This application is the U.S. national stage application of International Application PCT/NO2013/050040, filed Feb. 28, 2013, which international application was published on Sep. 6, 2013, as International Publication WO2013/129938 In the English language. The international application is incorporated herein by reference, in entirety. The international application claims priority to Norwegian Patent Application No. 20120216, which is incorporated herein by reference.
A feeding device for a rotatable downhole tool is described. A method of feeding a downhole tool axially by the use of the feeding device, when working a portion of a surrounding pipe body, is described as well.
When using downhole tools that require a great degree of accuracy as regards axial feeding, for example using cutting tools when working a casing, it often presents large problems to do this work accurately enough. Axial feeding takes place, to a great extent, by a pipe string being moved forwards or being withdrawn while the tool is working, and this may easily result in the tool being overloaded so that the entire pipe string will have to be pulled up for maintenance or replacement of the tool. This involves large costs by the very fact that a pipe string of this kind may have a considerable length, especially in subsea oil and gas production and when wells with horizontal portions are used.
The invention has for its object to remedy or reduce at least one of the drawbacks of the prior art or at least provide a useful alternative to the prior art.
The object is achieved through features which are specified in the description below and in the claims that follow.
A feeding device for a downhole tool has been provided, the feeding device and the downhole tool being arranged on a pipe string arranged to be inserted in a borehole in the underground. The feeding device is provided with several feeding wheels which are each radially displaceable between a retracted, inactive position and an extended, active position in which the feeding wheels bear against an internal wall surface of a body surrounding the feeding device, for example a casing. The centre axes of the feeding wheels are slanted relative to the centre axis of said surrounding body. When the feeding device is rotated around its own centre axis, the slant of the feeding wheels will make the feeding wheels follow a helical line so that the feeding device is moved in the axial direction without a push force having been applied to the pipe string. The connected downhole tool follows the axial movement of the feeding device. By the choice of a suitable slant for the feeding wheels, the downhole tool may thereby achieve a desired feed rate.
The slant of the feeding wheels may be adjustable. The adjustment may be remote-controlled. Thereby, for example, varying frictional properties of the internal wall surface of the surrounding body may be compensated for.
The axial displacement of the feeding wheels preferably takes place along an inclined plane which has its largest extent in the axial extent of the feeding device. This is advantageous because, normally, there are larger restrictions in a radial direction than in an axial direction for a downhole tool.
In a first aspect, the invention relates more specifically to a feeding device for a rotatable downhole tool, characterized by the feeding device being provided with several feeding wheels lying in a plane which is slanted relative to a plane which is perpendicular to the centre axis of the downhole tool, and the feeding wheels are displaceable between a retracted, inactive position and an active position in which they bear against an internal wall surface of a pipe body surrounding the feeding device.
A feeding-wheel suspension may be connected to a radial guide and a first actuator which, on activation, is arranged to displace the feeding wheels with a radial direction component. The radial guide may be an inclined plane. Alternatively, the radial guide may be a radial cut-out in a feeding-device housing.
The feeding device and the downhole tool may be interconnected via a transmission unit which is arranged to provide a rotational speed for the downhole tool different from the rotational speed of the feeding device.
The feeding device and the downhole tool may be arranged on a rotatable pipe string, on a non-rotatable pipe string or on a wireline.
In a second aspect, the invention relates more specifically to a method of feeding a downhole tool axially when working a portion of a surrounding pipe body, characterized by the method including the following steps:
a) the downhole tool and an associated feeding device are placed in the desired position in the pipe body;
b) several feeding wheels, which are arranged in the feeding device and lie in a plane which is slanted relative to a plane which is perpendicular to the centre axis of the downhole tool, are displaced to bear against an internal wall surface of the pipe body;
c) the downhole tool and the associated feeding device are set into a rotational motion by means of an associated driving motor;
d) the downhole tool is moved in its axial direction by the feeding wheels moving along an imaginary helical line on the internal wall surface.
The driving motor may be arranged in a remote end portion of a rotatable pipe string. Alternatively, the driving motor may be arranged in connection with a downhole end portion of a non-rotatable pipe string or a wireline.
In what follows, an example of a preferred embodiment is described, which is visualized in the accompanying drawings, in which:
In the figures, the reference numeral 1 indicates an underground formation in which a borehole 11 has been provided, which has been cased with a casing 12 in a manner known per se. On a pipe string 2, a feeding device 3 according to the invention is arranged in a rotationally rigid manner, and also a downhole tool 5 which is arranged, when being rotated, to work a portion of the casing 12 which, in this connection, is an example of a pipe body which, in an operative situation, surrounds at least the feeding device 3 and, with an internal wall surface 121, forms an abutment surface for feeding wheels 32 arranged in the feeding device 3. The downhole tool 5 is shown here as a cutting tool, but may be of any kind requiring axial displacement in its active state.
The space between the casing 12 and the underground formation 1 is shown as filled with cement 13 here, but this is not important for the application of the feeding device 3.
In addition,
In
Reference is now made to the
The radial middle plane of the feeding wheels 32 is slanted relative to a plane which is perpendicular to the rotational axis of the feeding device 3, indicated by the angular indication a in
In the
A unit of a corresponding design may conceivably also be connected to a non-rotatable pipe 2′, for example a coiled tubing (see
It is an advantage if the feeding device 3 and the downhole tool 5, possibly together with associated elements like the transmission unit 4, are not axially fixed relative to the pipe string 2, 2′, possibly the unit operated by a wireline 2″, so that the axial forward feeding is not obstructed by the pipe string 2, 2′, the wireline 2″ or the attachment means 7.
It is obvious that the feeding device 3 may be placed in front of the downhole tool 5 or behind the downhole tool 5 (as it is shown in
Number | Date | Country | Kind |
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20120216 | Feb 2012 | NO | national |
Filing Document | Filing Date | Country | Kind |
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PCT/NO2013/050040 | 2/28/2013 | WO | 00 |
Publishing Document | Publishing Date | Country | Kind |
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WO2013/129938 | 9/6/2013 | WO | A |
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International Search Report and Written Opinion for PCT/NO2013/050040 dated Oct. 6, 2013. |
Number | Date | Country | |
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20150053425 A1 | Feb 2015 | US |