This invention relates in general to hydrocarbon well stimulation equipment and, in particular, to a ball drop wellhead control apparatus that provides a control gate between a frac ball drop or frac ball injector and a stimulation fluid stream that is being pumped into a hydrocarbon well.
Current methods for completing hydrocarbon wells often involve pumping fracturing fluids into one or more production zones of a well. In order to improve efficiency of this process, ball-actuated frac sleeves were invented. The ball-actuated frac sleeve has side ports that block fluid access to a production zone with which it is associated until an appropriately sized frac ball is pumped down from the surface to open the sleeve. The frac ball lands on a seat in the ball-actuated frac sleeve and frac fluid pressure on the frac ball forces the side ports in the frac sleeve to open and provide fluid access to that production zone.
A frac ball dropped out of sequence is very undesirable because one or more zones are not fractured and the ball-actuated sleeves associated with those zones are left closed, so expensive remediation is required. A ball drop wellhead control apparatus that provides a control ball between a frac ball drop or frac ball injector and a stimulation fluid stream that is being pumped into a hydrocarbon well has been invented, as described in assignee's pending U.S. patent application Ser. No. 13/331,903 filed Dec. 20, 2011, the specification of which is incorporated herein by reference. However, a ball drop wellhead control apparatus that is less expensive to construct is desirable.
Therefore, there exists a need for a ball drop wellhead control apparatus that is less expensive to construct.
It is therefore an object of the invention to provide a ball drop wellhead control apparatus that provides a control ball between a frac ball drop or frac ball injector and a stimulation fluid stream that is being pumped into a hydrocarbon well.
The invention therefore provides a ball drop wellhead control apparatus, including: a control body having a central passage; a control ball housed by the control body and obstructing the central passage, the control ball having an inlet port aligned with the central passage in a ball catch position, a ball pocket and an outlet port, the control ball inhibiting any frac ball in the ball pocket from being released from the ball drop wellhead control apparatus until the control ball is rotated to a ball release position in which the outlet port is aligned with the central passage.
The invention further provides a ball drop wellhead control apparatus, including: a control body adapted to be mounted below a frac ball drop or a frac ball injector so that any frac balls released from the frac ball drop or the frac ball injector enter a central passage of the control body before the frac balls can enter a frac fluid stream being pumped into a well; and a control ball housed by the control body and obstructing the central passage of the control body, the control ball providing fluid communication between the fluid stream and the frac ball drop or the frac ball injector when the control ball is in a ball catch position, while inhibiting any frac ball dropped from the frac ball drop or the frac ball injector from being released from the central passage of the control body until the control ball is moved to a ball release position.
The invention yet further provides ball drop wellhead control apparatus, including: a control body adapted to be mounted in a frac stack below a frac ball drop or a frac ball injector such that all frac balls released from the frac ball drop or the frac ball injector enter an inlet bore of the control body; a control ball housed by the control body and obstructing a central passage of the control body, the control ball having an inlet port aligned with the central passage when the control ball is in a ball catch position and an outlet port that is aligned with the central passage when the control ball is in a ball release position; and an actuator stem connected to the control ball, the actuator stem being adapted to move the control ball from the ball catch position to the ball release position.
Having thus generally described the nature of the invention, reference will now be made to the accompanying drawings, in which:
The invention provides a ball drop wellhead control apparatus that permits an operator to verify that only a correct ball has been dropped from a ball drop or a ball injector before the ball is released into a fracturing fluid stream being pumped into a well. Consequently, any malfunction of the ball drop or ball injector or operator error that results in a ball being dropped out of sequence, or too many balls being dropped at one time, can be prevented from impacting downhole conditions. Thus, the cost of expensive remediation can be avoided.
