Reamer drill bit
12305449 ยท 2025-05-20
Assignee
Inventors
Cpc classification
International classification
Abstract
A reamer drill bit includes a body having an outer surface defining a plurality of grooves, and a cutter arm with an interior surface. Each groove extends from a first end of the body to a second end of the body and has at least one groove recess, at least one groove peak connected by a sloped section, and a track arranged in the sloped section. The cutter arm is slidably attached to the body, is configured to expand radially away from the body, and is configured to slide longitudinally relative to the body along the track. The interior surface of the cutter arm includes at least one arm valley, and at least one arm protrusion. The at least one groove recess receives the at least one arm protrusion and the at least one arm valley receives the at least one groove peak.
Claims
1. A reamer drill bit to form a wellbore, the reamer drill bit comprising: a fluid connection end; a free end; a central axis, wherein the reamer drill bit is centered on the central axis; a body having a first end and a second end, wherein the body comprises: an outer surface extending from the first end to the second end, the outer surface comprising: at least one recess, at least one peak, and a sloped section connecting the at least one recess and at least one peak; a plurality of outlets defined in the outer surface of the body; wherein the plurality of outlets are fluidly connected to a fluid source, and a cutter arm configured to expand radially away from the body, wherein the cutter arm is slidably attached to the body and configured to slide longitudinally relative to the body, each cutter arm comprising: an interior surface comprising: at least one arm valley, and at least one arm protrusion; a first cutting surface opposite the interior surface; and a second cutting surface perpendicular to the interior surface wherein the second cutting surface extends axially past the second end of the body along the central axis; wherein the at least one recess receives the at least one arm protrusion and the at least one arm valley receives the at least one peak.
2. The reamer drill bit of claim 1, wherein the interior surface of the cutter arm comprises a cam configured to engage with the outer surface of the body.
3. The reamer drill bit of claim 1, further comprising a central axis, wherein the reamer drill bit is centered on the axis; wherein the arm covers at least two outlets of the plurality of outlets; wherein the second cutting surface of the cutting surface is perpendicular to the central axis and forms the free end of the reamer drill bit.
4. The reamer drill bit of claim 3, wherein a first end of the sloped section is radially closer to the axis than a second end of the sloped section, wherein at least one outlet of the plurality of outlets is defined in the sloped section.
5. The reamer drill bit of claim 1, wherein the outer surface of the body is configured to engage with a cam disposed on the peak of the at least one arm protrusion of the cutter arm.
6. The reamer drill bit of claim 1, wherein the outer surface of the body comprises a second recess and a second peak.
7. The reamer drill bit of claim 1, wherein the first cutting surface opposite the interior surface comprises teeth or spikes.
8. The reamer drill bit of claim 7, wherein the second cutting surface perpendicular to the interior surface comprises teeth or spikes.
9. The reamer drill bit of claim 1, wherein the body further comprises: multiple fluid tubings defined in the body, each fluid tubing of the multiple fluid tubings extending from an opening to a corresponding outlet in the plurality of outlets; and an actuation port arranged at the openings of the multiple fluid tubings, wherein the plurality of outlets connect to the fluid source via the fluid tubing in the body when the actuation port is open.
10. The reamer drill bit of claim 9, further comprising an actuation sub-assembly configured to fluidly connect or fluidically isolate the fluid tubing.
11. The reamer drill bit of claim 10, wherein the actuation sub-assembly comprises an activation port configured to open or close.
12. The reamer drill bit of claim 11, wherein the actuation sub-assembly is configured to fluidly connect or fluidically isolate the fluid tubing based on a received signal.
13. The reamer drill bit of claim 1, wherein the plurality of outlets comprise a first outlet defined in the first recess of the body.
14. The reamer drill bit of claim 13, wherein the plurality of outlets comprise a second outlet defined in a second recess of the outer surface of the body, wherein the first and second recess are axially aligned on the outer surface, wherein the arm covers the first and second recesses.
15. The reamer drill bit of claim 1, wherein the plurality of outlets are arranged between the first end and the second end of the body, wherein the body further comprises at least one nozzle at the second end of the body fluidly connected to the fluid source.
16. The reamer drill bit of claim 1, wherein the at least a portion of the outer surface of the body is a toothed pattern.
