DEPLOYMENT TOOL & METHODOLOGY FOR RUNNING AND SETTING FRAC PLUGS AND RELEASING FRAC BALLS
20220049590 · 2022-02-17
Inventors
Cpc classification
E21B23/14
FIXED CONSTRUCTIONS
E21B34/08
FIXED CONSTRUCTIONS
E21B34/142
FIXED CONSTRUCTIONS
International classification
E21B23/14
FIXED CONSTRUCTIONS
E21B34/08
FIXED CONSTRUCTIONS
E21B34/14
FIXED CONSTRUCTIONS
Abstract
The disclosure relates to a method for deploying a frac ball within a subterranean location, having the steps of: deploying a wireline tool into the subterranean location, wherein the wireline tool defines a cavity housing the frac ball; pumping a fluid into the subterranean location; retaining the frac ball in the cavity while the fluid is pumped below a predetermined flow rate; setting a frac plug into the subterranean location; and firing one or more guns into the subterranean location.
Claims
1. A method for deploying a frac ball within a subterranean location, comprising the steps of: deploying a wireline tool into the subterranean location, wherein the wireline tool defines a cavity housing the frac ball; pumping a fluid into the subterranean location; retaining the frac ball in the cavity while the fluid is pumped below a predetermined flow rate; setting a frac plug into the subterranean location; and firing one or more guns into the subterranean location.
2. The method according to claim 1, further comprising the step of releasing the frac ball from the cavity when the fluid is pumped above the predetermined flow rate.
3. The method according to claim 2, wherein the step of retaining the frac ball in the cavity is performed by one or more retention devices retaining the ball within the cavity.
4. The method according to claim 3, wherein the predetermined flow rate is five gallons per minute.
5. The method according to claim 4, further comprising the step of deflecting an end of each of the one or more retention devices away from an underside of the ball in the cavity before the step of releasing the frac ball from the cavity.
6. The method according to claim 5, further comprising the step of preventing the frac ball from release after the firing fewer than all of the one or more guns.
7. The method according to claim 6, further comprising the step of retrieving the wireline tool and the frac ball from the subterranean location.
8. The method according to claim 6, further comprising the step of seating the frac ball into a seat of the frac plug.
9. The method according to claim 8, wherein the wireline tool comprises at least an outer sleeve and an inner mandrel, and wherein the cavity is located within the inner mandrel.
10. The method according to claim 9, wherein the step of setting the frac plug into the subterranean location further comprises the steps of applying a pushing force to the outer sleeve; applying a pulling force to the inner mandrel; and shearing one or more shear pins connected to the frac plug.
11. The method according to claim 10, wherein the step of firing one or more guns into the subterranean location comprises the step of creating one or more perforations in the subterranean location.
12. The method according to claim 11, further comprising the steps of preventing fluid flow through the frac plug; forcing fluid through the one or more perforations; and creating fractures in the subterranean location.
13. A wireline deployment tool for release of a frac ball comprising: a cavity defined within the wireline deployment tool; wherein the frac ball is housed within the cavity; and a retention device attached at a first end to a wall of the cavity, and wherein a second end of the retention device is unattached and releasably engaged with the frac ball.
14. The wireline deployment tool according to claim 13, wherein the retention device is configured to resist deflection if a fluid flow rate is below five gallons per minute.
15. The wireline deployment tool according to claim 14, further comprising an outer sleeve housing an inner mandrel; and wherein the cavity is located within the inner mandrel.
16. The wireline deployment tool according to claim 15, further comprising a first fluid port defined on the outer sleeve; and a second fluid port defined on the inner mandrel.
17. The wireline deployment tool according to claim 16, wherein the second fluid port is defined at an angle through the inner mandrel.
18. The wireline deployment tool according to claim 17, wherein the retention device is flexible to an angle of deflection of 20°.
19. The wireline deployment tool according to claim 18, further comprising a frac plug connected to the inner mandrel.
20. The wireline deployment tool according to claim 19, wherein the retention device comprises at least three retention devices.
21. A method for controlled release of a frac ball within a subterranean environment, comprising the steps of: running a wireline tool downhole into the subterranean environment, wherein the frac ball is housed within the wireline tool; pumping a fluid downhole at a current flow rate; preventing the release of the frac ball from the wireline tool when the current flow rate is below a preselected flow rate; increasing the current flow rate to the preselected flow rate and then releasing the frac ball from the wireline tool; and seating the frac ball into a frac plug set within the subterranean location.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0007] The exemplary embodiments may be better understood, and numerous objects, features, and advantages made apparent to those skilled in the art by referencing the accompanying drawings. These drawings are used to illustrate only exemplary embodiments and are not to be considered limiting of its scope, for the disclosure may admit to other equally effective exemplary 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.
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DESCRIPTION OF EMBODIMENT(S)
[0022] The description that follows includes exemplary apparatus, methods, techniques, and instruction sequences that embody techniques of the inventive subject matter. However, it is understood that the described embodiments may be practiced without these specific details.
[0023]
[0024] The running tool 10 includes an outer sleeve 13 and an inner mandrel 20. In
[0025] Referring at least to
[0026] In a first orientation or position 10a (see e.g.
