METHOD AND APPARATUS FOR STEERING A DRILL STRING AND REAMING WELL BORE SURFACES NEARER THE CENTER OF DRIFT
20170241207 · 2017-08-24
Inventors
- Gilbert Troy Meier (Vernal, UT, US)
- James D. Osterloh (West Richland, WA)
- Joshua J. Smith (Vernal, UT, US)
- Joseph Aschenbrenner (Blackfoot, ID, US)
- James D. Isenhour (Windsor, CO, US)
Cpc classification
International classification
E21B10/26
FIXED CONSTRUCTIONS
Abstract
A steerable well bore drilling device and method are disclosed. The steerable well bore drilling device comprises a drill string, a bit coupled to the drill string, a drilling motor within the drill string and driving the bit, and a pair of eccentric reamers coupled to the drill string and positioned between the bit and the motor.
Claims
1. A steerable well bore drilling device, comprising: a drill string; a bit coupled to the drill string; a drilling motor within the drill string and driving the bit; and a pair of eccentric reamers coupled to the drill string and positioned between the bit and the motor.
2. The steerable well bore drilling device of claim 1, wherein the pair of eccentric reamers are diametrically opposed about the drill string.
3. The steerable well bore drilling device of claim 2, wherein each eccentric reamer comprises multiple sets of cutting elements.
4. The steerable well bore drilling device of claim 3, wherein each set of cutting elements are arranged along a spiral path along the surface of each eccentric reamer.
5. The steerable well bore drilling device of claim 1, wherein the eccentric reamers are identical.
6. The steerable well bore drilling device of claim 1, further comprising a drive shaft coupling the bit to the drilling motor, wherein the drive shaft passes through the pair of eccentric reamers.
7. The steerable well bore drilling device of claim 1, further comprising a measure while drilling device adapted to control the rotational position of the pair of eccentric reamers about the drill string to steer the drill string.
8. The steerable well bore drilling device of claim 1, wherein the pair of eccentric reamers are coupled to the drill string at a predetermined separation corresponding to a curvature of the well bore.
9. The steerable well bore drilling device of claim 1, wherein the pair of eccentric reamers extend from the drill string a predetermined distance corresponding to a curvature of the well bore.
10. The steerable well bore drilling device of claim 1, wherein the pair of eccentric reamers provide a steering force when the drill string is sliding and condition the well bore when the drill string is rotating.
11. A method of drilling a well bore, comprising: coupling a bit to a drill string; coupling a drilling motor positioned within the drill string to the bit; coupling a pair of eccentric reamers to the drill string, wherein the pair of eccentric reamers are positioned between the bit and the motor; drilling the well bore; steering the bit by sliding the drill string within the well bore; and reaming the well bore by rotating the drill string.
12. The method of claim 11, wherein the pair of eccentric reamers are diametrically opposed about the drill string.
13. The method of claim 12, wherein each eccentric reamer comprises multiple sets of cutting elements.
14. The method of claim 13, wherein each set of cutting elements are arranged along a spiral path along the surface of each eccentric reamer.
15. The method of claim 11, wherein the eccentric reamers are identical.
16. The method of claim 11, wherein the bit is coupled to the drilling motor by a drive shaft that passes through the pair of eccentric reamers.
17. The method of claim 11, further comprising controlling the rotational position of the pair of eccentric reamers about the drill string to steer the drill string with a measure while drilling device.
18. The method of claim 11, further comprising separating the pair of eccentric reamers along the drill string at a predetermined distance corresponding to a curvature of the well bore.
19. The method of claim 11, wherein the pair of eccentric reamers extend from the drill string a predetermined distance corresponding to a curvature of the well bore.
20. The method of claim 11, wherein steering step and the reaming step occur at separate times.
Description
DESCRIPTION OF THE DRAWINGS
[0019] The invention is described in greater detail by way of example only and with reference to the attached drawing, in which:
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
[0026]
[0027]
DESCRIPTION OF THE INVENTION
[0028] As embodied and broadly described, the disclosures herein provide detailed embodiments of the invention. However, the disclosed embodiments are merely exemplary of the invention that may be embodied in various and alternative forms. Therefore, there is no intent that specific structural and functional details should be limiting, but rather the intention is that they provide a basis for the claims and as a representative basis for teaching one skilled in the art to variously employ the present invention.
