Multi-zone single trip completion system
11629580 · 2023-04-18
Assignee
Inventors
Cpc classification
E21B34/14
FIXED CONSTRUCTIONS
E21B34/10
FIXED CONSTRUCTIONS
E21B33/124
FIXED CONSTRUCTIONS
International classification
E21B33/124
FIXED CONSTRUCTIONS
E21B34/10
FIXED CONSTRUCTIONS
Abstract
A multi-zone, one trip completion system for a wellbore is described. A plurality of isolation packers is installed in borehole to isolate a plurality of zones of the annulus between a tubing string and a wellbore. Each tubing string section is positioned in a zone and comprises a selectively openable stimulation port to provide stimulation fluid to its zone and a selectively openable production port to receive fluid from its zone. The system also comprises a circulation system with a plurality of circulation tubes and circulation tube valves, being configurable in a plurality of configurations to selectively connect, via a circulation flow path, the central bore or the borehole annulus of a wellbore at each of the plurality of sections, to an upper circulation flow path open to an annulus above an uppermost of the plurality of isolation packers.
Claims
1. A method of operating a multizone single trip completion system, comprising: installing a tubing string in a wellbore, defining a borehole annulus between the tubing string and the wellbore, the tubing string having a central bore and a plurality of sections, providing each a section being with a selectively openable stimulation port assembly and a selectively openable production port assembly; isolating a plurality of zones along the borehole annulus using isolation packers, a respective zone being associated with a corresponding section positioned adjacent to the respective zone; installing along the tubing string a circulation system comprising a plurality of circulation tubes with circulation ports and circulation tube valves; providing isolation valves to separate the circulation system into segments, each segment being associated with the respective zone; providing in the borehole annulus, along the tubing string, a circulation control line adapted to configure the circulation system in a selected configuration; and providing in the borehole annulus, along the tubing string, a production control line adapted to configure the production port assembly and the stimulation port assembly in the selected configuration; and operating the multizone single trip completion system in the selected configuration.
2. The method of claim 1, wherein operating the multizone single trip completion system in the selected configuration comprises configuring the circulation ports and circulation tube valves over the circulation control line, to create a circulation flow path to pump an activation device.
3. The method of claim 1, wherein operating the multizone single trip completion system in the selected configuration comprises configuring the circulation ports and circulation tube valves over the circulation control line, to create a circulation flow path to route fluids into the annulus to dehydrate a pack.
4. The method of claim 1, wherein operating the multizone single trip completion system in the selected configuration comprises configuring the circulation ports and circulation tube valves over the circulation control line, to create a dehydration circulation flow path to apply pressure down the central bore or annulus.
5. The method of claim 1, wherein operating the multizone single trip completion system in the selected configuration comprises configuring the circulation ports and circulation tube valves over the circulation control line, to create a circulation path to reverse-out excess fluid.
6. The method of claim 1, wherein operating the multizone single trip completion system in the selected configuration comprises configuring the circulation ports and circulation tube valves over the circulation control line, to create a circulation path that maintains zonal isolation.
7. The method of claim 1, wherein operating the multizone single trip completion system in the selected configuration comprises configuring the circulation ports and circulation tube valves over the circulation control line, to provide selective access to different zones for multi-zone gravel packing and completion.
8. The method of claim 1, wherein operating the multizone single trip completion system in the selected configuration comprises configuring the production port assembly and the stimulation port assembly over the production control line.
9. The method of claim 1 wherein operating the multizone single trip completion system in the selected configuration comprises selectively connecting, via a circulation flow path, the central bore or the borehole annulus at each of the plurality of sections, to an upper circulation flow path open to an annulus above an uppermost of the isolation packers.
10. The method of claim 1 wherein operating the multizone single trip completion system in the selected configuration comprises selectively isolating the circulation tubes below an isolation valve of the isolation valves from the circulation tubes above said isolation valve.
11. The method of claim 10, wherein operating the multizone single trip completion system in the selected configuration comprises positioning a circulation tube of the circulation tubes below the isolation valve to enable to isolate the circulation tubes at, and above the respective zone from circulation tubes below the respective zone.
12. The method of claim 11, wherein positioning the isolation valve comprises incorporating the isolation valve in a packer at a lower side of the respective zone to close off a circulation flow path proximate to that packer.
13. The method of claim 1, wherein operating the multizone single trip completion system comprises configuring the multizone completion system in a run-in configuration, a stimulation configuration, a dehydration configuration, and a reverse circulation configuration, without intervention of a service tool.
