Compact setting tool
11053759 ยท 2021-07-06
Assignee
Inventors
- Johnny Covalt (Burleson, TX, US)
- Joseph Albert Henke (Hallettsville, TX, US)
- Roger Griffin (Weatherford, TX, US)
Cpc classification
E21B33/128
FIXED CONSTRUCTIONS
International classification
Abstract
A compact setting tool that sets a packer or bridge plug in a wellbore and then self bleeds the pressure prior to pulling the string out of the wellbore.
Claims
1. An apparatus for setting a radially expandable seal in a wellbore comprising: a long cylinder with a thru bore having a first undercut and a second undercut, an uphole end and a downhole end; a top adaptor coupled to the uphole end having a bore; a cylinder head coupled to the downhole end having a through bore; a powercharge chamber piston slideably disposed within long cylinder thru bore, being located proximate to the top adaptor, and having a bore, and at least one o-ring seal slideably circumferentially engaged with the thru bore; a bottom metering piston slideably disposed within the long cylinder thru bore, downhole from and coupled to the power charge chamber piston, having at least one o-ring seal slideably circumferentially engaged with the thru bore; a piston rod coupled to and located downhole from the bottom metering piston, slideably engaged with the cylinder head thru bore, having a neck portion proximate to the bottom metering piston; and having at least one o-ring seal slideably circumferentially engaged with the cylinder head; wherein the linear downhole movement of the power charge piston, bottom metering piston, and piston rod can set a radially expandable seal, separate from said radially expandable seal, and then equalize pressure within the long cylinder with the wellbore using first undercut, second undercut, and piston rod neck portion coming into contact with respective o-ring seals after a predetermined downhole distance relative to the long cylinder is traversed.
2. The apparatus of claim 1 further comprising a crosslink connection coupled downhole from and with the piston rod.
3. The apparatus of claim 2 further comprising a crosslink coupled to the crosslink connection and slideably engaged in a slotted mandrel, the slotted mandrel being coupled to the downhole end of the long cylinder.
4. The apparatus of claim 3 further comprising a crosslink housing coupled to the crosslink.
5. The apparatus of claim 4 further comprising a setting sleeve coupled to the crosslink housing.
6. The apparatus of claim 5 wherein the long cylinder thru bore, the top adaptor bore, and the power charge chamber piston bore define a pressure chamber.
7. The apparatus of claim 6 further comprising a power charge disposed within said pressure chamber.
8. The apparatus of claim 1 further comprising the bottom metering piston having a metering thru bore adapted to meter oil as the bottom metering piston travels downhole within the long cylinder.
9. The apparatus of claim 7 further comprising a radially expandable seal coupled to the slotted mandrel using a shear stud and located proximate to the setting sleeve, wherein the downhole linear movement of the setting sleeve collapses and expands the radially expandable seal.
10. The apparatus of claim 9 wherein the radially expandable seal is a packer.
11. The apparatus of claim 9 wherein the radially expandable seal is a bridge plug.
12. A system for setting a radially expandable seal in a wellbore comprising: a cablehead assembly, further comprising a wireline connected to the uphole end of a fish neck assembly; a casing collar locator coupled to the downhole end of the fish neck assembly; a quick change assembly coupled to the downhole end of the casing collar locator; a firing head assembly coupled to the downhole end of the quick change assembly; a settling tool assembly coupled to the downhole end of the firing head assembly, further comprising: a long cylinder with a thru bore having a first undercut and a second undercut, an uphole end and a downhole end; a top adaptor coupled to the uphole end having a bore; a cylinder head coupled to the downhole end having a through bore; a power charge chamber piston slideably disposed within long cylinder thru bore, being located proximate to the top adaptor, and having a bore, and at least one o-ring seal slideably circumferentially engaged with the thru bore; a bottom metering piston slideably disposed within the long cylinder thru bore, downhole from and coupled to the power charge chamber piston, having at least one o-ring seal slideably circumferentially engaged with the thru bore; a piston rod coupled to and located downhole from the bottom metering piston, slideably engaged with the cylinder head thru bore, having a neck portion proximate to the bottom metering piston; and having at least one o-ring seal slideably circumferentially engaged with the cylinder head; a setting sleeve coupled to the piston rod, wherein the setting sleeve slides as the piston rod slides; a radially expandable seal located proximate to the setting sleeve and coupled to the long cylinder, wherein the radially expandable seal position is fixed in comparison to the setting sleeve.
13. The apparatus of claim 12 further comprising a crosslink connection coupled to the downhole end of the piston rod.
14. The system of claim 13 further comprising a crosslink coupled to the crosslink connection and slideably engaged in a slotted mandrel, the slotted mandrel being coupled to the bottomhole end of the long cylinder.
