None.
1. Field of the Disclosure
The present disclosure relates to oilfield downhole operations.
2. Description of the Related Art
Hydrocarbons, such as oil and gas, are typically recovered from subterranean formations via one or more wellbores that intersect such formations. After being drilled, a wellbore or “borehole,” may be completed using tubulars such as casing that are cemented in place. Additionally, a variety of additional equipment or tooling may be installed in the wellbore, such as screens, gravel packs, packer elements, and the like. Tools and equipment that are used downhole may employ a variety of actuation schemes and utilize a broad range of operating principles. Thus, there is a continual need to provide devices and methods that enable such tools and equipment to be deployed efficiently, despite their operational differences.
In aspects, the present disclosure provides a method of performing one or more wellbore-related activities. In one embodiment, the method may include positioning at least one sealing device at a selected location along the wellbore; conveying a work string into the wellbore; using the work string to perform the one or more activities; extracting the work string out of the wellbore; and shifting the at least one sealing device to a closed position wherein a bore of the wellbore is sealed by using a portion of the work string. In one embodiment, the sealing device may include a first and a second sealing element. The method may further include sealing the bore with a first sealing element and a second sealing element; supporting a pressure applied in an uphole direction with the first sealing element; and supporting a pressure applied in a downhole direction with the second sealing element. In arrangements wherein the work string engages an engagement sleeve associated with the sealing device, the method may include pulling the engagement sleeve with the work string in an uphole direction to fold the first and second sealing elements. In aspects, the at least one sealing device may be shifted while the work string is being extracted from the wellbore. The method may include locking the sealing device in the closed position to maintain the seal in the wellbore. In aspects, the method may include unsealing the wellbore by shifting the sealing device to an open position. In arrangements, the method may further include applying a pressure cycle to shift the at least one sealing device to an open position. In arrangements, the pressure cycle may activate a hydraulic actuator coupled to the at least one sealing device. The hydraulic actuator may include a ratchet member, and applying the pressure cycle may incrementally move the ratchet member to shift the at least one sealing device.
In aspects, the present disclosure provides a system for use in a wellbore that includes a work string, a setting tool positioned on the work string, a first seal element and a second seal element positioned along the wellbore, and a mechanical actuator configured to move the seal elements between the open position and the closed position while engaged with the setting tool. The first seal element and the second seal element may have an open position that allows fluid communication along the wellbore and a closed position that prevents fluid communication along the wellbore. In embodiments, the mechanical actuator may include an engagement sleeve, a profile connected to the engagement sleeve, and a mandrel coupled to the sleeve. In arrangements, the engagement sleeve may be positioned uphole of the first and the second seal elements and the mandrel may be positioned downhole of the first and the second seal elements. In arrangements, the system may include a hinge element connecting each of the first and the second seal element to a housing, and the mandrel may rotate the first and the second sealing elements about their respective hinge elements. In aspects, the system may include a hydraulic actuator configured to shift the first and the second sealing element to an open position. The hydraulic actuator may include a ratchet member configured to incrementally move in response to an applied pressure.
In aspects, the present disclosure provides a system for selective occlusion of a bore of a wellbore tubular. The system may include a work string configured to be conveyed along the bore, a setting tool positioned on the work string, a first seal element positioned along the bore, a second seal element positioned along the bore, a mechanical actuator device configured to shift the seal elements to a closed position wherein the bore is occluded, and a hydraulic actuator configured to shift the seal elements to an open position wherein the bore is not occluded. The first seal element may be configured to selective occlude the bore and resist a pressure applied in a downhole direction and the second seal element may be configured to selectively occlude the bore and resist pressure applied in an uphole direction. The mechanical actuator may be configured to engage the setting tool. In arrangements, the mechanical actuator may include an engagement sleeve; a profile connected to the engagement sleeve, and a mandrel coupled to the engagement sleeve. The profile may be configured to receive the setting tool. In aspects, the engagement sleeve may be positioned uphole of the seal elements and the mandrel may be positioned downhole of the seal elements. In aspects, the hydraulic actuator is responsive to an applied pressure. In one arrangement, the hydraulic actuator may include a ratchet member configured to incrementally move in response to the applied pressure.