[0029] A problem in the art capable of being solved by the embodiments of the present invention is increasing the drift diameter of a well bore. It has been surprisingly discovered that providing diametrically opposed reamers allows for improved reaming of well bores compared to conventional reamers. This is accomplished, in one embodiment, by cutting away material primarily forming surfaces nearer the center of the drift. Doing so reduces applied power, applied torque and resulting drag compared to conventional reamers that cut into all surfaces of the well bore.
[0030]
[0031] As shown, the drill string advances to the left as the well is drilled. Each of the reamers preferably has an outermost radius, generally in the area of its cutting elements, less than the inner radius of the well bore. However, the outermost radius of each reamer is preferably greater than the distance of the nearer surfaces from the center of drift. The top and bottom reamers preferably comprise a number of carbide or diamond cutting elements, with each cutting element preferably having a circular face generally facing the path of movement of the cutting element relative to the well bore as the pipe string rotates and advances down hole.
[0032] In
[0033]
[0034]
[0035] Each of the Sets of cutting elements are preferably arranged along a spiral path along the surface of the bottom reamer, with the down-hole cutting element leading as the reamer rotates (e.g., see
[0036]
[0037]
[0038] The positioning and arrangement of Sets of cutting elements may be rearranged to suit particular applications. For example, the alignment of the Sets of cutting elements relative to the centerline of the drill string, and the distance between the bottom eccentric face and the top eccentric face along with the outer diameter of the reamer body can be adjusted to each application.
[0039]
[0040]
[0041]
[0042] Preferably, reamers 505A-B are positioned in front of the drilling motor 515 to steer the bit 510 during a slide, or when the drill string 500 is not rotating. Lateral forces on reamers 505A-B during a slide preferably results in a lateral force on bit 510, causing the assembly to turn as it drills forward (i.e. to the right in the figures) and creating a curved bore hole. Preferably the spacing between reamer 505A and 505B as well as the distance reamers 505A-B are positioned behind drill bit 510 are matched to the bit size and the desired turn build rate. For example, larger reamers 505A-B will create a smaller diameter curve than smaller reamers 505A-B. With larger reamers 505A-B, a larger drill bit 510 will be necessary accommodate the larger reamers. Additionally, by placing the reamers further apart, a larger diameter curve can be cut.
[0043] The rotational positioning of reamers 505A-B is preferably monitored by a Measure While Drilling (MWD) device 520 positioned behind reamers 505A-B within drill string 500. MWD 520 may have GPS sensors, magnometers, thermometers, rotation sensors, accelerometers, and/or other sensors to determine at least one of the rotational speed of the drillstring, the smoothness of that rotation, the type and severity of any vibration downhole, downhole temperatures, torque and weight on bit, and mud flow volume. With the data from MWD 520 reamers 505A-B can be rotated to provide the proper direction of curvature for drilling the well bore. Additionally, the path of the well bore may be corrected, adjusted, and/or maintained based on data received from MWD 520. In other embodiments, the positioning of the drill string may be determined by calculating the twist in the drill string.
[0044] Preferably, once the slide is complete and the drill string begins rotating, reamers 505A and 505B continue to ream and condition the bore hole as described herein. Preferably, the bore conditioning action benefits all of the drill string components that follow reamers 505A-B by clearing rough spots and tight spots in the well bore. Additionally, the cutting structures on reamers 505A-B preferably take rotational vibrations that come from the bit and motor and transmit them to the well bore as cutting action. The drill string between reamers 505A-B and the surface is preferably protected from those vibrations. By putting the steering reamers 505A-B between the motor and bit, vibrations from both bent-motors and the drill bit are addressed and the greatest possible amount of the drill string is protected.
[0045] Other embodiments and uses of the invention will be apparent to those skilled in the art from consideration of the specification and practice of the invention disclosed herein. All references cited herein, including all publications, U.S. and foreign patents and patent applications, are specifically and entirely incorporated by reference. It is intended that the specification and examples be considered exemplary only with the true scope and spirit of the invention indicated by the following claims. Furthermore, the term “comprising of” includes the terms “consisting of” and “consisting essentially of.”