This application is the U.S. national phase of International Application No. PCT/EP2014/062387 filed 13 Jun. 2014 which designated the U.S. and claims priority to EP 13172046.8 filed 14 Jun. 2013, the entire contents of each of which are hereby incorporated by reference.
The present invention relates to a downhole machining system for machining a casing in a borehole in a well having a top. Furthermore, the invention relates to a machining method.
Well technology constantly develops, and the smart completion technology has traditionally been in focus. However, changes need to be made to a well during its lifetime in order to optimise production, and these changes are not always predictable and can thereby not be taken into account when assembling the casing. One necessary change could be machining an opening in the casing in order to insert a control valve to initiate gas lift. Another change required could be to machine a larger opening in the casing in order to make a side track. However, when making larger holes, elongated holes or just holes different from the size of the bit, the machining technology CNC from sub surface cannot be used as this technology requires a lot of space and power which is limited downhole.
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 tool capable of machining a casing in a predetermined position and of machining a predetermined geometry of the hole even though space and power is limited downhole.
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 machining system for machining a casing in a borehole in a well having a top, comprising:
In one embodiment, the gear may be a reduction gear.
Furthermore, the first tool part may be arranged closer to the top of the well than the second tool part.
Additionally, the system may comprise a second anchoring section, and the anchoring sections may be arranged with a mutual axial distance between them, both anchoring sections being arranged closer to the top of the well than the second tool part and the bit.
The downhole machining system may further comprise two anchoring sections arranged with a mutual axial distance between them, both of the two anchoring sections being arranged closer to the top of the well than the second tool part.
Moreover, the bit may not be arranged between the anchoring sections.
In an embodiment, the gear of the third actuator may be a bevel gear.
Also, the gear of the second actuator may be a planetary gear.
Further, the gear of the first actuator may be a planetary gear.
Additionally, the bit may be moved radially in relation to the axial extension by means of an electrical motor and/or hydraulics.
Furthermore, the bit may be moved radially by means of a hydraulic cylinder.
Moreover, the bit may form a piston of the hydraulic cylinder.
Furthermore, one anchoring section may be axially movable in relation to the other.
The system may further comprise a driving unit for propelling the system forward in the well.
In an embodiment, the first actuator may comprise a hydraulic cylinder instead of the motor.
Furthermore, the downhole machining system may comprise a control unit for controlling the actuators.
Moreover, the control unit may be arranged in the first tool part or the second tool part.
In addition, the control unit may be arranged at the top of the well.
In one embodiment of the invention, the downhole machining system may further comprise a pinching or cutting tool projectable through an opening in the casing provided by the machining bit.
Furthermore, the downhole machining system may further comprise a bit magazine.
Additionally, the downhole machining system may further comprise a fluid cleaner.
Also, the downhole machining system may further comprise a plug setting tool.
In another embodiment, the bit may be moved radially in a bit housing, the bit may have a sharp end facing the casing and a piston end, and the bit may be moved radially in relation to the axial extension by means of an electrical motor driving a hydraulic cylinder being in fluid communication with the bit housing pressing onto the piston end.
The downhole machining system as described above may further comprise a fluid cleaner for cleaning up cuttings from the machining process.
Moreover, the downhole machining system as described above may further comprise a plug setting tool for subsequently setting a plug.
By having a plug setting tool, the well can be cemented shortly after the downhole machining system has been retracted from the well.
Furthermore, the downhole machining system as described above may further comprise a pinching or cutting tool adapted to project through an opening in the casing provided by the bit.
Also, the first actuator may be a hydraulic cylinder which is a stroker tool.
Further, the bit may be rotated via gears by means of a main shaft which is rotated by the motor.
In addition, the main shaft may be connected with an angular gear for rotating the bit.
Moreover, a first gear of the angular gear may be connected to the main shaft and a second gear of the angular gear may be connected to a bit housing.
The present invention furthermore relates to a machining method comprising the following steps:
Said machining method may further comprise the step of moving the second tool part and the bit axially and/or rotate the second tool part and the bit during the machining step in order to provide an opening in the casing, said opening being larger than a diameter of the bit.
In an embodiment, the machining step may be performed to provide an opening in the casing, and the method may further comprise the step of projecting an operation tool into the opening.
Finally, the machining may be conventional milling/up-milling or down milling/climb milling.
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.
As shown in
By having several actuators, the downhole machining system is capable of machining a hole of any geometry and is thus capable of making a window which may be rectangular, round or meander-shaped. The downhole machining system is also capable of writing letters, numbers or logos by means of milling into the casing.