17. The reamer drill bit of claim 1, wherein the cutter arms have a retracted diameter in the first position and an extended diameter in a second position, wherein the cutter arms are biased towards the first position.
18. A method comprising: providing a cutter arm of a reamer drill bit connected to a body of the reamer drill bit, wherein the cutter arm extends from a location between a first end and a second end of the body to a location past the second end of the body, wherein the reamer drill bit has a free end, wherein the cutter arm comprises an interior surface slidably attached to the body, a first cutting surface opposite the interior surface, and a second cutting surface perpendicular to the interior surface; and flowing pressurized fluid into a fluid channel defined in the body of the reamer drill bit, wherein the fluid channel extends to at least one outlet at an outer surface of the body of the reamer drill bit, wherein the outlet is arranged between the first end of the body and the second end of the body, wherein the interior surface of the cutter arm covers the outlet in a first position.
19. The method of claim 18, wherein flowing pressurized fluid into a fluid channel comprises receiving an actuation signal.
20. The method of claim 19, wherein flowing pressurized fluid into a fluid channel comprises fluidly connecting a fluid source to the at least one outlet at the outer surface of the body.
21. The method of claim 18, wherein flowing pressurized fluid into a fluid channel comprises opening an actuation port to fluidly connect a plurality of fluid channels to the fluid source.
22. The method of claim 18, further comprising translating the reamer drill bit such that the cutter arm receives a downhole force that translates the cutter arm along a sloped section of the body.
23. The method of claim 18, wherein flowing pressurized fluid into the fluid channel defined in the body of the reamer drill bit, comprises increasing the pressure of the pressurized fluid by 300 psi to 750 psi.
24. The method of claim 18, further comprising: flowing the pressurized fluid to a nozzle disposed on the second end of the body; and spraying the pressurized fluid, by the nozzle, to an exterior of the reamer drill bit.
25. The method of claim 18, wherein flowing pressurized fluid into the fluid channel defined in the body of the reamer drill bit presses the cutter arm into a second position.
26. The method of claim 25, wherein the reamer drill bit is centered on an axis, wherein the cutter arm is radially farther from the axis in the second position than in the first position.
27. The method of claim 26, further comprising ceasing the flow of pressurized fluid by closing an actuation port.
Description
DESCRIPTION OF DRAWINGS
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(9) Like reference symbols in the various drawings indicate like elements.
DETAILED DESCRIPTION
(10) This disclosure relates to a reamer drill bit with expandable and retractable cutter arms. The cutter arms are configured to drill both the pilot hole and ream the opening of the wellbore for a casing, thereby reducing the time that a newly formed wellbore remains uncased and reducing the likelihood of swelling. If the uncased wellbore does swell, the some drill bit can be constricted from moving by tight spots. The reamer drill bit can reduce the risk of the drill bit being trapped within a swollen un-cased wellbore because the expandable arms can re-ream the swollen wellbore from the floor of the wellbore. The downhole tool can then be removed. This configuration also reduces operation run time by drilling and reaming the wellbore in a single run and reduces the likelihood of broken components that can occur when removing a downhole tool from a swollen un-cased wellbore.
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(13) A first lock 120 is arranged on each peak 114c to lock the cutter arm 104 in the extended position, shown in
(14) The first sloped section 114d defines a recessed track (not shown) that extends from a first (end) point 124 at the first recess 114a of the groove 114 to a second (end) point 126 at the peak 114c of the groove 114 to a third (end) point 127 at the second recess 114b of the groove 114. The first point 124 of the first sloped section 114d is radially closer to the axis 107 than the second point 126 of the first sloped section 114d. The first lock 120 is arranged at the second point 126 and is configured to lock a cam (not shown) of the cutter arm 104.
(15) The outer surface 112 of the body 110 defines multiple outlets 128 in each groove 114 of the body 110. A first outlet 128a is arranged in the first recess 114a and a second outlet 128b is arranged in the second recess 114b. The outlets 128 are fluidly connected to a fluid source 129 via a fluid tubing 130. A pump (not shown) is configured to convey fluid from the fluid source 129 to the outlets 128.