This embodiment of the control apparatus 10 is provisioned with quick-disconnect threaded unions described in assignee's U.S. Pat. No. 7,484,776 which issued Feb. 3, 2009, the specification of which is incorporated herein by reference. A male component 18 of the threaded union is connected to a top of the control body 12 and locked in place by a plurality of set screws 20. The male component 18 is used to mount a ball drop, a ball injector or an adapter used to mount a ball drop or a ball injector to the control apparatus 10. A female component 22 of the threaded union is connected to a bottom end of the control body 12. The female component 22 supports a hammer nut 24, as explained in the assignee's above-referenced patent. A lock nut 26 inhibits rotation of the female component with respect to the control body 12. The female component 22 and the hammer nut 24 are used to connect the control apparatus 10 to a frac head or the like in a manner that is known in the art and shown below in
In this embodiment, the control apparatus 10 is operated using a hydraulic actuator shown in
An injection bore 90 intercepts the inlet bore 70 between the lower ball seat 74 and the upper ball seat 76. The injection port 14 is received in an injection port bore 92 that is concentric with the injection bore 90 and welded to the control body 12 at weld 94. The control ball 78 has an inlet port 95, a ball catch pocket 96 and an outlet port 98. Through bores 100a, 100b provide fluid communication between an interior of the male connector 18 and the female connector 22. This ensures that a ball drop or a ball injector mounted to the control apparatus 10 is exposed to frac fluid pressure, and further ensures that the control ball 78 is free to rotate within the cylindrical cavity since it is pressure balanced on all sides. An outlet bore 102 below the central passage 70 receives an upper end of the female connector 22. An inner end 104 of the female connector 22 is received in a seal bore 105 that has a pair of circumferential grooves 106a, 106b that support fluid seals to provide a high pressure fluid seal between the female connector 22 and the cylindrical body 12.
As shown in
As explained above, in use a ball is dropped from the ball drop or ball injector 220 at an appropriate time while the control ball 78 of the control apparatus 10 is in the ball catch position shown in
The control apparatus 10, 50 also provides another advantage. It permits frac balls having a diameter less than an internal diameter of the injection port 14 to be injected manually if required. As is well understood in the art, frac balls with a diameter of less than 2″ are more fragile and consequently more likely to shatter when they are driven into the seat of a ball-actuated frac sleeve. If a pumping crew does not see the fracturing fluid pressure spike they expect after a small frac ball is pumped down, they may request another ball of the same diameter be dropped. This cannot be accomplished by most ball drops or ball injectors. Consequently, the job must be stopped, pressure released, disconnections made and time taken to load the requested frac ball. This request can be readily fulfilled without stopping the frac job using the control apparatus 10, 50 by closing the frac line 216 and manually inserting the requested frac ball using an auxiliary valve (not shown). The requested frac ball is then pumped through the high pressure valve 214 while the control ball 100 is in the ball release position shown in
The actuator 222 can be any control mechanism, including a hydraulic actuator, a stepper motor, a hydraulic motor, or any other power source capable of reliably moving the control ball from the ball catch position shown in
The scope of the invention is therefore intended to be limited solely by the scope of the appended claims.
Number | Name | Date | Kind |
---|---|---|---|
3039531 | Scott | Jun 1962 | A |
3445087 | Priese et al. | May 1969 | A |
3894718 | Koch et al. | Jul 1975 | A |
4099705 | Runyan | Jul 1978 | A |
4111229 | Christian | Sep 1978 | A |
4231545 | Nelimarkka | Nov 1980 | A |
4460157 | Marchal | Jul 1984 | A |
4467823 | Shaffer et al. | Aug 1984 | A |
4577830 | Winegeart | Mar 1986 | A |
4605202 | Tsuno et al. | Aug 1986 | A |
4934656 | Groves et al. | Jun 1990 | A |
5154395 | Horvei | Oct 1992 | A |
5494256 | Beson | Feb 1996 | A |
6253791 | Miklo | Jul 2001 | B1 |
Entry |
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For the American Heritage Dictionary definition: align. (n.d.) The American Heritage® Dictionary of the English Language, Fourth Edition. (2003). Retrieved Aug. 8, 2014 from http://www.thefreedictionary.com/align. |
For the American Heritage Dictionary definition: right. (n.d.) The American Heritage® Dictionary of the English Language, Fourth Edition. (2003). Retrieved Aug. 8, 2014 from http://www.thefreedictionary.com/right. |
Number | Date | Country | |
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20140166265 A1 | Jun 2014 | US |