Mechanical perforator
10947802 ยท 2021-03-16
Assignee
Inventors
Cpc classification
E21B29/005
FIXED CONSTRUCTIONS
International classification
E21B29/00
FIXED CONSTRUCTIONS
Abstract
A mechanical perforator includes a perforator module and a slip module. The perforator module has perforator blades that may be forced outwardly to perforate a well casing joint after slips of the slip module has been deployed to bite the well casing and anchor a lower end of the mechanical perforator in the well casing.
Claims
1. A mechanical perforator comprising: at least one perforator blade supported within a perforator module having a perforator body that supports upper and lower perforator end cones that respectively slideably support a perforator blade holder for each of the at least one perforator blade, a linear force generator operatively connected to an uphole side of the perforator module to drive the perforator blades of the perforator module, and a slip module operatively connected to a downhole side of the perforator module to selectively anchor a downhole end of the mechanical perforator in a cased well bore, and a slip module body supported on a crossover body mandrel of a crossover body connected to a lower end of the perforator body.
2. The mechanical perforator as claimed in claim 1 wherein the linear force generator comprises a linear force mandrel that extends through the upper perforator end cone and the lower perforator end cone, the linear force mandrel being threadedly connected to the upper perforator end cone and slideably supporting the lower perforator end cone.
3. The mechanical perforator as claimed in claim 1 wherein the upper and lower perforator end cones respectively comprise a T-slot that respectively receive a T-slider on opposed ends of the at least one perforator blade holder.
4. The mechanical perforator as claimed in claim 1 wherein the at least one perforator blade holder comprises a perforator blade track having a perforator blade track end, each perforator blade track removably receiving a respective one of the at least one perforator blade.
5. The mechanical perforator as claimed in claim 1 wherein the slip module body comprises at least one slip cavity that receives a button slip that releasably locks the mechanical perforator in the cased well bore when there is 400-500 psi of fluid pressure in a central passage of the mechanical perforator.
6. The mechanical perforator as claimed in claim 5 wherein the slip module further comprises a slip retainer bar for retaining the button slips in the respective slip cavities.
7. The mechanical perforator as claimed in claim 6 further comprising slip springs located between the slip retainer bar and the respective button slips.
8. A mechanical perforator comprising: a perforator module having three perforator blades adapted to mechanically perforate a well casing, the perforator module having a perforator body connected to a linear force generator, the perforator body supporting an upper perforator end cone threadedly connected to a linear force generator mandrel, and a lower perforator end cone that is supported on a free end of the linear force generator mandrel, the upper and lower perforator end cones respectively have three equally spaced apart T-slots that respectively receive a T-slider on opposed ends of three perforator blade holders that respectively support one of the three perforator blades; the linear force generator providing linear force to drive the three blades of the perforator module through a sidewall of the well casing; and, a slip module connected to an opposite side of the perforator module, the slip module releasably locking the mechanical perforator in the well casing when 400-500 psi of fluid pressure is pumped into a central passage of the mechanical perforator and a crossover sleeve having an upper end connected to a lower end of the lower perforator end cone and a lower end that supports a lower end of the perforator body.
9. The mechanical perforator as claimed in claim 8 further comprising a crossover body threadedly connected to the lower end of the crossover sleeve and the lower end of the perforator body.
10. The mechanical perforator as claimed in claim 9 wherein the crossover body comprises a crossover body mandrel that supports the slip module.
11. The mechanical perforator as claimed in claim 8 wherein the slip module comprises button slips normally urged to a retracted condition, each button slip responding to fluid pressure in a central passage of the mechanical perforator to move to a deployed condition adapted to bite into the well casing to lock the mechanical perforator in the well casing.
12. A mechanical perforator comprising a perforator module and a slip module, the perforator module having a plurality of perforator blades respectively adapted to perforate a well casing joint, the perforator module including a perforator body that supports an upper perforator end cone and a lower perforator end cone, the upper and lower perforator end cones respectively comprising a plurality of T-slots, each T-slot receiving a T-slider on an end of a perforator blade holder, each perforator blade holder receiving and supporting a perforator blade, and a linear force generator connected to the perforator body and adapted to reciprocate the upper perforator end cone from a retracted condition to a deployed condition in which the respective perforator blades perforate the well casing joint; and a crossover sleeve having an upper end connected to a lower end of the lower perforator end cone and a lower end that supports a lower end of the perforator body.
13. The mechanical perforator as claimed in claim 12 wherein the linear force generator comprises a linear force generator mandrel with a free end, the upper perforator end cone being threadedly connected to the linear force generator mandrel and the lower perforator end cone being slideably supported on the linear force generator mandrel free end.
14. The mechanical perforator as claimed in claim 12 further comprising a crossover body threadedly connected to the lower end of the crossover sleeve and the lower end of the perforator body.
