ANCHOR SYSTEM AND METHOD FOR USE IN A WELLBORE
20170328157 ยท 2017-11-16
Inventors
- Antonius Leonardus Maria WUBBEN (Rijswijk, NL)
- Tino Walter VAN DER ZEE (Joure, NL)
- Remmelt BOUMA (Joure, NL)
- Erik VAN DALFSEN (Joure, NL)
Cpc classification
E21B43/103
FIXED CONSTRUCTIONS
International classification
Abstract
An anchoring system for anchoring a tool (24) in a downhole tubular element (2) comprises: an anchor (28) having a central body (40) connected to, or integrally formed with, the tool (24); a slip element (50) radially movable relative to the central body (32) between a retracted and an expanded position against the inner surface of the tubular element (2), a primary spring (56) for moving the slip element to the expanded position; a control device comprising a stop member (60) against which the slip element (50) is pushed by the primary spring (56); and a secondary spring (58) acting on the stop member (60) to move each slip element (50) to its retracted position.
Claims
1. An anchor system for anchoring a tool in a tubular element within an underground borehole, the anchor system comprising: an anchor having a central body connected to the tool or integrally formed with the tool; a slip element radially movable relative to the central body between a retracted position, wherein the slip element is retracted from an inner surface of the tubular element, and an expanded position, wherein the slip element engages the inner surface of the tubular element; primary spring means arranged to induce movement of the slip element to the expanded position; a control device for controlling movement of the slip element induced by the primary spring means, which control device comprises a stop member against which the slip element is pushed by the primary spring means, the stop member being movable in correspondence with movement of the slip element between the retracted position and the expanded position; and secondary spring means acting on the stop member so as to induce movement of the slip element to the retracted position.
2. The system of claim 1, wherein the resulting spring force acting on the slip element induces the slip element to move to the retracted position.
3. The system of claim 1, wherein the primary spring means comprises a primary compression spring and the secondary spring means comprises a secondary compression spring, the secondary compression spring having a higher pre-load than the primary compression spring when the at least one slip element is in the retracted position.
4. The system of any one of claims 1, wherein the control device comprises a hydraulic actuator arranged to control movement of the stop member.
5. The system of claim 4, wherein the central body is included in an elongate string extending from surface into the tubular element, and wherein the hydraulic actuator is adapted to be operated by a hydraulic control system at surface via a fluid channel extending in the elongate string.
6. The system of claim 5, wherein the tool is adapted to be operated by the hydraulic control system at surface via the fluid channel extending in the elongate string.
7. The system of claim 5, wherein the tubular element is a radially expandable tubular element, and wherein the tool comprises a jack device for pulling an expander through the tubular element so as to radially expand the tubular element.
8. The system of claim 7, wherein a cage is positioned above the tubular element, the cage being surrounded by a cylindrical wall and being adapted to receive the anchor and to be radially expanded by the anchor against said cylindrical wall.
9. The system of claim 8, wherein the system comprises a plurality of slip elements and the cage comprises, for each slip element, a respective slip extension member arranged to be moved by the slip element in radially outward direction against the cylindrical wall.
10. A method of anchoring a tool in a tubular element extending in a borehole formed in an earth formation, wherein use is made of an anchor system comprising an anchor having a central body connected to the tool or integrally formed with the tool, a slip element radially movable relative to the central body between a retracted position, wherein the slip element is retracted from an inner surface of the tubular element, and an expanded position, wherein the slip element engages the inner surface of the tubular element, primary spring means, secondary spring means, and a control device; wherein: radially moving the slip element relative to the central body between said retracted position and said expanded position whereby inducing such movement by the primary spring means; controlling movement of the slip element induced by the primary spring means by means of the control device, which control device comprises a stop member against which the slip element is pushed by the primary spring means, the stop member being movable in correspondence with movement of the slip element between the retracted position and the expanded position; and secondary spring means acting on the stop member so as to induce movement of the slip element to the retracted position.
Description
[0024] The invention will be described hereinafter by way of example in more detail with reference to the accompanying drawings in which:
[0025]
[0026]
[0027]
[0028]
[0029]
[0030]
[0031] In the detailed description and the drawings, like reference numerals relate to like components.
[0032] Referring to
[0033] An expansion string 16 formed of drill pipe sections 18 interconnected by pipe connectors 20, extends from a rig floor 22 on the drilling rig 8 into the casing 6 and further into the tubular element 2. The expansion string 16 includes a hydraulic jack device 24 with telescoping upper and lower members 25, 26 (
[0034] Referring further to
[0035] The anchor 28 comprises a plurality of slip elements 50 circumferentially spaced around the central body 40 of the anchor. Each slip element 50 has tapering inner surfaces 52a, 52b that are in contact with respective tapering outer surfaces 54a, 54b of the central body 40. The inner and outer surfaces 52a, 52b, 54a, 54b have identical taper angles. Furthermore, each slip element 50 is arranged to slide in axial direction along the tapering outer surfaces 54a, 54b of the central body 40. Due to the taper angles of the surfaces, the slip element 50 is in a radially retracted mode when at a lower position relative to the central body 40, and in a radially expanded mode when at an upper position relative to the central body 40. In the radially expanded mode the slip element 50 contacts the inner surface of the tubular element 2.
