Claims
- 1. A rotary blowout preventer connected to and supported by a casing spool for engaging a drill pipe received therein to prevent wellbore fluids flowing into the casing spool from migrating thereabove, comprising:
- (a) an outer housing connected to and supported by said casing spool with the interior of said outer housing in communication therewith;
- (b) a rotary housing, having a packer assembly therein, rotably supported within said outer housing by bearing assemblies and sealably engaged by seal assemblies connected to said outer housing, wherein an annulus is formed by said outer housing, said rotary housing and said seals;
- (c) a sleeve assembly detachably and reattachably connected to a rim forming an upper end of said rotary housing, wherein said sleeve assembly has a tubular elastomeric sleeve that depends within said rotary housing intermediate said packer assembly and said drill pipe; and
- (d) means connected to and in communication with said outer housing for circulating hydraulic fluid through said annulus to urge said packer assembly and said sleeve inwardly to sealingly abut said drill pipe, wherein said circulated hydraulic fluid cools said bearing and seal assemblies and removes particulate matter therefrom.
- 2. A rotary blowout preventer as described in claim 1 further comprising a plurality of grippers embedded within said tubular sleeve and extending flush with an inner face thereof to contact said drill pipe and frictionally grasp the same when said sleeve is urged inwardly by said circulating means, wherein said grippers exert a frictional force on said drill pipe sufficient to secure said sleeve to said drill pipe for concomitant rotation therewith but do not exert a frictional force great enough to prevent said drill pipe from sliding longitudinally through said sleeve.
- 3. A rotary blowout preventer as described in claim 2 wherein each said gripper comprises:
- (a) an elongated portion extending within said sleeve from said inner surface thereof and having an outer face substantially flush therewith; and
- (b) an enlarged diameter portion integrally connected to said elongated portion opposite said outer face, wherein said sleeve is molded about each said gripper to secure said gripper therein.
- 4. An elastomeric packer as described in claim 2 wherein said grippers are more rigid than said elastomeric sleeve.
- 5. A rotary blowout preventer as described in claim 2 wherein grippers have a greater coefficient of friction than said elastomeric sleeve.
- 6. A rotary blowout preventer as described in claim 2 wherein said grippers have a flat outer surface to facilitate maximum frictional contact with said drill pipe.
- 7. A rotary blowout preventer as described in claim 2 wherein said grippers are a molded mixture of epoxy resin and selected granular material.
- 8. A rotary blowout preventer as described in claim 2 wherein said grippers are constructed of a ferrous based metal.
- 9. A rotary blowout preventer as described in claim 1 wherein said sleeve assembly further comprises an annular adapter received within and detachably and reattachably connected to said rotary housing for concomitant rotation therewith, wherein said adapter and said sleeve can be selectively retrieved from said rotary housing and replaced with another adapter and sleeve of like configuration.
- 10. A rotary blowout preventer assembly as described in claim 9 wherein said elastomeric sleeve is detachably and reattachably connected to said annular adapter by bolts extending through said adapter and radially received within a rigid securing ring connected to an upper end of said sleeve.
- 11. A rotary blowout preventer as described in claim 10 further comprising a rigid supporting ring connected to a lower margin of said sleeve for preventing the movement of said drill pipe from distorting the cylindrical orientation of said elastomeric sleeve.
- 12. A rotary blowout preventer as described in claim 9 wherein said rim forms an upper end of said rotary housing and defines a plurality of internally opening notches spaced around an internal margin thereof.
- 13. A rotary blowout preventer as described in claim wherein said annular adapter, comprises:
- (a) a cylindrical body received within said rotary housing in near contacting relation to said rim;
- (b) a suspension flange integrally connected to an upper end of said body and extending outwardly therefrom to rest on said rim and support said body within said rotary housing; and
- (c) a plurality of splines integrally and externally connected to said body in spaced relation to said suspension flange and in corresponding relation to said notches defined by said rim, wherein said splines are received within and pass below said notches to an unlocked position when said body is received within said rotary housing and are thereafter offset from said notches by rotating said annular adapter a predetermined axial distance to a locked position.
- 14. A rotary blowout preventer assembly as described in claim 13 comprising means connected to said rim and received by said suspension flange for securing said annular adapter and said splines in said locked position.
- 15. A rotary blowout preventer assembly as described in claim 13, wherein said securing means, comprises:
- (a) at least one aperture defined by and extending through said suspension flange;
- (b) at least one hole extending within said rim in coaxial relation to said aperture when said adapter is in said locked position; and
- (c) at least one lock pin extending through each said aperture and engaged within each said hole for securing said suspension flange in planar abutment with said rim and preventing the rotation of said annular adapter within said rotary housing.
- 16. A quick change packer assembly as described in claim 15 further comprising means for restricting the axial movement of said adaptor and indicating the position thereof relative to said rim, including:
- (a) a curved slot concentrically defined in said suspension flange;
- (b) a pin integrally connected to said rim and extending upwardly therefrom, wherein said pin is received within said slot when said lip portion is supported on said rim and abuts a first end of said slot when said adapter is rotated to said unlocked position and abuts a second end of said slot opposite said first end when said adapter is rotated to said unlocked position.
- 17. A rotary blowout preventer as described in claim 1 wherein said circulating means comprises:
- (a) a reservoir for containing a quantity of hydraulic fluid;
- (b) an input line connecting and in communication with said annulus and said reservoir;
- (c) an output line connecting and in communication with said annulus within said outer housing and said reservoir;
- (d) at least one pump connected to and in communication with said input line for circulating said hydraulic fluid from said reservoir, through said input line and said annulus, and back through said output line to said reservoir; and
- (e) at least one motor connected to said pump for driving said pump at selected rates to circulate said hydraulic fluid through said outer housing at selected pressures.
- 18. A rotary blowout preventer as described in claim 17 further comprising means connected to and in communication with said input and output lines for filtering particulate matter from said hydraulic fluid.
- 19. A rotary blowout preventer as described in claim 17 further comprising means connected to and in communication with said output line for cooling said hydraulic fluid.
- 20. A rotary blowout preventer as described in claim 17 further comprising means for controlling said selected pressures within said outer housing at a predetermined pressure differential above pressures generated in said casing spool by an influx therein of wellbore fluid.
- 21. A rotary blowout preventer as described in claim 17 wherein said pressure controlling means comprises:
- (a) a first transducer connected to and in communication with said input line for iteratively sensing pressure within said outer housing;
- (b) a second transducer connected to a casing line connected to and in communicates with said casing spool for iteratively sensing pressure therein;
- (c) computer means electronically connected to said first and second transducers and to said motor for receiving first and second signals therefrom which are indicative of said pressures recurrently sensed thereby and iteratively sending a control signal to said motor to maintain said selected hydraulic pressures in said outer housing at a predetermined pressure differential above said pressures generated in said casing spool.
Parent Case Info
This is a division of application Ser. No. 07/733,688, filed Jul. 22, 1991.
US Referenced Citations (5)
Divisions (1)
|
Number |
Date |
Country |
Parent |
733688 |
Jul 1991 |
|