly to the top cover. The inner body displays a longitudinally directed through-going channel, preferably with a gasket near one of its longitudinal ends, and comprises a first longitudinal part slideably arranged within the top cover and a second longitudinal part that may be guided into a casing tubular.
The casing tool further comprises a first sleeve arranged concentric and axial displaceable along at least part of the inner body at an axial distance (d) from the top cover, force transferring means for transferring a first external axial force (F1) exerted on the top cover in directed towards the casing tubular at least partly to the first sleeve, at least one clamp connected radially displaceable to the first sleeve for engaging the inside wall of the casing tubular and radial displacement means extending at least partly along the second longitudinal part of the inner body for imparting radial displacement of at least one of the at least one clamp during relative axial displacement of the first sleeve and the inner body. The first external axial force (F1) is preferably exerted after an obstruction of axial displacement of the inner body relative to the casing tubular
In a preferred embodiment the casing tool further comprising a first impact means configured to abut the end of the casing tubing during insertion therein, where an obstruction of the axial displacement of the inner body relative to the casing tubular is ensured by connecting the first impact means to the inner body via the force transferring means, for example when the at least one clamp is in an engaging position. The first impact means may comprise a first impact face situated between the end of the first sleeve facing the top cover and the radial displacement means. Furthermore, the first impact means may be connected by connection means to an outer enclosure radially enclosing at least the end of the first sleeve facing the top cover and the force inducing means.
In another preferred embodiment the force transferring means comprises a second sleeve arranged adjacent to the end of the top cover facing the second longitudinal part and at least one locking means arranged in contact with the axial end of the first sleeve facing the top cover, wherein the force transferring means is configured so that an axial force on the second sleeve activates a mainly casing tubing directed axial displacement of the at least one locking means.
The at least one locking means may comprise at least one pivot arm, where an axial force on the second sleeve causes a mainly outward oriented radial displacement of a first arm of the pivot arm and a mainly casing tubing directed axial force from the second arm of the pivot arm. The second arm may be either in direct or indirect contact with the first sleeve. The second sleeve may further comprise a third sleeve and an annular body connected to an axial end of the third sleeve facing the second longitudinal part and radially abutting a contact face of the first arm of at least one pivot arm, wherein the annular body comprises a radial projection configured to impose the outward directed radial displacement of the first arm during axial displacement of the second sleeve.
Alternatively the at least one locking means may comprise at least one lockable wheel and a lower sleeve, wherein an axial force on the second sleeve causes a release of the at least one lockable wheel and a mainly casing tubing directed axial force from the lower sleeve.
In another preferred embodiment the first sleeve comprises an inner tubing extending at least across the radial displacement means situated on the inner body and a flange or collar connected to the end of the inner tubing facing the top cover. The outer diameter of the flange is larger than the outer diameter of the inner tubing.
In another preferred embodiment the first sleeve displays at least one clamp fitting recess, wherein each recess is configured to allow its corresponding clamp to be displaced in the radial direction only after assembly.
In another preferred embodiment the radial displacement means comprises at least one first tapered face. Furthermore, the at least one of the at least one clamp may comprise at least one second tapered face facing the at least one first tapered face.
In another preferred embodiment the axial end of the top cover facing the second longitudinal part and the axial end of the force transferring means facing the top cover, for example the axial end of the third sleeve, are configured as interacting cam bodies allowing interconnection by rotation. This interconnection may for example be obtained by exerting an external axial force (F) that causes the contact face of the first arm to supersede the radial projection. The interacting cam bodies are advantageously configured to allow a top cover directed axial displacement of the second sleeve when the interacting cam bodies are rotated into the interconnected state and a third external axial force (F3) directed towards the casing tubing is exerted on the top cover. This axial displacement of the second sleeve causes the at least one clamp to release the radial force on the casing tubular set up by the radial displacement during engagement. For example, the displacement may cause the second sleeve to axially disconnect from the at least one pivot arm.
In another preferred embodiment the casing tool further comprising at least one second sleeve connected release mechanism configured to allow a top cover directed axial displacement of the second sleeve. For example, the axial displacement may cause the second sleeve to disconnect from the at least one pivot arm.
The invention also concerns a method using a casing tool in accordance with the above mentioned characteristics. The method comprising the following steps:
In other to achieve an additional engagement of the at least one of the at least on clamp the method may further comprise the step:
thereby exerting a second external axial force directed tension on the inner body, creating an increase in the relative axial force between the dies and the inner body.