(16) The body 110 further includes an actuation sub-assembly 132 having an actuation port 134 arranged at an opening of the fluid tubing 130. The actuation port 134 controls the inflow of fluid to the outlets 128. The actuation sub-assembly 132 is configured to open or close the fluid tubing 130. When closed, the actuation port 134 prevents fluid communication between the fluid source 129 and the outlets 128. When open, the actuation port 134 fluidly connects the fluid source 129 and the outlets 128. The actuation sub-assembly 132 also includes an actuator (not shown) that opens or closes the actuation port 134. The actuator can be a ball, down-link, or radio-frequency ID chips (RFID).
(17) The body 110 also includes nozzles 146 arranged at the second end 118 of the body 110. The nozzles 146 are fluidly connected to the fluid source 129 and are configured to spray fluid onto the floor of the wellbore 106.
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(19) The cutter arm 104 includes a first protrusion 152, a second protrusion 154, and a valley 156 arranged between the first protrusion 152 and second protrusion 154. The first protrusion 152 has a cam 158 extending from the first protrusion 158, for example from a peak of the first protrusion. The track in the groove 114 engages the cam 158 such that the cam 158 follows the track as the cutter arm 104 moves longitudinally from the first end 116 of the body 110 towards the second end 118 of the body 110. The cutting surface 150 can include spikes or teeth to cut the formation. The first lock of the body may lock the cam and/or the first protrusion. The first protrusion can also include a latch to engage with the second lock so that the cutter arms 104 remain in the retracted position.
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(21) When the cutter arms 104 are in the retracted position, the reamer drill bit 102 has a diameter d.sub.retracted. The second lock 122 is engaged with the cutter arm 104 so that the cutter arm 104 is longitudinally constrained relative to the body 110 and the cam 158 is prevented from translating along the track. This reamer drill bit 102 is in the retracted configuration during drilling operations, which can include drilling and transportation uphole and/or downhole. The cutter arms 104 extend radially as the cutter arm 104 translates longitudinally from the first end 116 of the body 110 to the second end 118 of the body 110.
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(24) When the cutter arms 104 are in the extended position, the reamer drill bit 102 has a diameter d.sub.extended. The first lock 120 is engaged with the cutter arm 104 so that the cutter arm 104 is longitudinally constrained relative to the body 110 and the cam 158 is prevented from translating along the track. This reamer drill bit 102 is in the extended configuration during reaming operation, which can include reaming, transportation uphole and/or downhole, and cutting a swollen formation. In some cases, the cutter arms are in the extended position, or transitioning from the retracted position to the extended position, during drilling operations. The cutter arms 104 can retract into the retracted position, shown in
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(27) To move the cutter arms 104 from the retracted position to the extended position, the actuation sub-assembly 132 is first actuated by receiving a signal from an actuator. The actuator may be an RFID signal received by an RFID chip, a hydraulic actuator, a ball drop actuator, or any other actuator known in the art. After the actuation sub-assembly receives the actuation signal from the actuator, the actuation port 134 is opened and the second lock 122 is disengaged, by the actuation sub-assembly 132. Fluid flows from the fluid source 129 through the fluid tubing 130 to the outlets 128 in the outer surface 112 of the body 110. As the cutter arms 104 are in the retracted position, the interior surface 148 of the cutter arm 104 abuts or mates with the outer surface 112 of the body 110. The high pressure fluid flows through the outlets 128 and pushes the cutter arms 104 radially outward away from the body 110 and axis 107, which is translated to longitudinal movement and radial movement by the track and cam 158 connection. In some cases, the reamer drill bit 102 is translated uphole such the cutter arms 104 receive a downhole force that translates the cutter arms 104 downhole along a track of the first sloped section 114d of the body 110. The cam 158 moves from the first point 124 of the track to the second point 126 of the track. The first lock 120 at the second point 126 of the track at the peak 114c of the body 110 locks. The lock is prompted to lock or unlock upon receipt of a signal, for example an RFID signal or a pressure signal. When the first lock 120 is locked, the cutter arm 104 is longitudinally and radially constrained to the body in the extend position.
(28) In some cases, the track is defined in the cutter arm and the cam is disposed on the peak of the groove. In such a configuration, the track in the cutter arm receives the cam on the groove.
(29) A number of embodiments have been described. Nevertheless, it will be understood that various modifications may be made without departing from the spirit and scope of the disclosure. Accordingly, other embodiments are within the scope of the following claims.