[0027] The inner mandrel 20 and frac plug 50 may each define a series of shear pin openings 31 and 55, respectively. Shear pin openings 31 may be defined towards the second or downhole end 22 of the inner mandrel 20, in the widened portion 29 of the cavity 27. The shear pin openings 31 may allow for the fixture of the frac plug 50 and compression of the components of BHA 60 through the use or activation of shear pins or shear screws 56. Shear pin openings 55 may be defined towards the first or uphole end 51 and on the outer surface of the frac plug 50. Shear pins 56 may be inserted into shear pin openings 31 and shear pin openings 55 when same are aligned. The shear pins 56 may retain or secure the frac plug 50 into place within the cavity 27 while the BHA 60 is in the process of delivering the frac plug 50 to the desired location. The shear pins 56 are configured to break or shear when sufficient predetermined or preset force is applied to the inner mandrel 20 and outer sleeve 13.
[0028] The inner mandrel 20 further includes a number or a set of retention devices, springs or levers 40. As depicted in the figures, the springs 40 are attached to the exterior surface of the inner mandrel 20 on the frustoconical shoulder 24 and inserted into the cavity 27 through a spring opening 42 as defined on said shoulder 24. The springs 40 may be attached at a first end to the inner mandrel 20 via a fastener 41. The spring opening 42 should be large enough or wide enough to allow, by way of example only, at least a 20° angle deflection or flexibility of the flat spring 40 within the cavity 27. In an exemplary embodiment there may be three openings 26 and three springs 40 with the three openings 26 respectively generally aligned to direct flow pressure to the three springs 40. In further alternative exemplary embodiments, the spring 40 may instead be attached (via fasteners 41 or other means as known in the art) to the interior surface of the cavity 27, while allowing for the same or similar amount of angle of deflection in the spring 40. Other desired angles of deflection, thickness, material, length and strength in the spring 40 may be selected as desired by the operator of the system. An exemplary embodiment of the springs 40 and shear pin openings 31 as located on the inner mandrel 20 is depicted in
[0029] When assembled with the frack plug, frac plug, mandrel plug, or isolation device 50 for running said frac plug 50 to the desired location or destination, the free end or unattached end of the springs or retention devices 40 may be located or situated in between the ball 30 and the ball seat 54. The free or unattached end of the springs 40 may optionally feature a means of retention such as a tab, hook, curve or lip 43 which further supports, retains or cages the ball 30 before the ball 30 is released via a preset flow rate 81 from the pump 80. As depicted in at least
[0030] In a first position 10a of the deployment wireline tool 10, wherein the springs 40 are containing, retaining or securing the ball 30, (by way of example, as depicted in at least
[0031] Once the deployment wireline tool 10 is at the desired location within the wellbore 63 (or other subterranean environment or location 63) for the frac plug 50, the tool 10 of BHA 60, carrying the ball or occluding object 30 within the cavity 27, is manipulated and powered through the wireline 62 to apply a sufficient pulling force on the inner mandrel 20 and/or a sufficient pushing force on the outer sleeve 13. As a result, the shear pins 56 are broken or sheared, and the frac plug 50 separates from the inner mandrel 20 and sets or engages into the casing 61 (or other subterranean environment) at the desired location. Subsequently, the
[0032] The fluid 81, as delivered by pump 80, continues to flow through cavity 27 to the throughbore 57 of the frac plug or isolation device 50. The ball 30, after release from the springs 40, travels with the fluid 81 to land, set or engage on or with the ball seat 54 on the frac plug 50, as seen in
[0033] If one or more of the guns 70 misfire, or in the case of any other malfunction, or under any circumstance as desired by the operator of the system, so long as the fluid 81 has not been pumped to the wireline tool 10 at or above the predetermined flow rate, the BHA 60 having retained the frac ball 30 may be retrieved and a replacement redeployed to the desired location within the wellbore 63. Unlike the prior art or other conventionally known devices and methods, with the exemplary embodiments described herein, the operator may control or command the timing of the release of the frac ball 30 by directing, controlling or manipulating the flow of fluid 81 from the pump 80, preventing the ball 30 from inadvertently, accidentally, or prematurely releasing and blocking the flow of fluid into wellbore 63 and past the frac plug 50. Without a ball 30 blocking pressure or fluid flow in the wellbore 63/casing 61, the BHA 60 may be easily retrieved and redeployed using commonly known, inexpensive mitigation techniques and with relatively minor setback to the overall operation.
[0034] While the embodiments are described with reference to various implementations and exploitations, it will be understood that these embodiments are illustrative and that the scope of the inventive subject matter is not limited to them. Many variations, modifications, additions, and improvements are possible. By way of example only, although the deployment wireline tool 10 and BHA 60 are frequently depicted and described herein as within a casing 61 and or wellbore 64, it is to be appreciated that same or similar exemplary embodiments of the devices and processes disclosed within may be applied to any subterranean location or environment.
[0035] Plural instances may be provided for components, operations or structures described herein as a single instance. In general, structures and functionality presented as separate components in the exemplary configurations may be implemented as a combined structure or component. Similarly, structures and functionality presented as a single component may be implemented as separate components. These and other variations, modifications, additions, and improvements may fall within the scope of the inventive subject matter.