15. The mechanical perforator as claimed in claim 14 wherein the crossover body comprises a crossover body mandrel that supports the slip module.
16. The mechanical perforator as claimed in claim 12 wherein the slip module comprises button slips arranged in adjacent pairs, the respective button slips normally being urged to a retracted condition by slip springs.
17. The mechanical perforator as claimed in claim 16 wherein the button slips are responsive to fluid pressure in a central passage of the mechanical perforator which urges the respective button slips to a deployed condition in which the button slips bite the well casing to releasably lock the perforator module in well casing.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Having thus generally described the nature of the invention, reference will now be made to the accompanying drawings, in which:
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
(12) The invention provides a mechanical perforator with a plurality of perforator blades that simultaneously perforate a casing used to line a hydrocarbon well bore. Fluid pressure pumped into the mechanical perforator moves button slips to a deployed condition to bite the casing and lock the mechanical perforator in position for perforating the casing. A force multiplier moves the perforator blades from a retracted condition to a deployed condition in which the well casing is perforated, and back again to the retracted condition. After the casing is perforated, the mechanical perforator can be moved downhole to permit fracturing fluid to be pumped down an annulus of the casing string and through the perforation(s) in the casing joint to stimulate a section of the production zone behind the casing string. This process may be repeated until the entire production zone has been fractured and the well bore is ready for production. This mechanical perforator is useful in both well completions and well abandonments.
(13) TABLE-US-00001 Part No. Part Description 10 Mechanical perforator 12 Perforator module 14 Slip module 16 Linear force generator 17 Linear force generator mandrel 18 Downhole tool termination components 20 Work string 21 Perforator body 22 Casing joint 23 Pin-threaded upper end of perforator body 24a-24c Perforator blades 25 Perforator body slots 26a-26c Perforator blade holders 28a Perforator blade tracks 30 Perforator blade track end 34 Upper perforator end cone 35 Perforator end cone ribs 36 Threaded connection 38 Lower perforator end cone 39 Crossover sleeve 40 Crossover body 41 Cross-over sleeve lower end 42 Transition sub 44 Transition sub thread connection 46 Crossover body mandrel 48 Velocity bypass sub 50 Velocity bypass valve 52 Velocity bypass valve spring 54 Velocity bypass valve ports 56 Velocity bypass choke 58 Terminal sub 60 Central passage 61 Slip module body 62a-62c Button slips 63 Slip retainer bar 64 Slip screws 65 Slip springs 66 Slip energizing port 67 Slip socket 68 Slip energizing chamber 70 T-slot 72a, 72b T-sliders
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(15) Connected to a downhole end of the slip module 14 are downhole tool termination components 18, the function of which will be explained below with reference to
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(17) As will be explained below in more detail, each perforator blade 24a-24c is removably received in a respective perforator blade track 28a (see
(18) In this embodiment, the downhole tool termination components 18 include the transition sub 42 and a two-part velocity bypass sub 48. The velocity bypass sub 48 controls fluid flow through a central passage 60 of the mechanical perforator 10, which in turn controls a disposition of button slips 62 of the slip module 14, as will be explained below in more detail with reference to
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(20) The slip module 14 includes a slip module body 61 supported on the crossover body mandrel 46. In one embodiment, the slip module 14 includes 4 button slips 62 arranged in adjacent pairs, though more, or fewer, may be provided as a matter of design choice. Each of the button slips 62 is U-shaped in cross-section and is retained in a respective slip socket 67 in the slip module body 61 by a slip retainer bar 63 secured in place by a plurality of slip screws 64. Slip springs 65 captured between the slip retainer bars 63 and the button slips 62 urge the respective button slips 62 to a normally retracted condition shown. The downhole tool termination components 18 are threadedly connected to the lower end of the crossover body mandrel 46, as explained above, which secures the slip module body 61 on the crossover body mandrel 46.
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(26) It should be understood that the mechanical perforator 10 can also be used as a casing ripper, provided that the casing joint 22 is not a heavy gauge pipe and it is at least about 4 (10 cm) in diameter to provide adequate strength in the components of the mechanical perforator 10 to support a ripping operation. When the mechanical perforator 10 is used as a casing ripper, fluid pressure in the central passage 60 is released to return the button slips 62 to the retracted condition as soon as the casing joint 22 has been perforated. The mechanical perforator 10 is then pulled up the casing string, or pushed down the casing string, depending on the operating stroke of the linear force generator 16, a desired distance to rip a desired length of the casing joint 22. The button slips 62 may be reset, if required, to move the perforator blades 24a-24c back to their retracted position using the linear force generator 16 after the ripping operation is completed.
(27) The embodiments of the invention described above are only exemplary of a construction of the mechanical perforator 10 in accordance with the invention. Although an embodiment with three perforator blades has been described, embodiments with one, two or four blades are feasible. The scope of the invention is therefore intended to be limited solely by the scope of the appended claims.