15. The system of claim 14 further comprising a crosslink housing coupled to the crosslink.
16. The system of claim 15 further comprising a setting sleeve coupled to the crosslink housing.
17. The system of claim 16 wherein the long cylinder thru bore, the top adaptor bore, and the powercharge chamber piston bore define a pressure chamber.
18. The system of claim 17 further comprising a powercharge disposed within said pressure chamber.
19. The system of claim 12 further comprising the bottom metering piston having a metering thru bore adapted to meter oil as the bottom metering piston travels downhole within the long cylinder.
20. The system of claim 12 wherein the radially expandable seal is a packer.
21. The system of claim 12 wherein the radially expandable seal is a bridge plug.
22. A setting tool apparatus comprising: a substantially cylindrical body with a center axis, a thru bore having a first undercut, and a second undercut; a first cylindrical plug coupled to an uphole end of the cylindrical body and having a bore adapted to accept a portion of a power charge; a first piston slideably disposed within a first chamber and having an inner bore adapted to accept a portion of a power charge with a first o-ring seal against the cylindrical body thru bore; a mandrel extending normal from the first piston in a first direction; a second piston slideably disposed in the cylindrical body thru bore, coupled to the first piston mandrel, having a second o-ring seal with the cylindrical body thru bore, having a mandrel extending downhole with a neck portion proximate to the second piston and a regular diameter portion extending downhole, a second cylindrical plug coupled to a bottomhole end of the cylindrical body and having a thru bore with the second mandrel disposed therein with a third o-ring seal between the second cylindrical plug thru bore and the second mandrel.
23. The apparatus of claim 22 wherein the cylinder body thru bore, the cylindrical plug first piston bore, and the first piston bore define a pressure chamber for a power charge.
24. The apparatus of claim 22 wherein the first piston and second piston moves relative to the cylindrical body along the axis in a first direction.
25. The apparatus of claim 22 further comprising a slotted mandrel coupled to a shear stud is coupled to the end of the second mandrel.
26. The apparatus of claim 25 further comprising an expandable plug coupled to the shear stud.
27. The apparatus of claim 26 wherein the expandable plug is a bridge plug.
28. The apparatus of claim 22 the second piston further comprising a metering vent, wherein a fluid can enter the pressure chamber.
29. The apparatus of claim 22 wherein a first fluid reservoir is formed by the first piston and the cylindrical body.
30. The apparatus of claim 29 wherein a second fluid reservoir is formed by the second piston and the cylindrical body.
31. The apparatus of claim 22, wherein the first piston, second piston, and second piston mandrel will compromise the first o-ring seal, the second o-ring seal, and the third o-ring seal when the plurality of o-ring seals slideably interfere with the first undercut, second undercut, and neck portion, respectively.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) For a thorough understanding 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 of the drawing. Briefly:
(2)
(3)
(4)
(5)
DETAILED DESCRIPTION OF EXAMPLES OF THE INVENTION
(6) In the following description, certain terms have been used for brevity, clarity, and examples. No unnecessary limitations are to be implied therefrom and such terms are used for descriptive purposes only and are intended to be broadly construed. The different apparatus, systems and method steps described herein may be used alone or in combination with other apparatus, systems and method steps. It is to be expected that various equivalents, alternatives, and modifications are possible within the scope of the appended claims.
(7) An example embodiment is shown in
(8) In operation a signal from the wireline 801 causes a signal to the firing head assembly 500 that ignites a chemical power charge. The expanding gas generated from the power charge causes the setting tool assembly 100 to mechanically extend in such a way that the setting sleeve 200 moves downhole relative to the tension mandrel 300, which stays stationary. The setting sleeve 200 mechanically collapses the bridge plug 200, which causes it to expand and seal off the casing in which the tool string is located. After the bridge plug 200 is expanded, sufficient stress builds up in the shear stud 401 to cause it to separate from the bridge plug. Once separated, the rest of the tool string can be moved uphole while the bridge plug stays in place in the casing.
(9)
(10) Long cylinder 102 has a first undercut 122 and a second undercut 128.
(11) A bottom metering piston 109 is coupled to the power charge chamber piston 110 and held in place with set screw 112. The bottom metering piston 109 is sealed to the interior of the long cylinder 102 via o-rings 121. The bottom metering piston 109 has a thru hole 123 that acts as a bleed port. A nylon plug 111 initially seals the uphole end of thru hole 123 prior to setting. The piston rod 124 extends downhole from the bottom metering piston 109 and is coupled to the crosslink connection 107. Piston rod 124 extends thru bore 132 of cylinder head 103. Thru bore 132 has o-rings 116 that seal against the majority of the length of piston rod 124. Piston rod 124 has a neck portion 140 located proximate to the bottom metering piston 109. The volume between piston rod 124, the interior of long cylinder 102, cylinder head 103, and bottom metering piston 109 is an oil reservoir and is typically filled with oil during assembly.
