The present disclosure relates to tracking downhole devices run in a tubular for use in a wellbore environment and more particularly to modification of the profile of the inner diameter of a tubular such that a downhole device inserted into the tubular may be tracked as it passes the modified profile of the inner diameter.
In a wellbore it may be desirable to introduce a downhole device into a tubular. For example, downhole devices such as plugs, darts, balls, and the like may be introduced into a tubular to separate fluids, activate a downhole tool, clean the tubular, remove an obstruction, etc. Typically, a downhole device is introduced and displaced in the tubular to a specific location where the downhole device may perform its desired function. However, although the necessary displacement volume may be calculated, these calculations are frequently erroneous due to downhole tolerances, stretch, and other variables; and the resulting inaccuracies in the calculation may lead to over- or underdisplacement.
Consequently, methods of tracking the location of a downhole device have been devised to correct for inaccuracies in the calculation of the displacement volume. For example, some methods may modify the downhole device with a deformable structure that deforms when the downhole device passes a specific structure in the tubular. As the deformable structure on the device deforms, the pressure in the tubular may change and this change in pressure may be measured, in turn signaling an operator who observes the pressure change. However, the deformable structure may only deform once, and as such the system is only able to indicate the location of the downhole device after it has passed the one specific structure in the tubular which induced deformation of the deformable structure on the downhole device.
Alternatively, other methods have been developed that allow for continual tracking along the length of the tubular. These methods generally consist of attaching a wire or a fiber optic cable to the downhole device to track its location as it is displaced in the tubular. However, these methods are only able to track a downhole device for the length of the attached wire. This may be problematic in tubulars that extend several thousands of feet. Additionally, if the wire gets caught or cut along some feature within the inner diameter of the tubular, it may no longer be possible to track the downhole device. If the downhole device is not displaced the correct distance within the tubular, remedial operations may need to be performed. For example, if a cement plug is placed at the wrong location, remedial cementing operations may be needed to achieve the desired cementing application.
Illustrative examples of the present disclosure are described in detail below with reference to the attached drawing figures which are incorporated by reference herein, and wherein:
The illustrated figures are only exemplary and are not intended to assert or imply any limitation with regard to the environment, architecture, design, or process in which different examples may be implemented.
The present disclosure relates to tracking downhole devices run in a tubular for use in a wellbore environment and more particularly to modification of the profile of the inner diameter of a tubular such that a downhole device inserted into the tubular may be tracked as it passes the modified profile of the inner diameter.
Disclosed examples may include a system comprising a series of restrictions disposed at at least one specific location within the interior of a tubular. The series of restrictions produces a unique profile on the surface of the interior of the tubular. As a downhole device traverses the series of restrictions, the pressure within the tubular is changed in a specific pattern corresponding to the specific series of restrictions. This pattern of pressure change may be measured by pressure sensing equipment, and the pressure sensing equipment may generate a signal corresponding to the measured pattern of pressure change. The generated signal may correspond with the known pressure signature for the specific series of restrictions. Therefore, when the pressure sensing equipment measures a pattern of pressure change corresponding to a known pressure signature for a specific series of restrictions, an operator will then know that the downhole device passed through that specific series of restrictions at the time the pattern of pressure change was observed. An operator may then chart the downhole device's progress as it is displaced within the tubular. Further, a plurality of series of restrictions may be used within a tubular or a series of tubulars. Each series of restrictions is unique and produces a unique profile on the surface of the interior of the tubular. As described above, a pattern of pressure change is generated as a downhole device traverses each series of restrictions, and as each series of restrictions is unique, so too is the pattern of pressure change generated from the downhole device traversing a series of restrictions. As the unique pressure signature for each series of restrictions is known, when the signal generated by the pressure sensing equipment matches a known pressure signature, an operator will know the specific series of restrictions that the downhole device has just traversed as well as which, if any, series of restrictions the downhole device has yet to traverse.
Advantageously, the system allows a downhole device to be tracked as it is displaced within a tubular. Further, the system does not require modification of the downhole device in order to track the location of the downhole device. For example, the system does not require that the downhole device be attached to a wire or cable. As another example, the system does not require that the downhole device be modified such that it may deform as it is displaced in the tubular. Further advantageously, the system may utilize as many series of restrictions as desired, allowing an operator to tailor the depths at which the downhole device may be tracked, as well as the frequency of measurements used to track the downhole device.
Disclosed examples comprise a tubular with at least one series of restrictions located at a specific location on the interior surface within the interior of a tubular.
