The field of the invention is a completion system that allows removal of zone isolation packers with a top packer and the screens that separate them down to the zone isolation packer where an inner string gets stuck and doing so in a single trip.
Multi-zone fracturing and gravel packing assemblies comprise of an outer assembly that hangs from a top packer and further comprises an alternating pattern of zone isolation packers with screens and gravel exit ports between them. There is an inner assembly of a crossover and wash pipe that is assembled into the outer assembly at the surface so that they are run in together. When the proper depth is reached, the top packer is set and then the other zone isolation packers are set at the same time by pressurizing the outer assembly at a time when all the screens are blocked with valves that can later be selectively opened with a device mounted to the wash pipe. With all the zone isolation packers set, the inner string with the crossover and the wash pipe is positioned with respect to the zone isolation packer above the zone to be fractured and gravel packed.
If during the fracturing or gravel packing operation the inner string gets stuck in the zone isolation packer, there are few options and they are very expensive. In one option the inner string is simply pulled until it shears apart somewhere in the outer completion and the balance of the inner string is pulled out of the hole. Thereafter that portion of the wellbore is abandoned in favor of a deviated bore that is offset from the abandoned hole. The other option calls for again shearing the inner string and then grabbing the top packer and rotating to the right to see which left hand thread at which zone isolation packer releases. If a packer too high up breaks loose then it is pulled to the surface and on another trip the next packer down is tagged and the same procedure is repeated until the zone isolation packer that has the remnant of the stuck remaining portion of the inner string can be reached so that it can be pulled out with the balance of the inner string that is stuck to it. This procedure can potentially cost a lot money depending on how many trips in the hole it takes to finally get down to the packer in question that has the inner string remnant stuck to it. This alternative is rarely used as it is in most cases cheaper to abandon the hole with the stuck pipe and come out with a lateral above it that tracks the orientation of the original abandoned well.
The present invention allows a one trip system that will remove all zone isolation packers with the top packer when all packer release mechanisms are first released and then the top packer is picked up. The system unlocks a disconnect for a zone to be fractured and gravel packed before those procedures start for that zone. Then if that zone is where the inner string got stuck to the zone isolation packer a pickup force on the top packer will release all zone isolation packers down to the zone isolation packer with the remnant of the inner string stuck in it. A breakaway below the packer with the inner string stuck in it will release and the entire outer assembly down to the lowest zone isolation packer that has the inner string remnant stuck in it will come out in a single trip. Those skilled in the art will appreciate other aspects of the invention from a review of the description of the preferred embodiment and the associated drawings while recognizing that the full scope of the invention is to be found in the literal and equivalent scope of the appended claims.
A completion assembly of a top packer and zone isolation packers separated by screens has a disconnect in a selected zone to be fractured or gravel packed that is armed before such a procedure starts. Initially when the assembly of the outer completion and the inner string are properly located and all the screens valved off, all the packers are pressure set and the packer release device associated with each packer is armed. Before starting a fracturing or gravel packing operation from a given zone isolation packer, a disconnect for that zone packer is armed so that if the inner string sticks in that packer, the inner string is sheared and removed and another trip is used to grab the top packer and pick up. Such picking up releases all the packers down to the one armed disconnect. The disconnect releases bringing up the remnant of the inner string stuck in the packer just above the actuated disconnect.
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Each of the zone isolation packers 16 and 18 has a selectively released retraction assembly 32 and 34 respectively. What these assemblies can do after they are armed into the operating mode is that in response to a pulling force delivered through the top packer 14 as will be explained below, the sealing elements and slips on packers 16 and 18 release the sealing grip so that those packers do not resist efforts to pull out the outer assembly 13. The top packer is a known design and as is common in such packers it has a ring that holds the set position of the top packer 14 until it is engaged by a tool to break a shear pin so that the hold of the top packer 14 can be released. It should be noted that the act of setting all the packers 14, 16 and 18 with screens 20, 22 and 24 blocked at valves 26, 28 and 30 will automatically unlock the retraction assemblies that for run in were locked against relative movement. As will be explained below, the internal pressure that sets the packers 14, 16 and 18 also moves a piston that takes support away from a locking dog so that a subsequent upward pull on the top packer will extend the zone isolation packers 16 and 18 to release them for removal from the tubular 10 to the surface.
Above the screen or screens in a given zone between packers or at the bottom of the outer assembly 13, if no sump packer 12 is used, is a selectively armed disconnect such as 36, 38 and 40. During run in these disconnects are locked against relative movement so that the weight of the assembly can go through them without a release. As will be explained in detail below, when it is desired to perform a fracturing or gravel packing operation off of a given packer such as 14, 16 or 18, the act of positioning the inner string assembly 42 on one of these packers activates the movement that releases a dog to allow relative movement that will result in a disconnection at that disconnect if there is an upward pull delivered to the outer assembly 13 through the top packer 14, which at that time has been unset along with any other packer that experience the same removal force. Normally the preferred order of treating zones goes from the bottom up but other orders are within the scope of the invention.
The inner string 42 has a schematically illustrated shifting device 44 that can selectively open valves 26, 28 or 30 to selectively open screens 20, 22 or 24. The inner string assembly 13 also carries a collet to defeat the locks on the disconnects 36, 38 and 40 by being pulled through them and set down on them as will be explained below.
With the major components having been described the operation in broad terms will now be described. The outer tubular assembly 13 and the inner tubular assembly 42 are run in together to the desired location with all screens 20, 22 and 24 closed at valves 26, 28 and 30. The top packer 14 sets first with internal pressure in the outer assembly 13.
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Those skilled in the art will appreciate that the above described assembly allows for the ability to unset zone isolation packers that are above an armed disconnect. The specific disconnect to be armed is selected before a zone associated with it is fractured or gravel packed. If the inner string then gets stuck in that zone the top of it down to the location where it is stuck is sheared off and a retrieval tool unsets the top packer and all zone isolation packers down to the armed disconnect so that the remnant of the inner string that is stuck in the packer associated with the disconnect that breaks loose can bring up the remnant with it. The zones already completed can then be produced or the remaining zones can then be completed with another assembly of an outer assembly with an inner assembly run back in to tag the disconnect that previously let go and the completion process for those zones can take place.
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.