14. The method of claim 1, wherein operating the multizone single trip completion system comprises providing a circulation flow path adapted to enable pumping down an activation device through the central bore without bull-heading fluids into the borehole annulus.
15. The method of claim 13, wherein in the dehydration configuration, a circulation flow path provides a dehydration flow path for dehydrating a gravel pack without using service tools.
16. The method of claim 13, wherein in the circulation system is configurable to reverse-out excess fluid.
17. The method of claim 13, further comprising configuring the circulation system to provide a live annulus.
18. The method of claim 1, wherein operating the multizone single trip completion system in the selected configuration is performed without a service tool run from surface.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) It is to be understood that other aspects of the present invention will become readily apparent to those skilled in the art from the following detailed description, wherein various embodiments of the invention are shown and described by way of illustration. As will be realized, the invention is capable of other and different embodiments and its several details are capable of modification in various other respects, all within the present invention. Accordingly, the drawings and detailed description are to be regarded as illustrative in nature and not as restrictive.
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DETAILED DESCRIPTION
(16) This disclosure and the various features and advantageous details thereof are explained more fully with reference to the non-limiting embodiments that are illustrated in the accompanying drawings and detailed in the following description. Descriptions of well-known starting materials, processing techniques, components and equipment are omitted so as not to unnecessarily obscure the disclosure in detail. Skilled artisans should understand, however, that the detailed description and the specific examples, while disclosing preferred embodiments, are given by way of illustration only and not by way of limitation. Various substitutions, modifications, additions or rearrangements within the scope of the underlying inventive concept(s) will become apparent to those skilled in the art after reading this disclosure. Furthermore, any dimensions provided are provided by way of example and not limitation.
(17) As indicated above, the embodiments described herein provide a multi-zone completion system that can reduce the number of trips and the associated costs and risks required to install and/or operate the multi-zone systems. According to one embodiment, this multi-zone completion system comprises a tubular system with a circulation system having one or more circulation tubes and circulation tube valves. The circulation system is configurable to provide circulation flow paths for fluid flow and pressure transmission.
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(20) In
(21) The system 10 uses isolation packers 21 to isolate a plurality of zones of a borehole annulus 14; the packers 21 that are placed in the open hole zone are referred to as “open bore” packers 21a, and packers placed in the cased bore zone, are referred to as “cased bore” packers 21b.
(22) Each section comprises a selectively openable production port assembly 28′, seen in
(23) As indicated above, the circulation tubes 13 and the valves 15 are designed to form circulation paths of various configurations. The valves 15 allow communication between the central bore 12 and the circulation flow paths and between the borehole annulus 14b and circulation flow paths through circulation tube ports 16 provided in selected parts of the circulation system 20.
(24) The multi-zone completion system 10 further includes circulation tube isolation sleeves/valves 19. The isolation sleeves 19 are adapted to prevent the currently treated zone from communicating with the other zones via the respective circulation tube. These sleeves are selectively configurable to isolate a certain circulation flow path from circulation tubes below the circulation tube isolation valve.
(25) The circulation tube isolation valves/sleeves 19 can be activated by hydraulic or electric signals via a control line 22 to selectively isolate circulation tubes 13 below the isolation sleeve 19 from isolation tubes above the sleeve 19. In particular, the circulation tube isolation sleeves 19 may be positioned such that the circulation tubes 13 at and above an active zone of interest (i.e. a zone currently being treated) can be isolated from circulation tubes below the zone of interest. Thus, as illustrated in
(26) As such, the isolation sleeves 19 may isolate other zones from the circulation flow path when a particular stage is being completed, along with the circulation tube valves 15, which are also configurable to maintain zonal isolation during stimulation, dehydration, reverse circulation and other processes.
(27) The production port assembly 28′, provided in each section 50, 60 includes the respective production port 28 and a production sleeve 17 for each port 28, which channels the fluids during the dehydration and production steps, which with isolation sleeves/valves 19, control or regulate fluid flow across multiple zones along the length of circulation system 20. Ports 28 can be selectively opened during operation to provide fluid communication between the borehole annulus 14b and central bore 12 of the multi-zone completion system 10.