In examples, a series of restrictions (e.g., the first series of restrictions 15 and the second series of restrictions 20 as illustrated in
The series of restrictions may be disposed within a tubular (e.g., tubular 10 as illustrated in
As discussed above, the series of restrictions may be placed in a pre-existing tubular (e.g., tubular 10 as illustrated in
Surface casing 45 and surface cement sheath 50 further surround tubular 10 and aid in securing tubular 10 within wellbore 35. Downhole device 55 may be introduced into wellbore 35 via tubular 10. Downhole device 55 may be any downhole device for use in a wellbore. For example, downhole device 55 may include, but is not limited to, plugs, darts, balls, and the like. As downhole device 55 is displaced in the wellbore, downhole device 55 traverses a first series of restrictions 15 disposed within tubular 10 at depth of 1,000 feet. Pressure sensor 60 senses the pattern of change in pressure within the tubular 10 as downhole device 55 traverses the first series of restrictions 15. Using a transducer, pressure sensor 60 generates a signal output of the pattern of pressure change. The pattern of pressure change is compared with the known pressure signature for the first series of restrictions 15. If the known pressure signature corresponds with the measured pattern of pressure change, the operator will know that the downhole device 55 has passed the first series of restrictions 15 and consequently has passed the depth of 1,000 feet.
Pressure sensor 60 may be any pressure sensor suitable for sensing the pressure within tubular 10. In some examples, pressure sensor 60 may also comprise a transducer sufficient to generate an output signal corresponding to the sensed pressure. Generally the pressure sensor may be any type of downhole gauge that is hermetically sealed and is sufficient for measuring the tubing pressure and changes within the tubing pressure.
Restriction systems are provided. An example restriction system comprises a tubular comprising at least one series of restrictions disposed on an interior surface of the interior of the tubular; a pressure sensor configured to measure the tubular pressure; and a downhole device capable of traversing the series of restrictions. The restriction system may further comprise a second series of restrictions on an interior surface of the interior of the tubular, wherein the second series of restrictions is disposed on an interior surface of the interior of the tubular at a different location from the first series of restrictions, wherein the second series of restrictions comprises a different pattern of restrictions from the first series of restrictions. The tubular may be a drill pipe, drill collar, pup joint, casing, production tubing, pipeline, or a combination thereof. The downhole device may be a plug, dart, or ball. The at least one series of restrictions may comprise a degradable plastic or metal. The at least one series of restrictions may comprise at least two metals capable of forming a galvanic couple. The at least one series of restrictions may be electrodeposited on the interior surface of the interior of the tubular.
Tubulars comprising series of restrictions are provided. An example tubular comprises at least one series of restrictions disposed on an interior surface of the interior of the tubular, and a pressure sensor disposed on an interior surface of the interior of the tubular. The tubular may further comprise a second series of restrictions on an interior surface of the interior of the tubular, wherein the second series of restrictions is disposed on an interior surface of the interior of the tubular at a different location from the first series of restrictions, wherein the second series of restrictions comprises a different pattern of restrictions from the first series of restrictions. The tubular may be a drill pipe, drill collar, pup joint, casing, production tubing, pipeline, or a combination thereof. A downhole device may be disposed within the interior of the tubular. The downhole device may be a plug, dart, or ball. The at least one series of restrictions may comprise a degradable plastic or metal. The at least one series of restrictions may comprise at least two metals capable of forming a galvanic couple. The at least one series of restrictions may be electrodeposited on the interior surface of the interior of the tubular.
Methods of tracking a downhole device as it is displaced in a tubular are provided. An example method comprises providing a tubular comprising at least one series of restrictions disposed on an interior surface of the interior of the tubular, and a pressure sensor disposed on an interior surface of the interior of the tubular. The example method further comprises introducing a downhole device into the tubular and measuring the pressure within the tubular as the downhole device traverses the at least one series of restrictions. The tubular may further comprise a second series of restrictions on an interior surface of the interior of the tubular, wherein the second series of restrictions is disposed on an interior surface of the interior of the tubular at a different location from the first series of restrictions, wherein the second series of restrictions comprises a different pattern of restrictions from the first series of restrictions. The tubular may be a drill pipe, drill collar, pup joint, casing, production tubing, pipeline, or a combination thereof. The downhole device may be a plug, dart, or ball. The at least one series of restrictions may comprise a degradable plastic or metal. The at least one series of restrictions may comprise at least two metals capable of forming a galvanic couple. The at least one series of restrictions may be electrodeposited on the interior surface of the interior of the tubular.
Therefore, the disclosed systems and methods are well adapted to attain the ends and advantages mentioned, as well as those that are inherent therein. The particular examples disclosed above are illustrative only, as the teachings of the present disclosure may be modified and practiced in different but equivalent manners apparent to those skilled in the art having the benefit of the teachings herein. Furthermore, no limitations are intended to the details of construction or design herein shown other than as described in the claims below. It is therefore evident that the particular illustrative examples disclosed above may be altered, combined, or modified, and all such variations are considered within the scope of the present disclosure. The systems and methods illustratively disclosed herein may suitably be practiced in the absence of any element that is not specifically disclosed herein and/or any optional element disclosed herein.
Although the present disclosure and its advantages have been described in detail, it should be understood that various changes, substitutions and alterations can be made herein without departing from the spirit and scope of the disclosure as defined by the following claims.
Filing Document | Filing Date | Country | Kind |
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PCT/US16/30112 | 4/29/2016 | WO | 00 |