(12) Cylinder head 103 is coupled to the downhole end of long cylinder 102. Cylinder head 103 is sealed to the interior of long cylinder 102 using o-rings 120. Cylinder head 103 is sealed to the exterior of the piston rod 124 via o-rings 116. Cylinder head 103 is coupled to the slotted mandrel 106 and further held in place to slotted mandrel 106 using set screw 114. The crosslink connection 107 is slideably engaged within the slotted mandrel 106. Slotted mandrel 106 is coupled to the tension mandrel 300.
(13) Crosslink retention ring 105 is couples the crosslink housing 104 to the crosslink 108 using set screw 113. Crosslink 108 and crosslink housing 104 are slideably engaged about the exterior of slotted mandrel 106. Crosslink 108 is slideably engaged with the slots 130 of the slotted mandrel 106. Crosslink housing 104 is coupled to the setting sleeve 200.
(14) Operating the described embodiment includes assembling the tool string, lowering it into a wellbore, using the casing collar locator assembly 700 to accurately determine the position of the tool string, positioning the bridge plug 400 at a desired location within the wellbore, igniting the power charge 117 via a signal from the wireline 801 to the firing head assembly 500, extending the setting tool assembly 100 using the gases from the power charge 117, setting the bridge plug 400 with the setting sleeve 200 moving downhole while the tension mandrel 300 remains stationary, shearing the shear stud 401, venting the power charge gases via undercuts 126, 127, and neck 140, then pulling the depressurized tool string uphole. An advantage of this example embodiment is that the setting tool assembly self bleeds the power charge gases, therefore the setting tool isn't pressurized with 10-20 ksi of gas when it is removed from the wellbore.
(15) The volume defined by the power charge chamber piston 110, the interior of long cylinder 117, and the bottom metering piston 109 is an oil reservoir 129 that is left empty upon installation. The tool string is lowered downhole until the bridge plug is at a predetermined downhole position. A command through the wireline 801 instructs the firing head assembly 500 to ignite the power charge 117. The power charge 117 ignition produces gases at high pressure, which expands against bores 126, 127, and the interior of long cylinder 102. The expansion will start to move the combination of power charge chamber piston 110, bottom metering piston 109, piston rod 124, crosslink connection 107, crosslink retention ring 105, crosslink housing 104, and setting sleeve 200 downhole. When the power charge chamber piston 110 moves downhole due to the gas release from the ignited power charge 117, the pressure in the reservoir 118 increases until the nylon plug 111 pops out into the oil reservoir 129, thus allowing oil to move uphole via thru hole 123. Thru hole 123 is sized to provide a metering effect as the oil moves uphole, thus slowing the rate that the combination of power charge chamber piston 110, bottom metering piston 109, piston rod 124, crosslink connection 107, crosslink retention ring 105, crosslink housing 104, and setting sleeve 200 moves linearly downhole. The downward movement will cause the bridge plug 400 to radially expand as the setting sleeve 200 moves downhole versus the tension mandrel 300 remaining stationary. After setting the radially expanded bridge plug 400, the continuing downhole movement of the combination will cause the shear stud 401 to shear off. After shearing the shear stud 401, the combination will continue moving a predetermined linear distance downhole, at which point the o-rings 115 will disengage at undercut 122, o-rings 121 will disengage at undercut 128, and o-rings 116 will disengage at neck 140. At undercut 121 and 128, o-rings 115 and 121, respectively, cannot hold any pressure. O-rings 116 at neck 140 cannot hold pressure. The loss of the o-rings 115, 121, and 116 sealing ability results in the pressurized gases and the oil venting out of the setting tool assembly via slots 130 in the slotted mandrel 106.
(16)
(17)
(18) O-rings 115, 120, and 116 are no longer sealing because they are in contact with undercuts 122, 128, and neck 140, respectfully. Therefore, all gas and oil pressure has been relieved through the o-rings 115, 120, and 116 and through the slots 130 in slotted mandrel 106 to the borehole.
(19) A bridge plug is used in the examples disclosed herein, however several other tools could be used in this application, such as packers, which may be deployed using a setting tool assembly as disclosed herein.
(20) Although the invention has been described in terms of 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 and lower or top and bottom can be substituted with uphole and downhole, respectfully. Top and bottom could be left and right, respectively. Uphole and downhole could be shown in figures as left and right, respectively, or top and bottom, respectively. Generally downhole tools initially enter the borehole in a vertical orientation, but since some boreholes end up horizontal, the orientation of the tool may change. In that case downhole, lower, or bottom is generally a component in the tool string that enters the borehole before a component referred to as uphole, upper, or top, relatively speaking. The first housing and second housing may be top housing and bottom housing, respectfully. Terms like wellbore, borehole, well, bore, oil well, and other alternatives may be used synonymously. Terms like tool string, tool, perforating gun string, gun string, or downhole tools, and other alternatives may be used synonymously. 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.