TRIGGER SYSTEM FOR A DOWNHOLE TOOL
20240183237 ยท 2024-06-06
Inventors
- Yann Dufour (Houston, TX, US)
- Oguzhan Guven (Bellaire, TX, US)
- Kaiyang Kevin Liew (Houston, TX, US)
- Frederic Levesque (Sugar Land, TX, US)
- Maria-Fernanda Tafur (Houston, TX, US)
Cpc classification
E21B23/0412
FIXED CONSTRUCTIONS
E21B23/042
FIXED CONSTRUCTIONS
International classification
Abstract
A trigger system for use with a downhole tool. The trigger system may include a first housing forming a first pressure chamber at a first pressure and including a membrane positioned in a wall of the first housing, a piston disposed at least partially within the first housing and shiftable from an initial position to an actuated position to actuate the downhole tool, and a trigger. The trigger may include a second housing sealed against the first housing proximate the membrane to form a second pressure chamber at a second pressure and a rupturing member positioned within the second housing and operable to pierce the membrane to balance the pressures within the first housing and the second housing and shift the piston from the initial position to the actuated position.
Claims
1. A trigger system for use with a downhole tool, the trigger system comprising: a first housing forming a first pressure chamber at a first pressure, the first housing comprising a first membrane positioned in a wall of the first housing; a piston disposed at least partially within the first housing, the piston shiftable from an initial position to an actuated position to actuate the downhole tool; and a first trigger comprising: a second housing sealed against the first housing proximate the first membrane to form a second pressure chamber at a second pressure; and a first rupturing member positioned within the second housing and operable to pierce the first membrane to balance the pressures within the first housing and the second housing and shift the piston from the initial position to the actuated position.
2. The trigger system of claim 1, wherein the first pressure is greater than the second pressure.
3. The trigger system of claim 1, wherein the second pressure is greater than the first pressure.
4. The trigger system of claim 1, wherein the first housing further comprises a second membrane positioned in the wall of the first housing and the trigger system further comprises a second trigger comprising a third housing sealed against the first housing proximate the second membrane to form a third pressure chamber at a third pressure; and a second rupturing member positioned within the third housing and operable to pierce the first membrane to balance the pressures within the first housing and the third housing and shift the piston from the initial position to the actuated position.
5. The trigger system of claim 4, wherein at least one of the first rupturing member or the second rupturing member is operable via hydraulic pressure.
6. The trigger system of claim 4, wherein at least one of the first rupturing member or the second rupturing member is operable via a mechanical actuator.
7. The trigger system of claim 4, wherein at least one of the first rupturing member or the second rupturing member is operable via an electronic actuator.
8. The trigger system of claim 4, wherein the second pressure is approximately equal to the third pressure.
9. The trigger system of claim 4, wherein the first trigger and the second trigger are independent of each other.
10. The trigger system of claim 4, wherein the first housing further comprises a third membrane positioned in the wall of the first housing and the trigger system further comprises a third trigger comprising a fourth housing sealed against the first housing proximate the third membrane to form a fourth pressure chamber at a fourth pressure; and a third rupturing member positioned within the fourth housing and operable to pierce the first membrane to balance the pressures within the first housing and the fourth housing and shift the piston from the initial position to the actuated position.
11. The trigger system of claim 10, wherein the second pressure, the third pressure, and the fourth pressure are approximately equal to each other.
12. The trigger system of claim 10, wherein the first trigger, the second trigger, and the third trigger are independent of each other.
13. A completion system comprising: a well string; a downhole tool operatively coupled to the well string; and a trigger system operatively coupled to the downhole tool, the trigger system comprising: a first housing forming a first pressure chamber at a first pressure, the first housing comprising a first membrane positioned in a wall of the first housing; a piston disposed at least partially within the first housing, the piston shiftable from an initial position to an actuated position to actuate the downhole tool; and a first trigger comprising: a second housing sealed against the first housing proximate the first membrane to form a second pressure chamber at a second pressure; and a first rupturing member positioned within the second housing and operable to pierce the first membrane to balance the pressures within the first housing and the second housing and shift the piston from the initial position to the actuated position.