It should be understood that examples of the more important features of the disclosure have been summarized rather broadly in order that detailed description thereof that follows may be better understood, and in order that the contributions to the art may be appreciated. There are, of course, additional features of the disclosure that will be described hereinafter and which will form the subject of the claims appended hereto.
For detailed understanding of the present disclosure, references should be made to the following detailed description of the preferred embodiment, taken in conjunction with the accompanying drawings, in which like elements have been given like numerals and wherein:
The present disclosure relates to devices and methods for selectively sealing a bore of a wellbore tubular. The present disclosure is susceptible to embodiments of different forms. There are shown in the drawings, and herein will be described in detail, specific embodiments of the present disclosure with the understanding that the present disclosure is to be considered an exemplification of the principles of the disclosure, and is not intended to limit the disclosure to that illustrated and described herein. Indeed, as will become apparent, the teachings of the present disclosure can be utilized for a variety of well tools and in all phases of well construction and production. Accordingly, the embodiments discussed below are merely illustrative of the applications of the present disclosure.
Referring initially to
Referring now to
Referring in particular to
The mechanical actuator 120 may be used to collapse the flapper elements 104,106 to seal the bore 110 and unfold the flapper elements 104,106 to open the bore 110. In one embodiment, the mechanical actuator 120 may include an engagement sleeve 122 that is configured to receive the setting tool 101, a lower mandrel 124, and a connector 126 that connects the engagement sleeve 122 with the lower mandrel 124. These elements may be generally tubular in form and concentrically or telescopically arranged. The term “mechanical” generally refers to an arrangement wherein the elements or components of the actuator co-act physically (e.g., via motion and physical contact) rather than electrically or hydraulically. Generally speaking, during operation, the setting tool 101 engages the engagement sleeve 122 and pulls the engagement sleeve 122 in an uphole direction shown by arrow 128. The lower mandrel 124 will also move in the uphole direction due to the fixed relationship between the lower mandrel 124 and the engagement sleeve 122. This axial translation of the lower mandrel 124 applies an axial loading on the flapper elements 104, 106. When the axial loading is of a sufficient magnitude, the flapper elements 104, 106 rotate or pivot about the hinge elements 114 and assume a generally transverse orientation in the bore 110 to form the fluid flow barrier (see
The engagement sleeve 122 may include a profile 130 shaped to receive the setting tool 101. That is, the profile 130 may have a contour, cavity, shoulder or recess that engages a complementary region on the setting tool 101. The profile 130 may be a finger or other structure that is coupled to and slides along a longitudinal slot 132 formed in the engagement sleeve 122. Initially, the profile 130 is at a lower most position along the longitudinal slot 132. This initial movement causes a protective sleeve 134 to slide away from the flapper elements 104, 106. The sleeve 134 may be used to shield the flapper elements 104, 106 from contact with tooling or equipment that may be traveling along the bore 110. The setting tool 101, upon engagement, pulls the profile 130 into an upper most position along the slot 132. Thereafter, the setting tool 101 and the profile 130 cooperate to pull the engagement sleeve 122 in the uphole direction.
The lower mandrel 124 may include a first translating element 140, biasing elements 142, and a second translating element 144. The connector 122 may connect the engagement sleeve 122 to the first translating element 144. During operation, the uphole movement of the first translating element 140 applies a pressure that compresses the biasing elements 142. After the biasing elements 142 have been mostly or fully compressed, the first translating element 140 displaces the second translating element 144 in the uphole direction. Uphole movement of the second translating element 144 causes the flapper elements 104, 106 to fold about their respective hinge elements 114. The flapper elements 104, 106 may be locked in the sealed or closed position (
As described previously, the hydraulic actuator 200 may be used to reopen the bore 100. In one embodiment, the hydraulic actuator 200 uses the biasing elements 208 to apply a downhole directed force along the actuating device 120 that causes the sealing device 100 to return to the original open position. In certain arrangements, the hydraulic actuator 160 may be configured to be responsive to pressure cycles. For example, an increase in pressure may be used to actuate the piston arrangement 202 (
Referring now to
In certain arrangements, a work string 24, which may include jointed tubulars, drill pipe, coiled tubing, etc., may be used to convey one or more well tools into the wellbore 20 and/or to perform one or more wellbore activities, which may include but are not limited to activities associated with the completion, recompletion, or workover of the well. These activities may involve the pumping of a fluid from the surface to a selected location in the wellbore. Exemplary activities may include cementing, gravel packing, fracturing, chemical treatment, etc. One aspect or step of such an activity may be the sealing off one or more sections of the bore. Sealing the bore may be required to, for example, perform pressure tests of seals along the tubular 20 or activate hydraulically actuated tools. Thus, one or more sealing devices 100 may be positioned along the wellbore 200.
