Opposing piston setting tool
10767430 ยท 2020-09-08
Assignee
Inventors
Cpc classification
International classification
Abstract
A setting tool for use in setting plugs downhole using opposing pistons to axially compress a plug, thereby causing it to radially expand.
Claims
1. A setting tool comprising: a charge chamber; a pressure chamber; a cylindrical body having a top end and a bottom end and a longitudinal axis extending through its center from the top end to the bottom end; a top piston, having a top end and a bottom end corresponding with the top end and bottom end of the cylindrical body, providing a slidable seal within the pressure chamber; a bottom piston, having a top end and a bottom end corresponding with the top end and bottom end of the cylindrical body, providing a slidable seal within the pressure chamber; a top piston mandrel connecting the charge chamber to the top end of the top piston through the top end of the cylindrical body; a gas passage through the top piston mandrel providing fluid communication from the charge chamber to the pressure chamber between the top and bottom piston; a bottom piston mandrel connecting the bottom piston to a setting sleeve; a setting mandrel extending from the bottom end of the top piston through the bottom piston and bottom piston mandrel; wherein the top piston, bottom piston, and cylindrical body form the pressure chamber.
2. The setting tool of claim 1 further comprising a top fluid reservoir formed between the top end of the top piston and the top end of the cylindrical body.
3. The setting tool of claim 2 further comprising a bottom fluid reservoir formed between the bottom end of the bottom piston and the bottom end of the cylindrical body.
4. The setting tool of claim 3 further comprising a bottom orifice proximate the bottom end of the cylindrical body adapted to release fluid from the bottom fluid reservoir under pressure.
5. The setting tool of claim 4 further comprising: a bottom sub proximate the bottom end of the cylindrical body adapted to stop the bottom piston from exiting the bottom end of the cylindrical body; and a top sub proximate the top end of the cylindrical body adapted to stop the top piston from exiting the top end of the cylindrical body.
6. The setting tool of claim 5 wherein the charge chamber, pressure chamber, top piston, and bottom piston are all coaxially aligned.
7. The setting tool of claim 6 wherein the top piston mandrel, bottom piston mandrel, setting sleeve, and setting mandrel are all coaxially aligned.
8. The setting tool of claim 6 further comprising an energetic charge disposed within the charge chamber; wherein the combustion of the energetic charge creates gas that flows through the gas passage to the pressure chamber and pressure created by the gas moves the bottom piston toward the bottom sub and moves the top end of the cylindrical body down toward the top piston.
9. The setting tool of claim 8 wherein: the bottom piston moving toward the bottom sub pressurizes fluid in the bottom fluid reservoir and moving it through the bottom orifice; the top end of the cylindrical body moving toward the top piston pressurizes fluid in the top fluid reservoir and moving it through the top orifice.
10. The setting tool of claim 2 further comprising a top orifice proximate the top end of the cylindrical body adapted to release fluid from the top fluid reservoir under pressure.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) For a thorough understating of the present invention, reference is made to the following detailed description of the preferred embodiments, taken in conjunction with the accompanying drawings in which reference numbers designate like or similar elements throughout the several figures. Briefly:
(2)
(3)
(4)
DETAILED DESCRIPTION OF EXAMPLES OF THE INVENTION
(5) In the following description, certain terms have been used for brevity, clarity, and examples. No unnecessary limitations are implied and such terms are used for descriptive purposes only and are intended to be broadly construed. The different apparatus and method steps described herein may be used alone or in combination with other systems and method steps. It is to be expected that various equivalents, alternatives, and modifications are possible within the scope of the presented claims.
(6) An example embodiment is illustrated in the wireline setting tool 10 of
(7) Referring to
(8) As the lower piston 16 bottoms out, the forces due to the pressure in chamber 27 will start to act against the cylindrical body 12 as it is still slidably engaged to upper piston 11 and cause the cylindrical body 12 to move in relation to upper piston 11, further expanding chamber 27. As the cylindrical body 12 moves downward relative to a stationary piston 11, fluid 31 in fluid reservoir 49, formed by piston 11 and cylindrical body 12, is vented out of the setting tool 10 via an orifice or valve in orifice sub 13. The fluid 31 could be any hydraulic fluid or other suitable fluid, such as oil, glycol, or water.