14. The completion system of claim 13, wherein the downhole tool comprises at least one of an isolation valve or a packer.
15. The completion system of claim 13, wherein the first housing further comprises a second membrane positioned in the wall of the first housing and the trigger system further comprises a second trigger comprising a third housing sealed against the first housing proximate the second membrane to form a third pressure chamber at a third pressure; and a second rupturing member positioned within the third housing and operable to pierce the first membrane to balance the pressures within the first housing and the third housing and shift the piston from the initial position to the actuated position.
16. The completion system of claim 15, wherein at least one of the first rupturing member or the second rupturing member is operable via hydraulic pressure.
17. The completion system of claim 15, wherein at least one of the first rupturing member or the second rupturing member is operable via a mechanical actuator.
18. The completion system of claim 15, wherein at least one of the first rupturing member or the second rupturing member is operable via an electronic actuator.
19. A method of producing a well comprising: running a well string comprising a downhole tool and a trigger system into the well; rupturing a membrane separating a first housing of the trigger system at a first pressure and a second housing of the trigger system at a second pressure to balance the pressures in the first housing and the second housing to shift a piston of the trigger system from an initial position to an actuated position; and actuating the downhole tool via the shifted piston.
20. The method of claim 19, wherein rupturing the membrane comprises operating a rupturing member positioned within the second housing to rupture the membrane.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0008] Certain embodiments of the disclosure will hereafter be described with reference to the accompanying drawings, wherein like reference numerals denote like elements. It should be understood, however, that the accompanying figures illustrate the various implementations described herein and are not meant to limit the scope of various technologies described herein, and:
[0009]
[0010]
[0011]
[0012]
[0013]
DETAILED DESCRIPTION
[0014] In the following description, numerous details are set forth to provide an understanding of some embodiments of the present disclosure. However, it will be understood by those of ordinary skill in the art that the system and/or methodology may be practiced without these details and that numerous variations or modifications from the described embodiments may be possible.
[0015] In the specification and appended claims, the terms connect, connection, connected, in connection with, and connecting, are used to mean in direct connection with, in connection with via one or more elements. The terms couple, coupled, coupled with, coupled together, and coupling are used to mean directly coupled together, or coupled together via one or more elements. The term set is used to mean setting one element or more than one element. As used herein, the terms up and down, upper and lower, upwardly and downwardly, upstream and downstream, uphole and downhole, above and below, top and bottom, and other like terms indicating relative positions above or below a given point or element are used in this description to more clearly describe some embodiments of the disclosure. Commonly, these terms relate to a reference point at the surface from which drilling operations are initiated as being the top point and the total depth being the lowest point, wherein the well (e.g., wellbore, borehole) is vertical, horizontal, or slanted relative to the surface.
[0016] The present disclosure generally relates to systems and methods that facilitate actuation of an isolation valve or other downhole device. According to one or more embodiments of the present disclosure, an isolation valve includes an isolation valve member, e.g., a ball valve element, which may be actuated between positions. For example, the isolation valve member may be actuated between closed and open positions by a mechanical section having a shifting linkage.
[0017] In one or more embodiments of the present disclosure, actuation of the mechanical section, and thus actuation of the isolation valve member, is achieved by a redundant trigger system controlled according to a signal, which may be applied from the surface or from another suitable location. Indeed, one way to increase the reliability of remote opening of the isolation valve member is to introduce redundancy into the mechanism via the redundant trigger system according to one or more embodiments of the present disclosure. Advantageously, the redundant trigger system according to one or more embodiments of the present disclosure provides two independent and equally reliable remote activation triggers, which may be installed simultaneously in a valve block of the redundant trigger system of the isolation valve. In one or more embodiments of the present disclosure, the first trigger may be a hydraulic trigger, and the second trigger may be an electronic trigger, for example. Other combinations are conceivable, and are within the scope of the present disclosure. For example, both triggers may be hydraulic triggers, or both triggers may be electronic triggers. Alternatively, the triggers may be any type of trigger. Additionally, although the redundant trigger system is described in relation to an isolation valve, the invention is not thereby limited. The redundant trigger may be used to actuate any type of downhole tool, for example, but not limited to, an ball valve, a sleeve valve, a flapper valve, or a packer.
[0018] Referring generally to
[0019] Depending on the specific well application, e.g., such as a well perforation application, the completion/well equipment 106 is delivered downhole via a suitable well string 116, e.g., a well completion string. However, the well string 116 and the components of completion 106 often vary substantially. In many applications, one or more packers 118 is used to isolate the annulus between downhole equipment 106 and the surrounding wellbore wall, which may be in the form of a liner or casing 120. The isolation valve 104 may be selectively actuated to open or isolate formation 110 with respect to flow of fluid through completion 106.
[0020] Referring now to
[0021] Still referring to
[0022] Still referring to
[0023] Referring now to
[0024] The trigger system 314 also includes one or more membranes 308 that isolate the pressure chamber 302 from additional pressure chambers 310 located within housings 312 of mechanical trigger 316 and the electrical trigger 318, respectively, that are sealed against the housing 300. In one embodiment, the pressures within the pressure chambers 310 of the triggers 316, 318 may be approximately equal and greater than the pressure within the housing 300. In other embodiments, the pressures within the pressure chambers 310 of the triggers 316, 318 may not be equal and/or one or both of the pressures within the pressure chambers 310 of the triggers 316, 318 may be less than the pressure within the housing 300.
[0025] Each trigger 316, 318 also includes a rupturing member 320 that extends through the adjacent membrane 308 upon the trigger 316, 318 receiving a control signal from the surface or from another location along a well string. Control signals may actuate each trigger 316, 318 independently or actuate both of the triggers 316, 318 at the same time. In operation, receipt of the control signal by the trigger system 314 may cause a mechanical actuator 322, such as a spring mechanism coupled to the rupturing member 320, to be activated, thereby shifting the rupturing member 320 to puncture the membrane 308. In the case of the electronic trigger 318, the control signal may initiate an electric current an electronic actuator, such as a bridge wire 324 that causes a detonation within the electrical trigger 318. The detonation causes the rupturing member 320 of the electronic trigger 318 to shift and puncture the membrane 308. In other embodiments, alternative types of mechanical and/or electronic actuation may be used to shift a rupturing member 320 to puncture a membrane 308.
[0026] Once a membrane 308 is ruptured, the pressures within the housing 300 and the pressure chamber 310 of the respective trigger 316, 318 balance, which causes either an increase or a decrease in the pressure within the housing 300, thereby shifting the piston 304 into an actuated position. The movement of the piston 304, in turn, causes the actuation of the downhole tool 306 either through a mechanical connection or a change in pressure within an actuator chamber 326 of the downhole tool 306.
[0027] As a non-limiting example, in the embodiment illustrated in
[0028] Turning now to
[0029] As a non-limiting example, in the embodiment illustrated in
[0030] Turning now to
[0031] As a non-limiting example, in the embodiment illustrated in
[0032] Although the above examples illustrate trigger systems having two triggers, the invention is not thereby limited. Trigger systems may include one, three, or more triggers without departing from the scope of this invention. Further, the individual triggers may be electronic, mechanical, hydraulic, or any combination thereof. Additionally, each trigger system may actuate one, two, or more downhole tools and/or devices without departing from the scope of this invention.
[0033] As used herein, a range that includes the term between is intended to include the upper and lower limits of the range; e.g., between 50 and 150 includes both 50 and 150. Additionally, the term approximately includes all values within 5% of the target value; e.g., approximately 100 includes all values from 95 to 105, including 95 and 105. Further, approximately between includes all values within 5% of the target value for both the upper and lower limits; e.g., approximately between 50 and 150 includes all values from 47.5 to 157.5, including 47.5 and 157.5.
[0034] Although a few embodiments of the disclosure have been described in detail above, those of ordinary skill in the art will readily appreciate that many modifications are possible without materially departing from the teachings of this disclosure. Accordingly, such modifications are intended to be included within the scope of this disclosure as defined in the claims.