Setting Tool for a Subterranean Adaptive Support Delivery Tool with Actuating Piston Speed Regulation Feature
20230175333 · 2023-06-08
Assignee
Inventors
Cpc classification
E21B23/0412
FIXED CONSTRUCTIONS
E21B23/042
FIXED CONSTRUCTIONS
E21B23/065
FIXED CONSTRUCTIONS
International classification
E21B44/00
FIXED CONSTRUCTIONS
Abstract
An assembly of a setting tool in combination with a delivery tool for an adaptive support allows delivery of the adaptive support in a condition where it stores potential energy. Relative movement between a mandrel and a surrounding sleeve allows release of the adaptive support at a desired subterranean location. The relative movement to release the adaptive support comes from a setting tool that has a setting sleeve and a supporting connection to the mandrel of the delivery tool. The setting sleeve, when triggered to move by preferably an explosive charge, engages a piston rod assembly supported by the delivery tool mandrel for tandem movement to a mandrel travel stop. The tandem movement is regulated, preferably in the delivery tool, with regulation of fluid flow through a restriction to eliminate component failure due to high impact loads when the travel stop is engaged.
Claims
1. An assembly for subterranean use, comprising: a delivery tool releasably retaining stored potential energy in an adaptive support mounted thereto such that upon speed regulated relative component movement in said delivery tool said adaptive support is released from said delivery tool to find support in a surrounding tubular, said adaptive support accepting an object thereon for selective occlusion of a passage in said tubular for pressure treatment of a surrounding formation traversed by said tubular; a setting tool selectively initiating said speed regulated relative component movement.
2. The assembly of claim 1, wherein: said speed regulated relative component movement further comprises a changing volume chamber having an opening sized to control flow into or out of said chamber.
3. The assembly of claim 2, wherein: said flow comprises fluids present within said tubular.
4. The assembly of claim 3, wherein: said flow enters said chamber as the volume of said chamber increases.
5. The assembly of claim 3, wherein: said flow exits said chamber as the volume of said chamber decreases.
6. The assembly of claim 4, wherein: said chamber is defined on said delivery tool between a mandrel held stationary by said setting tool and a piston assembly slidably mounted substantially within said mandrel.
7. The assembly of claim 6, wherein: said piston assembly comprising an extending portion that extends through an opening in said surrounding mandrel to allow a setting sleeve on said setting tool to impact said extending portion of said piston assembly.
8. The assembly of claim 7, wherein: said mandrel further comprises a stop shoulder defining the limit of axial travel of said extending portion, said opening comprising an elongated slot limiting movement of said extending portion to an axial direction.
9. The assembly of claim 2, wherein: said opening comprises a removably mounted orifice.
10. The assembly of claim 2, wherein: said changing volume chamber opening is isolated from fluids located in said tubular.
11. The assembly of claim 10, wherein: said changing volume chamber is in fluid communication through said opening to a second chamber with both chambers isolated from fluids located in said tubular.
12. The assembly of claim 1, wherein: said speed regulated relative component movement is accomplished at least in part by a resilient ring located on a stop surface on a mandrel of said delivery tool.
13. The assembly of claim 1, wherein: said speed regulated relative component movement is accomplished at least in part by a crushable member located on a stop surface on a mandrel of said delivery tool.
14. The assembly of claim 1, wherein: the acceleration of a speed regulated relatively moving component is accomplished hydraulically.
15. The assembly of claim 1, wherein: the deceleration of a speed regulated relatively moving component is accomplished mechanically.
16. The assembly of claim 6, wherein: said changing volume chamber comprises an initial seal between said mandrel and said piston assembly, said initial seal undermined by said relative component movement.
17. The assembly of claim 6, wherein: said mandrel and said piston assembly are initially retained against said relative component movement with at least one shear pin or a breakable member.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
[0014] Referring to
[0015] Actuation of the setting tool 1 preferably by setting off an explosive charge that is not shown accelerates shifting sleeve 2 into ring 36. That impact with delivery tool mandrel 6 retained by setting tool mandrel 10 breaks shear pin 16 and moves piston rod 24 to release the potential energy in the adaptive support 28 allowing the adaptive support 28 to engage the surrounding tubular 32. As such movement occurs, the volume of chamber 20 has to enlarge to permit piston rod 24 to move. Fluid has to come into chamber 20 and it does so through orifice 4. Orifice 4 is sized to control the force of ultimate impact between ring 36 and surface 38 by virtue of speed regulation of relative component movement between the delivery tool mandrel 5 and the piston rod assembly 6. Until such impact the moving parts are free to accelerate as shear pin 16 is sheared. Without the deceleration effect of orifice 4 the final impact can be so severe as to distort or fracture parts such as setting sleeve 2 or ring 36 which could make removal of the tool problematic and in extreme cases require a millout.
[0016] While the above described preferred embodiment features sucking ire well fluid to accomplish deceleration as the volume of chamber 20 enlarges, the compartment that changes volume in tool can be configured to decrease in volume, as shown in
[0017] In another variation, shown in
[0018] Another approach in addition to fluid flow restriction or in addition to it is to use a resilient ring 39 adjacent surface 38 to absorb or dissipate some of the impact loading. Another variation is a crushable ring against surface 38 or a spring that can be compressed at that location. The intent is to keep the design simple and therefore economical while addressing the high impact loads that setting off different setting tools with a power charge can encompass. Using a setting tool that can be run into position quickly preferably on wireline or slickline in combination with a power charge is the preferred method of conveyance. Those skilled in the art will appreciate that different sized setting tools will be used with matching size delivery tools depending on the tubular 32 size. The orifice 4 is preferably mounted with a threaded connection for easy replacement when reconfiguring the delivery tool for additional runs for placement of multiple adaptive supports 28 in spaced locations in the tubular 32. The illustrated preferred design actuates the piston rod 24 from within the delivery tool mandrel 5 thus allowing placement of the adaptive support 28 in groove 26 with mandrel end 30 overlaying the adaptive support 28 to hold it in a compressed dimension with stored potential energy so that in the
[0019] The above description is illustrative of the preferred embodiment and many modifications may be made by those skilled in the art without departing from the invention whose scope is to be determined from the literal and equivalent scope of the claims below: