This invention relates to directional drilling generally. In one aspect, the invention relates to a rotator for connecting in a bottom hole assembly for rotating a drilling motor an incremental distance using the pressure of the drilling fluid. In yet another aspect, the invention relates to a bottom hole assembly of a mud motor with a bent housing connected to a drill bit, a steering tool, and a rotator between the mud motor and the steering tool that will rotate the mud motor to reposition the bent housing and the steering tool sensors simultaneously so that the orientation of the steering tool sensors and the bent housing is unchanged as the bent housing is repositioned.
The apparatus and method of this invention are particularly useful for use with coil tubing for drilling directionally controlled lateral drain holes. For example, in fractured reservoirs, such as the Austin chalk formation in Texas, a vertical well is drilled to the formation then a lateral drain hole is drilled following the drip angle of the formation in the hope of penetrating one or more fractured zones in which hydrocarbons are trapped. The lateral portion of the well bore is usually drilled using coiled tubing.
The bottom hole assembly (BHA) for kicking the well off vertical using coil tubing includes a drill bit attached to a mud motor for rotating the bit, and a steering tool. This assembly usually has a bent sub between the steering tool and the motor and the motor has a bent housing all of which being designed to build angle rapidly. When the desired angle is reached, this BHA is replaced by a "hold angle" assembly that is the same except the bent sub is removed. The steering tool can be either one that transmits information to the surface through an electrical cable or an MWD tool that transmits information to the surface using pressure pulses in the drilling mud. The steering tool may also include, and usually does include, a gamma ray counter.
One obvious problem with this arrangement is the inability to rotate the coiled tubing to adjust the position of the bent housing although the reactive torque on the coil tubing by the torque supplied to the bit by the mud motor will cause the BHA to rotate in the opposite direction varying amounts as the torque varies as the weight on the bit varies.
Therefore, it is an object and feature of this invention to provide a stepping motor or rotator that will rotate the mud motor and the bent housing an incremental distance by stopping or reducing the flow of drilling fluid and then increasing the pressure in the drilling fluid at the BHA.
It is a further object and advantage of this invention to provide a downhole assembly that includes a steering tool, a mud motor, and the rotator of this invention positioned between the steering tool and the mud motor that will rotate the steering tool sensors the same distance that the rotator rotates the mud motor so that the sensors will always remain oriented properly with the bent housing of the mud motor.
It is a further object and feature of this invention to provide a rotator that can provide sufficient torque to rotate both the sensors of the steering tool and the mud motor at the same time.
These and other objects, advantages, and features of this invention will be apparent to those skilled in the art from a consideration of the specification including the attached drawings and appended claims.
In the Drawings
FIG. 1 is a view in elevation of a bottom hole assembly including steering tool 10 connected to coiled tubing 8 and electrical cable 9, rotator 12, and mud motor 14 having bent housing 15, the lower end of which is attached to bit 16. The bit is rotated relative to the housing of the mud motor by an output shaft (not shown) that extends through the bent housing and is connected to bit 16.
FIGS. 2A, 2B, and 2C are vertical sectional views of the rotator of this invention when no drilling mud or drilling fluid is being circulated through the tool.
FIGS. 3A and 3B are vertical sectional views through the portions of the rotator shown in FIGS. 2A and 2B after the pressure of the drilling fluid has increased sufficiently to cause the rotator to rotate the mandrel of the steering tool above the rotator and the housing of the mud motor below the rotator an incremental distance. This is also the condition of the upper portion of the rotator during drilling operations when the drilling mud is being circulated through central passageway 30 of the torque tube of the rotator to the mud motor and drilling bit below.
FIG. 4 is a cross-sectional view taken along line 4--4 of FIG. 2B showing the position of the cam arms when drilling mud is not being circulated through the rotator.
FIG. 5 is a cross-sectional view taken along line 5--5 of FIG. 3B showing the position of the cam arms after the rotator has rotated the steering tool and mud motor an incremental distance and drilling mud is being circulated through the rotator through opening 30.
FIG. 6 is a section taken along line 6--6 of FIG. 2B.
FIG. 7 is a cross-sectional view taken along line 7--7 of FIG. 2C.
FIG. 8 is a sectional view taken along line 8--8 of FIG. 2A.
FIG. 9 is a sectional view taken along line 9--9 of FIG. 3A.
Basically the rotator rotates the steering tool and the mud motor an incremental distance by using mud pressure to move a piston to cause cam arms that are in engagement with an internal ratchet to rotate a torque tube connected to the mandrel of the steering tool and the housing of the motor an incremental distance. The torque tube is rotated the same incremental distance each time the pressure is reduced and increased in the rotator.