Referring now to
Thus, it should be appreciated that what has been described includes, in part, a method of performing one or more wellbore-related activities, one embodiment of which includes positioning at least one sealing device at a selected location along the wellbore; conveying a work string into the wellbore; using the work string to perform the one or more activities; extracting the work string out of the wellbore; and shifting the at least one sealing device to a closed position by using a portion of the work string. The bore of the wellbore is sealed when the at least one sealing device is in the closed position. In one embodiment, the sealing device may include a first and a second sealing element. In such embodiments, the method may include sealing the bore with a first sealing element and a second sealing element; supporting a pressure applied in an uphole direction with the first sealing element; and supporting a pressure applied in a downhole direction with the second sealing element. In arrangements wherein the work string engages an engagement sleeve associated with the sealing device, the method may include pulling the engagement sleeve with the work string in an uphole direction to fold the first and second sealing elements. In aspects, the at least one sealing device may be shifted while the work string is being extracted from the wellbore. The method may include locking the sealing device in the closed position to maintain the seal in the wellbore. In aspects, the method may include unsealing the wellbore by shifting the sealing device to an open position. In arrangements, the method may further include applying a pressure cycle to shift the at least one sealing device to an open position. In arrangements, the pressure cycle may activate a hydraulic actuator coupled to the at least one sealing device. The hydraulic actuator may include a ratchet member, and applying the pressure cycle may incrementally move the ratchet member to shift the at least one sealing device.
It should also be appreciated that what has been described includes, in part, a system for use in a wellbore that includes a work string, a setting tool positioned on the work string, a first seal element and a second seal element positioned along the wellbore, and a mechanical actuator configured to move the seal elements between the open position and the closed position while engaged with the setting tool. The first seal element and the second seal element may have an open position that allows fluid communication along the wellbore and a closed position that prevents fluid communication along the wellbore. In embodiments, the mechanical actuator may include an engagement sleeve, a profile connected to the engagement sleeve, and a mandrel coupled to the sleeve. In arrangements, the engagement sleeve may be positioned uphole of the first and the second seal elements and the mandrel may be positioned downhole of the first and the second seal elements. In arrangements, the system may include a hinge element connecting each of the first and the second seal element to a housing, and the mandrel may rotate the first and the second sealing elements about their respective hinge elements. In aspects, the system may include a hydraulic actuator configured to shift the first and the second sealing element to an open position. The hydraulic actuator may include a ratchet member configured to incrementally move in response to an applied pressure.
It should be further appreciated that what has been described includes, in part, a system for selective occlusion of a bore of a wellbore tubular. The system may include a work string configured to be conveyed along the bore, a setting tool positioned on the work string, a first seal element positioned along the bore, a second seal element positioned along the bore, a mechanical actuator device configured to shift the seal elements to a closed position wherein the bore is occluded, and a hydraulic actuator configured to shift the seal elements to an open position wherein the bore is not occluded. The first seal element may be configured to selective occlude the bore and resist a pressure applied in a downhole direction and the second seal element may be configured to selectively occlude the bore and resist pressure applied in an uphole direction. The mechanical actuator may be configured to engage the setting tool. In arrangements, the mechanical actuator may include an engagement sleeve; a profile connected to the engagement sleeve, and a mandrel coupled to the engagement sleeve. The profile may be configured to receive the setting tool. In aspects, the engagement sleeve may be positioned uphole of the seal elements and the mandrel may be positioned downhole of the seal elements. In aspects, the hydraulic actuator is responsive to an applied pressure. In one arrangement, the hydraulic actuator may include a ratchet member configured to incrementally move in response to the applied pressure.
The foregoing description is directed to particular embodiments of the present disclosure for the purpose of illustration and explanation. It will be apparent, however, to one skilled in the art that many modifications and changes to the embodiment set forth above are possible without departing from the scope and the spirit of the disclosure. It is intended that the following claims be interpreted to embrace all such modifications and changes.