This application is a U.S. National Phase Application under 35 U.S.C. ยง 371 and claims the benefit of priority to International Application Serial No. PCT/US2014/010354, filed on Jan. 6, 2014, the contents of which are hereby incorporated by reference.
The concepts herein relate to releasing a well drop into an interior of a well tubing.
There are a number of instances in drilling, completing and producing from a subterranean well where an object is purposefully dropped into the well to plug a downhole opening or apply an impact load. The object, i.e., a well drop, can take many forms, but is typically a spherical ball. Plugging the opening seals the opening against flow and allows the operator to apply fluid pressure to actuate a tool or isolate one portion of the well from another. For example, in certain instances of cementing a casing into a wellbore, a well drop is released to launch a wiper plug from a cementing head at the top joint of casing. In another example, in certain instances of multi-stage cementing, a well drop is released to plug a port collar shifting tool, prior to cementing through the open port collar. Well drops are used in many other contexts, including well treatment, fracing, well clean out and other operations.
Like reference symbols in the various drawings indicate like elements.
The concepts herein relate to releasing a well drop into an interior of a well tubing. A well drop releasing device mounts to a sidewall of the well tubing. The well drop releasing device is operated by control fluid pressure to linearly translate a well drop receptacle between a holding position, where a well drop in the receptacle is held in the well drop releasing device, and a releasing position, where the well drop is released from the receptacle into a center bore of the well tubing. The well drop releasing device has provisions for manual override by linearly pulling a manual override arm. The manual override arm also provides a visual indication of the position, holding or releasing, of the well drop receptacle. The configuration of the well drop device allows a well drop to be released into the interior of the tubing without stopping pumping or without release of pressure from the interior of the tubing.
Referring first to
The well drop releasing device 118 includes first and second control lines 122, 124 coupled to different locations on the sidewall of the well drop releasing device 118. The control lines 122, 124 couple a control fluid pressure source to the well drop releasing device 118, to selectively supply control fluid (liquid or gas) to different aspects of the well drop releasing device 118. In certain instances, control fluid supplied to the first control line 122 causes the well drop releasing device 118 to change from a holding position where it internally holds a well drop to a releasing position where it moves the well drop into the center bore of the cementing head 114 and releases the well drop into the center bore. Control fluid supplied to the second control line 124 causes the well drop releasing device 118 to change from a releasing position back to a holding position, and can be used to maintain the well drop releasing device 118 in the holding position prior to moving to the releasing position. Notably, the well drop can be released into the center bore of the well tubing without removing pressure or flow from the tubing.
Although discussed herein in connection with a cementing operation and a cementing head, the well drop releasing device 118 can be used in many other contexts. Therefore, the well drop releasing device 118 can be couple to other types of well tubulars that extend outward from the well.
The well drop carrying assembly 218 includes a central shaft 228 that extends through the center of the cavities, and carries a first piston 230 in the first cavity 220 and a second piston 232 in the second cavity 222. The annular wall 224 is sealed to the central shaft 228 with a seal 234. The first piston 230 includes a circumferential seal 236 that seals the first piston 230 to an inner wall of the first cavity 220, and the second piston 232 includes a circumferential seal 238 that seals the second piston 232 to the inner wall of the second cavity 222. The main body 206 has a first control fluid port 240 through a sidewall and into the first cavity 220, near an end of the first cavity 220 opposite the open end 226 and between the first piston 230 and the annular wall 224. The main body 206 has a second fluid control port 242 through a sidewall and into the second cavity 222 near an end of the second cavity 222 and between the second piston 232 and the annular wall 224. The first and second fluid control ports 240, 242 connect to control lines, such as the first and second control lines in
The central shaft 228 of the well drop carrying assembly 218 has an internal passage 244 that communicates fluid from within the center bore of the well tubing to the second cavity 222 to pressure balance the well drop carrying assembly 218 to fluid pressure in the well tubing. To this end, the internal passage 244 has a first end 246 to an interior of the well tubing when the well drop releasing device 200 is coupled to the well tubing. The internal passage 244 has a second end 248 open to the second cavity 222 opposite the well tubing from the second piston 232, and thus to the volume in the second cavity 222 between the second piston 232 and the end of the second cavity 222 defined by the cap 204. The hydraulic area of the first piston 230 acted upon by fluids in the center bore of the well tubing is equal to the hydraulic area of the second piston 232 acted upon by fluids from the central bore of the well tubing communicated to the second cavity 222; and therefore, the forces from the pressure of fluids in the center bore of the well tubing acting on the first and second piston 232 are balanced. In certain instances, the well drop carrying assembly 218 is not biased one way or the other by pressure in the center bore of the well tubing. However, in other instances, the well drop carrying assembly 218 could be biased by making the hydraulic areas unequal.
