Not Applicable
Not Applicable
The present disclosure relates generally to the field of flow restriction devices located in a wellbore. More specifically, this disclosure relates to a method for modifying elements of flow restriction devices by wellbore intervention.
Flow restriction devices, which may include inflow control devices (ICDs), autonomous inflow control devices (AICDs), inflow control valves (ICVs) and choke devices, are commonly used in the oil and gas industry to regulate, control or restrict the amount of fluids, including hydrocarbons, water and gas that may flow into wellbore tubulars such as conduits, pipes, liners or casing. In particular, flow restriction devices may be used to optimize hydrocarbon production rates, reduce the recovery of water and gas from a reservoir and extend the useful life of a well. Flow restriction devices often include one or more valve assemblies, which include without limitation filters, chokes, tortuous paths, or similar means used to control or restrict fluid flow through the flow restriction device. Flow restriction devices known in the art encounter a number of limitations: they may be adapted to only operate within a given range of reservoir conditions, they may erode or fail, and they may become obsolete as the technology in the field continues to advance.
As reservoir conditions and production requirements change over time, flow restriction devices may fail or begin to perform at suboptimal levels. A method to remove, install, replace or plug off flow restriction devices would enable greater control and optimization of fluid flow, resulting in improved reservoir drainage and fluid injection during reservoir exploitation operations. As a result, the need exists for a method to perform such modification.
Aarbakke Innovation AS, Bryne, Norway, is developing one embodiment of a wellbore intervention tool, further described in International Application Publication No. WO 2015/175025, that is capable of performing in-well operations such as machining and milling through wellbore tubulars, e.g., liner or casing. This type of wellbore intervention tool may be adapted to remove an element of a flow restriction device, install a new element on a wellbore tubular, block an opening in the tubular annulus, and perform similar modification operations. Additionally, new wellbore intervention tool technology may see improved operation by means of a radial protrusion extending from the wellbore intervention tool, and may also contain flow restriction devices that may be installed downhole.
A method for modifying an element disposed at a first location on a wellbore tubular according to one aspect of the disclosure comprises positioning a wellbore intervention tool at the first location. The wellbore intervention tool comprises a housing and a penetration device. The penetration device is operated to remove the element and create an orifice on the wellbore tubular at the first location.
In some embodiments, the wellbore tubular further comprises one or more additional locations each having an element associated therewith, the method further comprising repositioning the wellbore intervention tool at the one or more additional locations and operating the penetration device to remove the element associated therewith and to create one or more orifices at the one or more additional locations.
In some embodiments, the element comprises a flow control device.
In some embodiments, the element comprises a valve.
Some embodiments further comprise operating an installation device on the wellbore intervention tool and installing a replacement element in the orifice.
In some embodiments, the element and the replacement element comprise at least one of a choke, a plug, a filter and a tortuous path.
In some embodiments, the element comprises at least one of a choke, a plug, a filter and a tortuous path.
In some embodiments, the penetration device comprises at least one of a mill and a drill.
A method according to another aspect for modifying an element on a wellbore tubular, wherein the wellbore tubular comprising an internal profile, comprises moving a wellbore intervention tool comprising a housing, a sensor, a radial protrusion and a penetration device along an interior of the wellbore tubular. At least one of the sensor and the radial protrusion is used to detect a first location proximate internal profile and stopping the wellbore intervention tool in the wellbore tubular when the first location is detected. The penetration device is operated to remove the element.
In some embodiments, the sensor comprises an optical imaging device or an acoustic imaging device.
In some embodiments, the sensor comprises a transmitter.
Some embodiments further comprise utilizing the sensor to transmit and receive information with respect to the location of the element.
In some embodiments, the radial protrusion comprises a suction device, the method further comprising utilizing the suction device to identify the location of the element.
In some embodiments, the radial protrusion comprises a flowmeter, the method further comprising utilizing the radial protrusion to determine the orientation of the element.
In some embodiments, the wellbore tubular further comprises one or more additional locations each having an element associated therewith, the method further comprising repositioning the wellbore intervention tool at the one or more additional locations using at least one of the sensor and the radial protrusion and operating the penetration device to remove the element associated therewith and to create one or more orifices at the one or more additional locations.
Some embodiments further comprise operating an installation device on the wellbore intervention tool and installing a replacement element in the orifice.
In some embodiments, the element and the replacement element comprise at least one of a choke, a plug, a filter and a tortuous path.
In some embodiments, the element comprises a flow control device.
In some embodiments, the element comprises a valve.
In some embodiments, the penetration device comprises at least one of a mill and a drill.
Other aspects and advantages will be apparent from the following description and appended claims.
The accompanying drawings, described below, illustrate example embodiments according to the present disclosure and are not to be considered limiting of the scope of the disclosure, for the disclosure may admit to other equally effective embodiments. The figures are not necessarily to scale, and certain features and certain views of the figures may be shown exaggerated in scale or in schematic in the interest of clarity and conciseness.
The intervention tool operator may position the wellbore intervention tool 18 axially in the wellbore tubular 15 so that the penetration device 22 is located adjacent to a flow control element 26 which may be located on the tubular 20. The wellbore intervention tool may be as further described in International Application Publication No. WO 2015/175025, incorporated herein by reference. In some embodiments, the flow control element 26 may be a valve assembly. In some embodiments, a plurality of the flow control elements 26 may be disposed at one or more locations on the tubular 20 where the intervention tool operator desires to install one or more replacement flow control elements 27. By way of example and without limitation, the one or more replacement flow control elements 27 may be chokes, plugs, filters, tortuous paths, or other well-known devices used to control or restrict fluid flow. In the present example embodiment, the wellbore intervention tool 18 may have the replacement flow control element onboard for eventual disposal into the wellbore tubular 15. Once the wellbore intervention tool 18 has been positioned to locate the penetration device 22 adjacent to the flow control element 26, the penetration device 22 may be urged radially outwardly from the housing 23 by means including, without limitation, mechanical or hydraulic actuation to remove the flow control element 26. In some embodiments, the penetration device 22 may comprise a mill or drill bit to remove the flow control element 26 by milling or drilling. Once the removal operation has been performed, the penetration device 22 may be retracted into the housing 23. In the event the intervention tool operator wishes to remove more than one flow control element 26, the steps of positioning the wellbore intervention tool 18 and performing the removal operation may be repeated at multiple locations along the wellbore tubular 15.
The wellbore intervention tool 18 may include a sensor 30, which may be incorporated into the wellbore intervention tool 18 or may be coupled to the wellbore intervention tool 18. The sensor 30 may, without limitation, be a transmitter, an optical imaging device, a pin and position sensor or an acoustic imaging device, and may comprise a camera or transducer. The sensor 30 may be utilized to facilitate the intervention tool operator's navigation of the wellbore intervention tool 18 to a desired location proximate the flow control element 26. In some embodiments, the sensor 30 may provide optical or acoustic imaging information to detect the location of the flow control element 26. In other embodiments, the sensor 30 may transmit and receive information with respect to the location of the flow control element 26.
Although only a few examples have been described in detail above, those skilled in the art will readily appreciate that many modifications are possible in the examples. Accordingly, all such modifications are intended to be included within the scope of this disclosure as defined in the following claims.
Continuation of International Application No. PCT/IB2019/054115 filed on May 18, 2019. Priority is claimed from U.S. Provisional Application No. 62/676,303 filed on May 25, 2018. Both the foregoing applications are incorporated herein by reference in their entirety.
Number | Date | Country | |
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62676303 | May 2018 | US |
Number | Date | Country | |
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Parent | PCT/IB2019/054115 | May 2019 | US |
Child | 17093198 | US |