(28) Each of the production port assembly 28′ sliding sleeve 17 that can be opened by hydraulic or electrical control, e.g., via the production sleeve control line 18. The production port assembly 28′ may also include inflow control devices (ICDs) 35, shown on
(29) Various sections of the multi-zone completion system between the isolation packers 21 include tools to stimulate a corresponding zone of interest and receive produced hydrocarbons from the corresponding zone of interest. A stimulation port assembly 29′ also referred to as a “stimport” assembly, includes a stimulation port 29 and a stimulation port sleeve 25, shown e.g. in
(30) In the multi-zone completion system 10, the isolation packers 21 are “feed-through” or “FT” packer assemblies. For purposes of this disclosure, “feed-through” refers to assemblies that have the capability to allow circulation fluid to pass through the isolation FT packer without breaking zonal isolation. These packer assemblies have a mechanism to route the fluids from the circulation system 20 through the packer. In some implementations, these packers 21 can also function as the production packers.
(31) The multi-zone completion system 10 may include one or more cased hole isolation packers 21b. The cased hole packers 21b function as the top anchoring point during the treatments.
(32) Open hole isolation FT packers 21a include slip assemblies and seals (not shown) as well as other devices that are known to those skilled in the art for providing a sealing and gripping relationship between the multi-zone completion system 10 and the central bore 12. Additionally, the isolation FT open hole packer 21a may be any type of packer, such as mechanically set, hydraulically set or hydrostatically set packers as well as a swellable packer, for example.
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(34) Similarly, the isolation FT packers 21 may be set between in a cased hole in cased wells. As the open hole FT packers, the cased hole packers 21b, can be the isolation FT packers or production packers, and they could be mechanically set, hydraulically set or hydrostatically set packers as well as a swellable packer, for example. The packers 21 can be set based on a pressure signal, for example responsive to pressure applied to the annulus, pressure applied to the central bore 12, or a differential pressure between the annulus and central bore 12 or other signals.
(35) The multi-zone completion system 10 may also include one or more FT anchor packers 23, as shown in
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(37) Preferably, the multi-zone completion system 10 may also include hydraulic and or electrical systems not shown on
(38) The multi-zone completion system 10 may include one or more inflow and outflow control devices (ICD's/OCD's), shown on
(39) According to one embodiment, the tubular system includes a feature that allows the circulation tubes to fill automatically with wellbore fluid as they are run into the wellbore.
(40) The multi-zone single trip completion system 10 can be installed in cased holes or open holes without any planned service tool intervention. Still further, one embodiment of a multi-zone single trip completion system 10 can combine both lower and upper completion in a single trip.
(41) During run in, fluid can be circulated through the central bore 12, out the toe circulation ports 42, 42′ and up the borehole annulus 14b. At its downhole end, shown in some details on
(42) The toe circulation assembly 40 includes one or more circulation tubes 13 and circulation tube valves 15a, 15b to provide a toe circulation assembly circulation flow path that can be selectively connected to the central bore 12 via a plurality of circulation ports 16. The circulation tube valves 15a, 15b, also referred to as check valves, selectively allow flow through the circulation ports 16 from the central bore 12 to the circulation tubes 13. In the embodiment illustrated, the shift sleeve 45 of the toe circulation assembly 40 shifts responsive to pressure signals, such as for example responsive to pressure applied to the annulus, pressure applied to the central bore 12, a differential pressure between the annulus and central bore 12 or other signals. The shift sleeve 45 and check sleeve 47, as discussed in more detail below, can be selectively movable to cover or expose circulation ports 16.
(43) By setting the valves 15 and sleeves 17, 19 and 25, the circulation system 20 can assume, as indicated above, a plurality of fluid path configurations. Thus, the system can provide a direct path circulation configuration, when the fluid circulates down the central bore 12 and up an annulus/circulation path provided by the circulation system, or a reverse path circulation configuration, when the fluid circulates down an annulus/circulation path and up the central bore 12.
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(46) The production port assembly 28′ may also include dehydration valves 49a, 49b that selectively open to route fluid that passes through the screen 33 into the circulation tubes 13. A dehydration valve 49 used during the dehydration process, may have a releasable setting mechanism, such as one or more shear pins, that holds the dehydration valve closed against pressure from the annulus until a force on the dehydration valve overcomes the holding force of the releasable setting mechanism. Thus, the dehydration valve 49 may be held closed until certain conditions are met. Each dehydration valve 49 may be a check valve that allows fluid to flow into the circulation tubes 13 but does not allow flow out of the circulation tube 13 through the valve 49 and into the screen 33. Furthermore, the dehydration assembly circulation flow path can be selectively connected to circulation flow paths from sections above or below that production assembly. For example, a circulation tube isolation sleeve can be activated to selectively isolate the production assembly circulation flow path from circulation tubes 13 of a downhole section.