(9) When sufficient pressure is generated in pressure chamber 27, the bottom piston 16 will move downward as shown in
(10) Referring to
(11) Another example embodiment may include a setting tool 10 with a substantially cylindrical body 12 with a center axis 40, a first piston 11 slidably disposed within the cylindrical body 12. The first piston 11 may have a first piston face 28 and a mandrel 24 extending normal from the first piston face 28 in a first direction downhole. The setting tool 10 may include a second piston 16 slidably disposed in the cylinder 12 and having a second piston face 41 and an axial through bore 26. The mandrel 24 of the first piston 11 slidably engages through the axial through bore 26 of the second piston 16. The first piston face 28, the second piston face 41, and the cylindrical body 12 in this example form a pressure chamber 27.
(12) A variation of this described embodiment may include the second piston 16 moving along the axis 40 in a first direction. The cylindrical body 12 may move along the axis 40 in the first direction. The embodiment may further have a shear stud 29 coupled to the bottom end of the mandrel 24. The second piston 16 is located between the first piston 11 and the shear stud 29 along the mandrel 24. The embodiment may further have an expandable plug 22 coupled to the shear stud 29. The expandable plug 22 may be a bridge plug. The embodiment may further have a vent 42. A fluid can enter the pressure chamber 27 via vent 42. A first fluid reservoir 49 may be formed by the first piston 11 and the cylindrical body 12 and containing fluid 31. A second fluid reservoir 50 is formed by the second piston 16 and the cylindrical body 12 and containing fluid 30. Fluids 30 and 31 can be an oil, hydraulic fluid, glycerol, water, or other suitable fluids.
(13) Another example embodiment may include a setting tool 10 having a cylindrical body 12 having a center axis 40, a first end, a second end, an inner surface, and an outer surface, and a first piston 11 located within the cylindrical body 12. The cylindrical body 12 and the first piston 11 may be axially aligned. The first piston 11 may have a first end and a second end, and a fluid passage 42 connecting the first end to the second end. A cylindrical mandrel 24 may extend from the second end of the first piston 11. The mandrel 24 may be axially aligned with the cylindrical body 12. The setting tool 10 may include a second piston 16 located within the cylindrical body 12 and axially aligned with the cylindrical body 12. The second piston 16 may have an axial bore 26 throughout the length of the second piston 16, with a first end and a second end. The first end of the second piston 16, the second end of the first piston 11, and the cylindrical body 12 may form a variable volume pressure chamber 27.
(14) A variation of the described embodiment may further include a cylindrical sub 13 connected to the first end of the cylindrical body 12 having at least one orifice 43 placing a first portion of the inside of the cylindrical body 12 in fluid communication with the outside of the cylindrical body. The embodiment may further have a retainer sub 17 connected to the second end of the cylindrical body 12 having at least one orifice 44 placing a second portion of the inside of the cylindrical body 12 in fluid communication with the outside of the cylindrical body 12. The embodiment may further have a power charge chamber 15 located proximate to the cylindrical body 12. Gases generated by the power charge can enter the fluid passage 42 of the first piston 11 at the first end and exit at the end of the fluid passage 42 at the second end, thus entering the variable volume pressure chamber 27. It may further include a firing head 19 coupled to the power charge chamber 15. The mandrel 24 may be disposed within the axial bore 26 of the second piston 16. It may further have a retainer sub 17 coupled to the second end of the cylindrical body 12. The retainer sub 17 limits the stroke of the second piston 16 with respect to the cylindrical body 12. It may further have a cylindrical sub 13 coupled to the first end of the cylindrical body 12. The cylindrical sub 13 limits the stroke of the second piston 16 with respect to the cylindrical body 12. It may further have a setting sleeve 20 coupled to the second piston 16. It may further have a connector sub 21 coupled to the mandrel 24. It may further have a shear stud 29 coupled to the connector sub 21. It may further have an expandable plug 22 coupled to the shear stud 29. The first piston 11 may stay stationary while the second piston 16 and cylindrical body 12 each move axially away from the first piston 11. The fluid passage 42 may provide fluid communication for a gas between the first end of the first piston 11 and the variable volume pressure chamber 27.
