Wireline equipment used to investigate boreholes and surrounding formations are typically lowered into a well borehole using a cable. In some cases, such as in a gas well, the cable holding the wireline equipment passes through a seal at the surface. The seal allows the cable to move while maintaining gas and/or well pressure within the borehole.
In one embodiment of a wireline well logging system 100 at a drilling rig site, as depicted in
In one embodiment, the wireline cable 110 not only conveys the logging toolstring 116 into the well, it also provides a link for power and communications between the surface equipment and the logging toolstring.
In one embodiment, as the logging tool 116 is raised or lowered within the well bore 112, a depth encoder 122 provides a measured depth of the extended cable. In one embodiment, a tension load cell 124 measures tension in the wireline 110 at the surface 104.
A more detailed view of one embodiment of the sealing apparatus 111, shown in
Typically, as illustrated in
One embodiment of a wireline cable 305 includes a conductor package 310. In one embodiment, the conductor package 310 can include any number of conductors of any type. For example, the conductor package can include solid conductors, coaxial conductors, fiber optic conductors, etc. The conductor package can include multi-conductor cables such as seven conductor, crush resistant 7 conductor packages enclosed in a jacket material, single conductor, single fiber optic, fiber optic with one or more conductors, multi-fiber fiber optics, or any other combination. In one embodiment, the conductor package includes strengtheners or load bearing elements to provide strength and stability to the conductor package 310. In one embodiment, the conductors in the conductor package carry electrical power or communications and/or control signals.
In one embodiment, an inner set of armor wires 315 is wrapped around the conductor package 310. Note that only one wire of the inner set of armor wires 315 is shown. The inner set of armor wires is wrapped in a substantially helical pattern. The use of the word helical in this description is not meant to limit the path of the inner set of armor wires 315 to follow the path of a strictly mathematical helical shape. In one embodiment, the path of each wire of the inner set of armor wires 320 deviates but generally follows the mathematical helical pattern.
In one embodiment, an outer set of armor wires 320 is wrapped around the conductor package 310 and the inner set of armor wires 315. Note that only one wire of the outer set of armor wires 320 is shown. The outer set of armor wires is wrapped in a substantially helical pattern. The use of the word helical in this description is not meant to limit the path of the outer set of armor wires 320 to follow the path of a strictly mathematical helical shape. In one embodiment, the path of each wire of the outer set of armor wires 320 deviates but generally follows the mathematical helical pattern.
For the purposes of this application, a helix can be either a right-handed helix or a left-handed helix. For the purposes of this application, a right-handed helical pattern progresses in a clockwise fashion as it recedes from the observer. For the purposes of this application, a left-handed helical pattern progresses in a counter-clockwise fashion as it recedes from the observer.
In one embodiment, the outer set of armor wires 320 generally follows a first-handed helical pattern and the inner set of armor wires 315 generally follows a second-handed helical pattern with the observer positioned at the left side of
In one embodiment, the shapes of the armor wires are chosen so that when the inner set of armor wires 315 and the outer set of armor wires 320 are laid together, the exterior surface is nearly smooth. In one embodiment, the armor wires are designed without square corners, which means that some voids, albeit smaller as compared to the typical round armor wire design, remain. Once assembled, the design of the armor allows the armor wires to move independently of one another and retain the cable shape upon reforming their original shape if they become temporarily opened or spread apart.
In one embodiment, the inner set of armor wires 315 includes at least some armor wires that have non-circular and non-rectangular cross-sectional shapes. In one embodiment, the outer set of armor wires includes at least some armor wires that have non-circular and non-rectangular cross-sectional shapes. In one embodiment, the inner armor wires that have non-circular and non-rectangular cross-sectional shapes have the same cross-sectional shapes, although, in one embodiment, different in size and orientation, as the outer armor wires with non-circular and non-rectangular cross-sectional shapes.
One embodiment of such a wireline cable, illustrated in cross-section in
Another embodiment of such a wireline cable, illustrated in cross-section in
In one embodiment, the shaping of the armor is done during pulling of the wire to size by pulling the wire through a shaper. In one embodiment, the shaping of the wire is done using a technique designed for nano technology where the wires are shaved to increase the alignment of metal crystals and to improve the metal characteristics and strength resulting in a stronger wireline.
In one embodiment, a computer program for controlling the operation of the wireline logging system 100 is stored on a computer readable media 605, such as a CD or DVD, as shown in
In one embodiment, the results of calculations that reside in memory 620 are made available through a network 625 to a remote real time operating center 630. In one embodiment, the remote real time operating center 630 makes the results of calculations available through a network 635 to help in the planning of oil wells 640 or in the drilling of oil wells 640. Similarly, in one embodiment, the wireline logging system 100 can be controlled from the remote real time operating center 630.
The word “couple” or “coupling” as used herein shall mean an electrical, electromagnetic, or mechanical connection and a direct or indirect connection.
The cable described herein can also be used in any measurement while drilling (“MWD”), logging while drilling (“LWD”), wired drillpipe, or coiled tubing (wired or unwired) in which a cable is used.
In addition to power being provided from the surface through wireline cable 111, power may also be provided by a battery located in the wireline logging toolstring 116.
The text above describes one or more specific embodiments of a broader invention. The invention also is carried out in a variety of alternate embodiments and thus is not limited to those described here. The foregoing description of the preferred embodiment of the invention has been presented for the purposes of illustration and description. It is not intended to be exhaustive or to limit the invention to the precise form disclosed. Many modifications and variations are possible in light of the above teaching. It is intended that the scope of the invention be limited not by this detailed description, but rather by the claims appended hereto.
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/US2009/054167 | 8/18/2009 | WO | 00 | 4/16/2012 |
Publishing Document | Publishing Date | Country | Kind |
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WO2011/021999 | 2/24/2011 | WO | A |
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PCT/US2009/054167 International Search Report and Written Opinion, mailed Oct. 15, 2009. |
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Number | Date | Country | |
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20120227481 A1 | Sep 2012 | US |