(47) The stimulation port assembly 29′ includes one or more circulation tubes 13 and one or more circulation tube valves 15 to provide a circulation system stimulation flow path that can be selectively connected to the central bore 12 via one or more circulation ports 16. The circulation tube isolation valves 19 selectively allow flow through a circulation ports 16 from the central bore 12 to the circulation system stimulation flow path. The circulation tube isolation sleeve 19 shifts to isolate a stimulation port assembly circulation tube 13 from a downhole circulation tube 13 and open a circulation port to allow flow between the central bore 12 and the upper stimulation port assembly circulation tube. In one embodiment, the frac sleeve of assembly 29′ may be coupled to or act as a circulation tube valve to selectively isolate the upper circulation tube 13 from the lower circulation tube 13 or to selectively expose a circulation tube to allow between the central bore 12 and a circulation tube.
(48) The first section 50 shown in
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(50) The multi-zone completion system may include one or more blanks that simply enable the central bore 12 and circulation path to connect to sections above and below the blank. As would be understood to those in the art, a blank may be joint of pipe without any screen that is used to achieve spacing between zones or additional room that acts as a buffer in the event that sand settles proximate to the screen. For example, one or more blanks can be located between a port and a screen.
(51) Also, the multi-zone completion system 10 may include additional or alternative tools to those illustrated. Although not illustrated in
(52) As mentioned above, the circulation system 20 is configurable in a plurality of configurations. The plurality of configurations may include one or more of:
(53) a running-in flow path configuration in which the circulation flow path provides for circulation of fluid to allow an activation device to be pumped down a central bore 12 without bull-heading fluids into the annulus; a dehydration flow path configuration in which the circulation flow path provides a dehydration flow path for dehydrating a gravel pack without using service tools; a reverse flow path configuration whereby the excess fluid is extracted without using service tools; a stimulation flow path configuration that enables treatments such as fracking and a live annulus.
(54) Each of the plurality of configurations can further maintain zonal isolation between an active zone and other zones.
(55) In
(56) In
(57) With reference to
(58) As illustrated in
(59) Stimulation fluid is pumped down the central bore 12 and flows out of the stimulation ports 29 above the seated activation device 43 to stimulate the zone of interest, as shown by the dotted line in
(60) The dehydration valves 49 of a production port assembly 28′ may be progressive dehydration valves, meaning that the dehydration valves are configured to open under different conditions. According to one embodiment, the lower dehydration valve 49a can be configured to open at a lower pressure (and hence earlier) than an upper dehydration valve 49b in the same section. For example, the upper dehydration valve 49b of
(61) In this example, with the lower dehydration valve 49a open, the circulation path thus runs from the third circulation tube port 16c to the casing annulus 14a, but is otherwise isolated from the central bore 12 and borehole annulus 14b, as shown in FIG. B. Thus, the only openings to the circulation flow path are at the casing annulus 14a (above the FT cased hole packer assembly 30), and at the zone of interest between the two isolation packers assemblies 30, 30′ that isolate the zone of interest. If the annulus valve 51 is closed as illustrated in
(62) With reference to
(63) As discussed above, the upper dehydration valve 49b of
(64) With reference to
(65) In the reverse-out phase, the stimulation ports 29 are closed. Pressure can be applied down the annulus 14b to cause the stimport frac sleeve 25 to shift further down. It can be noted that in such an embodiment, the stimport frac sleeve 15 shifts downward to both open and close the stimulation ports.
(66) As the stimport frac sleeve 25 shifts down, the stimulation assembly upper circulation tube 13c is isolated from the stimulation assembly lower circulation tube 13a, thus isolating the circulation flow path from lower circulation tubes. Moreover, shifting the stimport frac sleeve 25 can expose a fifth circulation tube port 16e and opens a production sleeve 17 such that the pressure applied to the central bore 12 or annulus can trigger the production sleeve 17 to open. In the configuration of
(67) As illustrated in
(68) A similar procedure as discussed above in conjunction with
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(70) The second section 60 may also be dehydrated and reversed-out.
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(74) As can be understood from the foregoing, a multi-zone completion system can be installed in a single trip. Moreover, various completion processes can be completed without requiring a service tool trip.