In
The third actuator having an electrical motor is arranged in the second tool part to rotate the bit 8. The bit may be rotated by means of a bevel gear or via a belt solution. The bit is moved axially by means of an electrical motor and/or hydraulics, which will be explained in the following.
The gears of the actuators may be reduction gears to be able to reduce the number of rotations of the motor and provide the actuator with more torque. The gear in the third actuator may also be a gear increasing the number of rotations of the bit in relation to the electrical motor in order to obtain the optimal machining operations for the bit.
As can be seen in
As shown in
In
In
In
As shown in
The control unit 17 may also be partly or wholly arranged in the first tool part 4 or the second tool part 7. However, communication downhole may be limited, so by arranging the control unit in the first tool part, the system does not need a lot of commands to run.
As seen in
In
In
In
When performing the machining operation, the downhole machining system is firstly submerged into the casing, and when the system is near the predetermined position, the anchors of the anchoring section are projected, anchoring the system in the casing. Secondly, the second tool part 7 is moved in relation to the first tool part 4, positioning the bit at a predetermined location in relation to the wall of the casing, and the machining bit 8 is moved radially in relation to the axial extension, and the machining of the casing is performed by means of the bit. During machining, the second part is moved axially and/or rotated in relation to the first tool part in order to make an elongated opening or an oval or square opening. The machining may be performed to provide an elongated opening in the casing so that an operation tool, such as a pinching or cutting tool 18, can be projected through the opening to cut a control line for operating a safety valve 21 (shown in
A stroking tool is a tool providing an axial force. The stroking tool comprises an electrical motor for driving a pump. The pump pumps fluid into a piston housing to move a piston acting therein. The piston is arranged on the stroker shaft. The pump may pump fluid into the piston housing on one side and simultaneously suck fluid out on the other side of the piston.
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 a casing 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 submergible all the way into the casing, a driving unit 45B, such as a downhole tractor, can be used to push the tool all the way into position in the well, as shown in
Although the invention has been described in the above in connection with preferred embodiments of the invention, it will be evident for a person skilled in the art that several modifications are conceivable without departing from the invention as defined by the following claims.
Number | Date | Country | Kind |
---|---|---|---|
13172046 | Jun 2013 | EP | regional |
Filing Document | Filing Date | Country | Kind |
---|---|---|---|
PCT/EP2014/062387 | 6/13/2014 | WO | 00 |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2014/198897 | 12/18/2014 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
3859877 | Sherer | Jan 1975 | A |
4577388 | Wood | Mar 1986 | A |
4648454 | Yarnell | Mar 1987 | A |
6012526 | Jennings | Jan 2000 | A |
6772839 | Bond | Aug 2004 | B1 |
7249918 | Bowman | Jul 2007 | B1 |
7562700 | Lewis | Jul 2009 | B2 |
7575056 | Fuhst | Aug 2009 | B2 |
20120029702 | Tverlid | Feb 2012 | A1 |
Number | Date | Country |
---|---|---|
1413285 | Apr 2003 | CN |
101479441 | Jul 2009 | CN |
0 911 483 | Apr 1999 | EP |
1 482 741 | Aug 1977 | GB |
2 129 350 | May 1984 | GB |
2 316 424 | Feb 1998 | GB |
2 353 812 | Mar 2001 | GB |
2 198 997 | Feb 2003 | RU |
2 201 493 | Mar 2003 | RU |
2 333 345 | Sep 2008 | RU |
WO 0146549 | Jun 2001 | WO |
WO 2007125509 | Nov 2007 | WO |
WO 2010066276 | Jun 2010 | WO |
Entry |
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Office Action of Substantive Examination dated Sep. 28, 2017 in Russian Application No. 2015153172/03(081975) with English Translation (12 pages). |
International Search Report for PCT/EP2014/062387 dated Oct. 16, 2014, five pages. |
Written Opinion of the ISA for PCT/EP2014/062387 dated Oct. 16, 2014, five pages. |
Notification of the First Office Action dated May 31, 2017 in Chinese Application No. 201480031141.8, with English Translation (17 pages). |
Notification Concerning Transmittal of International Preliminary Report on Patentability (Chapter I of the Patent Cooperation Treaty) dated Dec. 23, 2015 in International Application No. PCT/EP2014/062387 (7 pages). |
Number | Date | Country | |
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20160130904 A1 | May 2016 | US |