To release the engagement between the casing tool and the casing tubular the following steps may be performed:
An alternative or additional way of releasing the engagement between the casing tool and the casing tubular is obtained by performing the following step:
In the following description, numerous specific details are introduced to provide a thorough understanding of embodiments of the claimed tool and method. One skilled in the relevant art, however, will recognize that these embodiments can be practiced without one or more of the specific details, or with other components, systems, etc. In other instances, well-known structures or operations are not shown, or are not described in detail, to avoid obscuring aspects of the disclosed embodiments.
In the following to different embodiments will be disclosed, where both embodiments are based on the following general concept (see for example
With reference to
The top components comprising the top drive part 2, the upper cam body 18, the upper impact piece 20, the lock ring 21 and the upper gear teeth 42 form an assembly called a top cover 100. Further, the mid components comprising lower cam body 16, the lower gear teeth 40, the annular spring 14,14′ and the pivot arms 12 form an assembly called a force transferring means 200.
Initially the tool 1 is lowered into the casing tubular 4,5 until its threaded part 5 abuts the lower impact piece 10, the latter being fixed to the outer enclosure 3. In this starting position the abutting impact piece 10 prevents any downward axial displacement of the inner tubular 6 since the bulge 14′ in the annular spring 14 is located above a contacting face 15 at the end of the long arm 12′ of each pivot arm 12. Further, the end of the short arm 12″ below the pivot point bolt 13 is contacting the upper axial face of the sleeve's 8 flange 11, the latters being arranged concentrically around the inner tubular 6. In the lower half of the sleeve 8 there are arranged die recesses configured to allow only radial displacements of the dies 34 when installed.
In this particular starting position exertion of axial forces on the tool 1 cause corresponding axial displacements of the top drive part 2, the upper impact piece 20 and upper cam body 18. In absence of any rotation the upper cam body 18 will impact the lower cam body 16 in an impact point 32 (
When the contacting surface 15 of the long arm 12′ has passed the center of the bulge 14′ the pivot arms 12 are in a locked position relative to the annular spring 14, the lower cam body 16 and the inner tubular 6. In absence of any rotation the upper cam body 18 and the top drive part 2 may in this pre-tensioning situation be lifted up until impact occurs between the upper cam body 18 and the upper impact piece 20. Exertion of any further upwards directed force would thus be transferred to the lower tubular 6″, causing a larger axial force and thus an additional clamping/tensioning force onto the inner walls of the casing tubular 4 from the dies 34.
It is emphasized that both the initial clamping and the additional clamping are performed without any rotational movements of the tool 1.
Release of the tool 1 from the casing tubular 4 may be achieved by lowering the top drive part 2 and the upper cam body 18 applying a downward directed force, while enforcing a counterclockwise rotation. The latter rotation forms an interconnection between the upper cam body 18 and the lower cam body 16 in contrast to simple impact 32 in absence of rotation. During rotation upper cams 33 with upward directed inclined planes 37 at the lower part of the upper cam body 18 are meshing with corresponding inclined planes 37′ on the upper part of the lower cam body 16, thereby lifting the latter axially upwards. Due to the axial displacement of the now interconnected bodies 16,18 the long pivot arm 12′ looses its grip with the annular spring 14, thus releasing the tool 1 from the casing tubular 4. Upper gear teeth 42 arranged between the top drive part 2 and the upper cam body 18 are configured to mesh with the top drive part 2 when impact 30 exists (or about to take place) between the upper cam body 18 and the upper impact piece 20, i.e. when the top drive part 2 is in its upper position. Further, arrangement of the first cam springs 26 ensure that such an impact 30 prevails in the absence of downward directed axial force (F). The impact piece 20 may be fixed by a locking ring 21. The second cam springs 17 ensure positioning of the top drive part 2 relative to the lower cam body 16.
To be able to release the tool 1 manually, e.g. in case of any loss of rotational freedom between the two cam bodies 16,18, the tool 1 may be arranged with pivoting levers 35 connected underneath the lower cam body 16 in one end and sheaves/plates 31 fixed by bolts 34 at the other end. The plates 31 are fastened to the outer enclosure 3 by screws. To manually release the tool 1 dedicated release or lever screws 23 are inserted so that the pivoting levers 35 pivots around the bolts 34, thereby pressing the lower arm radially inwards and the higher arm axially upwards. The lower cam body 16 experiences thus a corresponding axially displacement, thereby releasing the annular spring 14 from the pre-tensioning long arm 12′. The further mechanisms are identical to the regular release described above.