(15) Another example embodiment may include a method for setting a plug 22 in a borehole of activating a firing head 19, starting a gas pressure generating chemical reaction, pressurizing a chamber 27 located within a cylindrical body 12 with the generated gas pressure, moving a piston 16 disposed within the cylinder in a first axial direction with the generated gas, and moving the cylindrical body 12 in the first axial direction with the generated gas.
(16) A variation of the example includes placing a setting tool 10 in a borehole 45 at a predetermined location for installing a plug 22 against casing 46. Moving the piston 11 in the first axial direction acts to evacuate a fluid 30 from the setting tool 10. Moving the cylindrical body 12 in the first axial direction may evacuate a second quantity of oil 31 from the setting tool 10. This will cause seal 47 to radially expand against an inner wall of a borehole casing 46. The action may also shear a shear stud 29 coupled between a setting tool 10 and a setting plug 22. After setting a plug 22 the setting tool 10 is removed from the borehole 45. The radially expanded plug 22 as shown in
(17) Another example embodiment may include a setting tool 10 having a power charge chamber 15, a cylindrical body 12 having a top end and a bottom end and a longitudinal axis 40 extending through its center from the top end to the bottom end. The setting tool 10 has a top piston 11, with a top end and a bottom end corresponding with the top end and bottom end of the cylindrical body 12. The top piston 11 slidably seals within the cylindrical body 12. A bottom piston 16, having a top end and a bottom end corresponding with the top end and bottom end of the cylindrical body 12, is also located within cylindrical body 12. Bottom piston 16 slidably seals within the cylindrical body 12. A top piston mandrel 48 connects the power charge chamber 15 to the top end of the top piston through the top end of the cylindrical body 12. A gas passage 42 through the top piston mandrel 48 provides fluid communication from the energetic material from the power charge chamber 15 to the pressure chamber 27. A bottom piston mandrel 32 connects the bottom piston 16 to a setting sleeve 20. A setting mandrel 24 extends from the bottom end of the top piston 11 through the bottom piston 16 and bottom piston mandrel 32. The top piston 11, bottom piston 16, and cylindrical body 12 form pressure chamber 27.
(18) A variation of the example may further include a top fluid reservoir 49 formed between the top end of the top piston 11 and the top end of the cylindrical body 12. It may further include a bottom fluid reservoir 50 formed between the bottom end of the bottom piston 16 and the top end of the cylindrical body 12. It may further include a top orifice 43 located proximate to the top end of the cylindrical body 12 and adapted to release fluid 31 from the top fluid reservoir 49 under pressure. It may further include a bottom orifice 44 located proximate to the bottom end of the cylindrical body 12 and adapted to release fluid 30 from the bottom fluid reservoir 50 under pressure. It may further include a bottom sub 17 located proximate to the bottom end of the cylindrical body 12 and adapted to stop the bottom piston 16 from exiting the bottom end of the cylindrical body 12. A top cylindrical sub 13 is located proximate to the top end of the cylindrical body 12 and is adapted to stop the top piston 11 from exiting the top of the cylindrical body 12. The power charge chamber 15, cylindrical body 12, top piston 11, and bottom piston 16 may all be coaxially aligned. The top piston mandrel 48, bottom piston mandrel 32, setting sleeve 20, and setting mandrel 24 may all be coaxially aligned. Energetic charge 23 is disposed within the charge chamber 15. The combustion of the energetic charge 23 creates gas that flows through the gas passage 42 to the pressure chamber 27. The pressure created by the gas moves the bottom piston 16 toward the bottom sub 17 and moves the top end of the cylindrical body 12 down toward the top piston 11. The bottom piston 16 may move toward the bottom sub 17 to pressurize fluid 30 in the bottom fluid reservoir 50, thereby moving it through the bottom orifice 44. The top end of the cylindrical body 12 may move toward the top piston 11 to pressurize fluid 31 in the top fluid reservoir 49, thereby moving it through the top orifice 43.
(19) Although the invention has been described in terms of particular embodiments which are set forth in detail, it should be understood that this is by illustration only and that the invention is not necessarily limited thereto. For example, terms such as upper piston and lower piston can be substituted with top piston and bottom piston, respectfully. Top and bottom could be left and right. The alternative embodiments and operating techniques will become apparent to those of ordinary skill in the art in view of the present disclosure. Accordingly, modifications of the invention are contemplated which may be made without departing from the spirit of the claimed invention.