Referring now to the drawings, rotator housing 17 is attached to housing 18 of the steering tool by threads 19. Output shaft 20 of the steering tool is connected to the upper end of torque tube 21 of the rotator by threaded coupling 22. Torque tube 21 extends all the way through the rotator and is connected to mud motor housing 23 by double threaded pin adapter 24, as shown in FIG. 2C. One of the features of this invention is that the rotator rotates not only the mud motor but also mandrel 20 of the steering tool the same distance each time it is actuated so that the sensors in the steering tool will maintain the same orientation to the bent housing of the mud motor as the rotator repositions the bent housing of the mud motor.
The upper end of torque tube 21 is surrounded by piston 25. Internal piston seal 26b and external piston seal 27b are held in sealing engagement by internal packing gland 26a and external packing gland 27a. Threads 28 are available to adjust the compression in the seal rings. Torque tube 21 has a longitudinal opening 30 that extends all the way from a point just below its upper end as shown in FIG. 2A through the lower end of the torque tube. Connecting opening 30 to the outside of the torque tube are a plurality of six lateral ports 31, two of which are shown in the drawing. When the fluid pressure in annulus 32 is increased sufficiently to compress spring 33 and move piston 25 downwardly to the position shown in FIG. 3A, ports 31 will be open and drilling mud can flow through the ports into central opening 30 and through the rotator to the mud motor connected at the lower end of the rotator.
As the piston moves downwardly, lower piston end connection 34 moves downwardly under with the piston as does latch extension ring 35. The lower end of the extension ring engages arm 36 on latch 37 and causes it to pivot to the position shown in FIG. 3A releasing the piston for further downward movement. Also moving downwardly with the piston are three actuating cam shafts 38. Cam shafts 38 and latches 37 are shown in FIGS. 6 and 8. In FIG. 9, the relationship of latch extension ring 34 and latch arm 36 is shown.
FIGS. 4 and 5 are cross-sections through one of the cam sections of the tool showing one set of three cam arms 41. In the embodiment shown, three sets of cam arms are shown. Throughout each section, the cross-sectional shape of torque tube 21 is especially arranged to provide three lever arms 40 against which cam arms 41 can exert the force required to rotate the torque tube clockwise as shown in FIG. 5. This rotation occurs each time piston 25 is moved downwardly by mud pressure in the tubing. Cam arms 41 are carried by cam shafts 38. Each of the cam arms are pivotally connected to one of the cam shafts by pins 41a. The other end of each cam arm engages a tooth on internal ratchet 43. As shown in FIG. 2B, when piston 25 is in its upward position closing ports 31, the cam arms are inclined downwardly in engagement with the upper surface of cam axial walls 44. The cam arms are held in that position by elastic cords 45 that are anchored at one end to the cam axial walls and while the other ends extend through openings through the cam arms and are attached to balls 45a that anchor the elastic cords to the cam arms. As piston 25 moves downwardly, moving cam rods 38 downwardly, cam arms 41 are pivoted to positions generally perpendicular to the longitudinal axis of the tool, as shown in FIG. 3B. Since the perpendicular distance to the ratchet from the cam shafts is less than the inclined distance, the movement causes internal ratchet 43 to rotate one tooth or in this case 24.degree.. One of the advantages of this arrangement is that the force component exerted on the torque tube by the cam arms is substantial and more than adequate to rotate the mud motor even if the bit is in engagement with the bottom of the hole and to also rotate the internal sensors of the steering tool.
In operation, then, the torque tube of the rotator will rotate the steering tool sensors and the mud motor the same incremental distance each time piston 25 is moved downwardly using the pressure of the drilling fluid in the tubing. The torque tube rotates the mud motor by rotating mechanical lock assembly located at the lower end of the rotator and is shown in FIG. 2C. It includes mechanical lock housing 50 that is attached to mud motor housing 23 by threaded double pin connection 24. Mechanical lock housing is supported for rotation on thrust bearings 52. The housing is supported for rotation relative to the torque tube by journal bearings 53. Spring loaded pawls 54 engage sprocket 55 as shown in FIG. 7. The teeth of the sprocket and the ends of the pawl are designed to allow rotation in a clockwise direction as shown in FIG. 7 and to prevent rotation in the counterclockwise direction. The clockwise direction is the direction in which the tool is designed to rotate the mud motor and the steering tool relative to the tubing string.
From the foregoing it will be seen that this invention is one well adapted to attain all of the ends and objects hereinabove set forth, together with other advantages which are obvious and which are inherent to the method and apparatus.
It will be understood that certain features and subcombinations are of utility and may be employed without reference to other features and subcombinations. This is contemplated by and is within the scope of the claims.
Because many possible embodiments may be made of the invention without departing from the scope thereof, it is to be understood that all matter herein set forth or shown in the accompanying drawings is to be interpreted as illustrative and not in a limiting sense.