The cap 204 includes a tubular extension 214 that internally receives and guides a manual override arm 216 portion of the well drop assembly central shaft 228. The extension 214 and shaft 228 are sealed by a seal 250. The manual override arm 216 and extension 214 are keyed to prevent the well drop carrying assembly 218 from rotating in the housing assembly, yet allow the well drop carrying assembly 218 to translate between the holding and releasing positions.
An end of the well drop carrying assembly 218 proximate the first cavity 220 includes a well drop receptacle 258 sized to receive and hold a well drop 262. The well drop receptacle 258 has a drop opening 260 that the well drop can freely pass through. In certain instances, the drop opening 260 is a cylindrical through hole through the well drop receptacle 258.
In operation, the well drop releasing device 200 is coupled to a sidewall bung of a well tubing, e.g. the cementing head 114. Fluid can be pumped and other operations performed through the well tubing with the well drop releasing device 200 in place. Pressure can be applied through the second control port 242 to maintain the well drop carrying assembly 218 in the holding position, with the well drop receptacle 258 in the first cavity 220. When it is desired to release a well drop 260 into the well tubing, fluid pressure is applied through the second control port 242 to move the well drop carrying assembly 218 into the releasing position. In the releasing position, the well drop receptacle 258 is in the center bore of the well tubing and the well drop receptacle 258 is open and unobstructed. The well drop 260 is released from the well drop receptacle 258 and into the center bore of the well tubing. The pumping need not be ceased, nor pressure within the center bore released, while the well drop receptacle 258 is moved to the releasing position. Thereafter, fluid pressure is applied through the second control port 242 to move the well drop receptacle 258 back to the holding position. If, at any point, fluid pressure cannot be applied to the first or second control ports 240, 242, the manual override arm 216 can be manipulated by a person. Since the well drop carrying assembly 218 is pressure balanced to the pressure in the center bore, the person operating the manual override arm 216 need not overcome the pressure differential between the center bore and the surrounding atmosphere.
Thus, the concepts encompass a well drop releasing device having a housing defining an interior cavity. The device includes coupling that is sealingly couplable to a well tubing on a sidewall of the well tubing. The well drop has a piston in the cavity sealed to a cavity wall. The piston moves linearly in response to a control fluid pressure in the cavity. The well drop receptacle is provided to receive a well drop. The well drop receptacle is moved with the piston between a holding position, with the well drop receptacle arranged to hold a well drop in the well drop receptacle, and a releasing position, with the well drop receptacle arranged to release a well drop from the well drop receptacle into the well tubing.
The concepts encompass a method where a well drop is held in a receptacle of a well drop releasing device, apart from an interior of a well tubing. In response to a control fluid pressure on a piston, the receptacle is linearly translated to release the well drop into the interior of the well tubing.
The concepts encompass a device having a housing attachable to a well tubing. The device has a well drop carrier to carry a well drop. The well drop carrier is linearly movable to move the well drop from an exterior the well tubing into an interior the well tubing and release the well drop in the interior of the well tubing.
The concepts above include some, none or all of the following features. The well drop receptacle, in certain instances, is cylindrical to receive a spherical ball well drop. The holding position is with a drop opening of the well drop receptacle residing blocked by the housing. The releasing position is with the drop opening of the well receptacle apart from the housing and open to release a well drop from the well drop receptacle. The piston moves the well drop receptacle from the holding position to the releasing position in response to fluid pressure in the cavity. The housing defines a second cavity sealed from the first mentioned cavity, and the well drop releasing device includes a second piston in the second cavity sealed to a wall of the second cavity. The second piston is coupled to the well drop receptacle to move the well drop receptacle from the releasing position to the holding position in response to fluid pressure in the second cavity. The first mentioned piston and the second piston are pressure balanced to fluid pressure in the well tubing when the well drop releasing device is coupled to the well tubing. A fluid passage of the well drop releasing device has an open end to an interior of the well tubing when the well drop releasing device is coupled to the well tubing, and an open end to the second cavity on a side of the second piston opposite the well tubing. An end of the first mentioned cavity is open to an interior the well tubing when the well drop is releasing device is coupled to the well tubing. The well drop releasing device includes a first fluid line port to the first mentioned cavity and a second fluid line port to the second cavity. The housing and piston are keyed to prevent the piston from rotating in the housing. A manual override arm is coupled to the piston to move with the piston, and is sealed to the housing and protruding from the first mentioned cavity. The manual override arm provides a visual indication viewable from outside of the well drop releasing device of the well drop receptacle position.
A number of embodiments have been described. Nevertheless, it will be understood that various modifications may be made. Accordingly, other embodiments are within the scope of the following claims
Filing Document | Filing Date | Country | Kind |
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PCT/US2014/010354 | 1/6/2014 | WO | 00 |
Publishing Document | Publishing Date | Country | Kind |
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WO2015/102646 | 7/9/2015 | WO | A |
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PCT International Search Report and Written Opinion of the International Searching Authority, PCT/US2014/010354, dated Oct. 10, 2014, 12 pages. |
Number | Date | Country | |
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20160326827 A1 | Nov 2016 | US |