The second embodiment of the inventive tool 1 comprises the following main components:
As for the first embodiment the top components comprising the top drive part 2, the upper cam body 18, the upper impact piece 20, the lock ring 21 and the upper gear teeth 42 form the assembly called the top cover 100. Further, the mid components comprising lower cam body 16, the lower gear teeth 40, the mid sleeve 51, the releasable wheels 52, the triangular brackets 53, the lower sleeve 54, the elongated brackets 55, the inner tubular flange 56 and the lower sleeve springs 56 form the assembly called the force transferring means 200.
Initially the tool 1 is lowered into the casing tubular 4,5 until its threaded part 5 abuts the lower impact piece 10. In this starting position the abutting impact piece 10 prevents any downward axial displacement of the inner tubular 6 since the impact piece 10 is coupled to the inner tubular 6 by the screws 57 and also to the lower cam body by the locked wheels 52. Exertion of axial forces on the tool 1 in direction of the casing tubular 4,5 cause corresponding axial displacements of the top drive part 2, the upper impact piece 20 and upper cam body 18. In absence of any rotation the upper cam body 18 will impact the lower cam body 16 in an impact area 32, causing an axial force to be exerted also on the latter 16. The force will release the wheel 52 which again causes the lower end of the lower cam body to impart downward directed pressure on the inner tubular flange 56. Further, the inner tubular flange 56 abuts the lower sleeve 54, creating the axial pressure on the flange 11 and thus the zigzag pattern induced radial displacement of the dies 34. The flange springs 25 and the lower sleeve springs 56 arranged between the flange 11 and the lower impact piece 10 and between the flange 11 and the lower sleeve 54, respectively, ensure re-positioning of the sleeve 8 and the flange 11 when the dies 34 are released from the inner tubular 6 (see below).
In absence of any rotation the upper cam body 18 and the top drive part 2 may in this pre-tensioning situation be lifted up until impact occurs between the upper cam body 18 and the upper impact piece 20. Exertion of any further upwards directed force would thus be transferred to the lower tubular 6, causing a larger axial force and thus an additional clamping force onto the inner walls of the casing tubular 4 from the dies 34 in the same way as for the first embodiment.
Note that both the initial pre-tensioning clamping and the additional clamping are performed without any rotational movements of the tool 1.
Release of the tool 1 from the casing tubular 4 may be achieved by lowering the top drive part 2 and the upper cam body 18 applying a downward directed force, and subsequently enforcing a counterclockwise (or alternatively clockwise) rotation. The latter rotation forms an interconnection between the upper cam body 18 and the lower cam body 16 in contrast to simple impact 32 in absence of rotation. During rotation upper cams 33 with upward directed inclined planes 37 at the lower part of the upper cam body 18 are meshing with corresponding inclined planes 37′ on the upper part of the lower cam body 16, thereby lifting the latter axially upwards (see
The second cam springs 17 ensure positioning of the top drive part 2 relative to the lower cam body 16.
To be able to release the tool 1 manually, e.g. in case of any loss of rotational freedom between the two cam bodies 16,18, the tool 1 may be arranged with dedicated release screws 23 fastened underneath the flange 11, going through dedicated holes in the lower sleeve 54. By inserting suitable tools into aligned passages 60 into the lower impact access is gained to the release screws 23. A Clockwise directed turns of these screws 23 cause the screw ends to abut underneath the inner tubular flange 56, which again causes an upwards movement of the component constituting the force transferring means 200 and the inner tubing 6. The further mechanisms are identical to the regular release described above.
In the preceding description, various aspects of the apparatus according to the invention have been described with reference to the illustrative embodiment. For purposes of explanation, specific numbers, systems and configurations were set forth in order to provide a thorough understanding of the apparatus and its workings. However, this description is not intended to be construed in a limiting sense. Various modifications and variations of the illustrative embodiment, as well as other embodiments of the apparatus, which are apparent to persons skilled in the art to which the disclosed subject matter pertains, are deemed to lie within the scope of the present invention.
| Number | Date | Country | Kind |
|---|---|---|---|
| 20131716 | Dec 2013 | NO | national |
| Filing Document | Filing Date | Country | Kind |
|---|---|---|---|
| PCT/EP2014/078846 | 12/19/2014 | WO | 00 |