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(76) The multi-zone completion system 10 is run in a hole (RIH) for example, using a configuration as shown in
(77) Circulation tubes provide an alternate fluid path to enable reverse circulation of fluids inside the wellbore. Reverse circulation helps recovering from screen-out conditions, by flushing the excess sand out from the wellbore.
(78) A fracking sleeve 14 is actuated by ball-drop technique during the fracturing. Sleeve 17 in communication with fracking sleeve 25 is enabled to channel the flow of fluids during dehydration and production steps. A zone sleeve 24 controls or regulates fluid flow across multiple zones along the length of the circulation system 20. The zone sleeve 24 isolates other zones from the circulation flow path when a particular stage is being completed.
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(84) As used herein, the terms “comprises,” “comprising,” “includes,” “including,” “has,” “having” or any other variation thereof, are intended to cover a non-exclusive inclusion. For example, a process, product, article, or apparatus that comprises a list of elements is not necessarily limited only to those elements but may include other elements not expressly listed or inherent to such process, product, article, or apparatus. Further, unless expressly stated to the contrary, “or” refers to an inclusive or and not to an exclusive or. For example, a condition A or B is satisfied by any one of the following: A is true (or present) and B is false (or not present), A is false (or not present) and B is true (or present), and both A and B are true (or present).
(85) Additionally, any examples or illustrations given herein (including in any Appendix) are not to be regarded in any way as restrictions on, limits to, or express definitions of, any term or terms with which they are utilized. Instead, these examples or illustrations are to be regarded as being described with respect to one particular embodiment and as illustrative only. Those of ordinary skill in the art will appreciate that any term or terms with which these examples or illustrations are utilized will encompass other embodiments which may or may not be given therewith or elsewhere in the specification and all such embodiments are intended to be included within the scope of that term or terms. Language designating such nonlimiting examples and illustrations includes, but is not limited to: “for example,” “for instance,” “e.g.,” “in one embodiment.”
(86) Benefits, other advantages, and solutions to problems have been described above with regard to specific embodiments. However, the benefits, advantages, solutions to problems, and any component(s) that may cause any benefit, advantage, or solution to occur or become more pronounced are not to be construed as a critical, required, or essential feature or component.
(87) Reference throughout this specification to “one embodiment”, “an embodiment”, or “a specific embodiment” or similar terminology means that a particular feature, structure, or characteristic described in connection with the embodiment is included in at least one embodiment and may not necessarily be present in all embodiments. Thus, respective appearances of the phrases “in one embodiment”, “in an embodiment”, or “in a specific embodiment” or similar terminology in various places throughout this specification are not necessarily referring to the same embodiment. Furthermore, the particular features, structures, or characteristics of any particular embodiment may be combined in any suitable manner with one or more other embodiments. It is to be understood that other variations and modifications of the embodiments described and illustrated herein are possible in light of the teachings herein and are to be considered as part of the spirit and scope of the invention.
(88) In the description herein, numerous specific details are provided, such as examples of components and/or methods, to provide a thorough understanding of embodiments of the invention. One skilled in the relevant art will recognize, however, that an embodiment may be able to be practiced without one or more of the specific details, or with other apparatus, systems, assemblies, methods, components, materials, parts, and/or the like. In other instances, well-known structures, components, systems, materials, or operations are not specifically shown or described in detail to avoid obscuring aspects of embodiments of the invention. While the invention may be illustrated by using a particular embodiment, this is not and does not limit the invention to any particular embodiment and a person of ordinary skill in the art will recognize that additional embodiments are readily understandable and are a part of this invention.
(89) Although the invention has been described with respect to specific embodiments thereof, these embodiments are merely illustrative, and not restrictive of the invention. Rather, the description is intended to describe illustrative embodiments, features and functions in order to provide a person of ordinary skill in the art context to understand the invention without limiting the invention to any particularly described embodiment, feature or function. While specific embodiments of, and examples for, the invention are described herein for illustrative purposes only, various equivalent modifications are possible within the spirit and scope of the invention, as those skilled in the relevant art will recognize and appreciate. As indicated, these modifications may be made to the invention in light of the foregoing description of illustrated embodiments of the invention and are to be included within the spirit and scope of the invention. Thus, while the invention has been described herein with reference to particular embodiments thereof, a latitude of modification, various changes and substitutions are intended in the foregoing disclosures, and it will be appreciated that in some instances some features of embodiments of the invention will be employed without a corresponding use of other features without departing from the scope and spirit of the invention as set forth. Therefore, many modifications may be made to adapt a particular situation or material to the essential scope and spirit of the invention.