[0036] The anchor 28 is provided with a primary compression spring 56 positioned between a lower flange 57 of the central body 40 and the lower ends of the slip elements 50. The primary spring 56 is arranged to push the slip elements 50 to the radially expanded mode. Furthermore, the anchor 28 is provided with a secondary compression spring 58 positioned between an upper flange 59 of the central body 40 and a stop member 60 against which the slip elements 50 are pushed by the primary spring 56. The stop member is formed by a cylinder 60 of a hydraulic actuator 62, the cylinder 60 being movable in axial direction in correspondence with movement of the slip elements 50 between the retracted mode and the expanded mode. The secondary compression spring 58 has a higher pre-load than the primary compression spring 56 so that the resulting spring force acting on the slip elements 50 induces the slip elements 50 to move to the retracted mode when the hydraulic actuator 62 is inactive. The hydraulic actuator 62 includes a piston 63 axially movable in the cylinder 60. Further, the hydraulic actuator is in fluid communication with the fluid channel 42 via a side opening 64 in the central body 40 so that the cylinder moves in upward direction relative to the piston upon application of fluid pressure in the fluid channel 42.
[0037] Referring further to
[0038] Normal operation of the system 1 is as follows. The expansion string 16 and the tubular element 2 are simultaneously lowered through the casing 6 and into an open borehole section below the casing, whereby the tubular element 2 is supported by the expander 27. To maintain wellbore control during lowering, drilling fluid may be circulated in the borehole via the fluid channel 42, the bore 36 of the piston, the cylinder 34, and the flow passage 44 of the expander. After lowering to the required depth, whereby the short overlap section 12 of tubular element 2 and casing 6 is present, expansion of the tubular element 2 may be started (
[0039] During an initial stage of the expansion process the plug 38 is pumped in a stream of hydraulic fluid through the fluid channel 42 of the expansion string 16 until the plug closes the bore 36 of piston 32. Pumping of hydraulic fluid through the fluid channel 42 is then proceeded so that hydraulic fluid is pumped into the cylinder 34 of the jack device 24 via the side opening 46 of the mandrel 33, and into the hydraulic actuator 62 of the anchor 28 via the side opening 64 of the central body 40. As a result the cylinder 60 moves in upward direction against the force of the secondary spring 58 and thereby allows the primary spring 56 to push the slip elements 50 to the expanded mode so that the anchor 28 becomes activated. With the anchor 28 activated, the increased fluid pressure in the cylinder 34 causes the jack device 24 to stroke in whereby the cylinder 34 moves upwardly relative to the mandrel 33 and thereby pulls the expander 27 into the tubular element 2. A lower portion of the tubular element is thereby expanded (
[0040] During a further stage of the expansion process, after the jack device 24 has fully stroked in, the fluid pressure in the fluid channel 42 is released so that, as a result, the hydraulic actuator 62 is deactivated thereby allowing the secondary spring 58 to push the slip elements 50 via the cylinder 60 back to the radially retracted mode. In a next step the expansion string 16 is pulled upwardly in order to fully stroke out the jack device 24 (
[0041] Thus, one cycle of the expansion process includes the steps of activating the anchor 28, stroking the jack device 24 in to radially expand a section of the tubular element 2, deactivating the anchor 28, and pulling the expansion string 16 upwardly. The cycle is repeated as many times as necessary to fully expand the tubular element 2.
[0042] As the anchor 28 reaches the top of the tubular element 2, pulling the expansion string 16 further upwardly causes the anchor 28 to enter into the cage 14. The expansion cycle is then repeated whereby during activation of the anchor 28, the slip elements 50 of the anchor push the respective slip extension members 66 against the inner surface of the casing 6. In this manner the anchor 28 is anchored to the casing 6 thereby allowing the jack device 24 to pull the expander 27 through the upper end portion of the tubular element 2. At the end of this expansion cycle the expansion string 16 is pulled upwardly whereby the flange 59 of the anchor moves against the internal upset 73 of the cage 14 so that the shear pin of the cage shears off. Thereafter the cage 14 remains attached to the anchor 28 and moves upwardly with the anchor during the final cycles of the expansion process. Once the tubular element 2 has been fully expanded, the expansion string 16 together with the cage 14 is removed from the borehole 3.
[0043] If desired an upward pulling force may be applied to the expansion string 16 during stroking in of the jack device 24 in order to supplement the holding power of the anchor 28. This may be especially useful during expansion of the tubular element in the overlap section 12, when the tubular element 2 and the casing 6 are expanded simultaneously.
[0044] The present invention is not limited to the embodiments as described above. Various modifications are conceivable within the scope of the appended claims. Features of respective embodiments for instance may be combined.