Rig movement, rotation and alignment assembly
11859448 ยท 2024-01-02
Assignee
Inventors
Cpc classification
B66F3/46
PERFORMING OPERATIONS; TRANSPORTING
E21B15/003
FIXED CONSTRUCTIONS
B62D57/02
PERFORMING OPERATIONS; TRANSPORTING
International classification
B66F3/46
PERFORMING OPERATIONS; TRANSPORTING
B62D5/02
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A rig movement, rotation and alignment assembly. A plurality of lifting jack assemblies are provided, each of the lifting jack assemblies attached to a rig substructure. Each of the lifting jack assemblies has a cylinder housing and a rod movable axially within the cylinder housing. Each rod is engaged with a screw drive in order to rotate the rod with respect to the cylinder housing. Each rod includes a circumferential recess wherein the circumferential recess includes at least one flat segment. A retainer plate attached to each bearing pad is received in and engaged with the circumferential recess and with the flat segment, so that rotation of the rod results in rotation of the bearing pad.
Claims
1. A rig movement, rotation and alignment assembly, which assembly comprises: a plurality of lifting jack assemblies, each of said lifting jack assemblies attached to a rig substructure and attached to respective bearing pads; each of said lifting jack assemblies having a cylinder housing and an elongated rod movable axially within each said cylinder housing; each said elongated rod engaged with a respective rod rotation drive assembly in order to rotate each said elongated rod with respect to each said cylinder housing; and a rotation translation assembly to translate rotational movement of each said elongated rod into rotational movement of each said respective bearing pad; wherein each said lifting jack assembly is connected to said rig substructure by respective pod brackets and each said respective pod bracket detachably connects to the substructure with a pair of hooks and a pair of eyes and wherein said eyes receive pins which pass through openings in the substructure to detachably secure each said respective pod bracket to said substructure.
2. The rig movement, rotation and alignment assembly as set forth in claim 1 wherein each said respective rod rotation drive assembly is a slew drive.
3. The rig movement, rotation and alignment assembly as set forth in claim 1 wherein said rotation translation assembly includes: a circumferential recess in each said elongated rod, wherein each said circumferential recess includes at least one flat segment; a retainer plate attached to each said respective bearing pad, each said retainer plate received in and engaged with each said circumferential recess and each said flat segment, so that rotation of each said elongated rod results in rotation of each said respective bearing pad.
4. The rig movement, rotation and alignment assembly as set forth in claim 3 wherein each said at least one flat segment in each said circumferential recess comprises a pair of opposed flat segments.
5. The rig movement, rotation and alignment assembly as set forth in claim 4 wherein each said retainer plate comprises a pair of arcuate retainer plates which together surround each said elongated rod.
6. The rig movement, rotation and alignment assembly as set forth in claim 1 wherein a roller assembly is juxtaposed between a lower end of each said lifting jack assembly and each said respective bearing pad.
7. The rig movement, rotation and alignment assembly as set forth in claim 6 wherein a lower end of each of said rod terminates in a convex end which is retained in a mating top of said roller assembly.
8. The rig movement, rotation and alignment assembly as set forth in claim 1 wherein said plurality of lifting jack assemblies comprises four lifting jack assemblies, each of said lifting jack assemblies parallel to and spaced from each other.
9. The rig movement, rotation and alignment assembly as set forth in claim 1 wherein each said elongated rod is movable axially within each said cylinder housing by a hydraulic system.
10. The rig movement, rotation and alignment assembly as set forth in claim 1 wherein each of said plurality of lifting jack assemblies operates independently of each other of said plurality of lifting jack assemblies.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE INVENTION
(18) The embodiments discussed herein are merely illustrative of specific manners in which to make and use the invention and are not to be interpreted as limiting the scope.
(19) While the invention has been described with a certain degree of particularity, it is to be noted that many modifications may be made in the details of the invention's construction and the arrangement of its components without departing from the scope of this disclosure. It is understood that the invention is not limited to the embodiments set forth herein for purposes of exemplification.
(20) Referring to the drawings in detail,
(21) In a preferred embodiment, the assembly 10 includes four independent vertical lifting jack assemblies 12, 14, 16 and 18 which are capable of operating independently of each other. The lifting jack assemblies are spaced from and parallel to each other. In a preferred embodiment, four lifting jack assemblies are employed, however, it will be understood that a greater or lesser number might be employed within the spirit of the invention.
(22) Each of the lifting jack assemblies 12, 14, 16 and 18 is connected to a rig substructure 20. The rig substructure 20 supports various equipment, a drilling floor, and a mast (not shown). The lifting jack assemblies 12, 14, 16 and 18 are connected to the hydraulic system of the rig by hydraulic lines 22. The hydraulic system provides motive force to the lifting jack assemblies. Each of the lifting jack assemblies is operated independently by the hydraulic system of the rig.
(23) As will be described herein, each of the vertical lifting jack assemblies 12, 14, 16 and 18 includes a hydraulic cylinder housing 50 and an elongated extendible and retractable rod 52 movable axially within the cylinder housing.
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(25) The rod 52 of each lifting jack assembly moves between an extended and a retracted position. Each rod 52 is attached at its lower end to a bearing pad as will be described in detail. When the rod 52 of the lifting jack assembly is extended, the bearing pad rests on the ground.
(26) Each of the lifting jack assembles 12, 14, 16 and 18 is also detachably connected near an upper end to the rig substructure 20 by a pod bracket 42, 44, 46 and 48, respectively. The rig substructure 20 supports a drilling rig (not shown). When the rod 52 of the lifting jack assembly is retracted, the substructure 20 rests on the ground and the bearing pads are spaced from the ground.
(27) Each pod bracket 42, 44, 46 and 48 detachably connects to the substructure 20 with a pair of extending hooks 24 and a pair of eyes 26. The eyes 26 are configured to receive pins 28 which pass through openings in the substructure 20 in order to securely attach the pod bracket and the lifting jack assembly. Each lifting jack assembly, such as assembly 12, includes a cylinder housing 50 and an elongated rod 52 concentric with the cylinder housing and movable axially therein.
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(29) Each lifting jack assembly includes a rod rotation drive assembly. As seen in
(30) The lower end of each elongated rod 52 terminates in a convex end which engages with and is retained in a mating top of a roller assembly 30. Each roller assembly 30 includes a roller or a plurality of rollers which engage a flat surface on a roller track.
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(34) Each lifting assembly includes a rotation translation assembly. With continuing reference to
(35) As best seen in
(36) The roller assembly 30 permits incremental movement of the cylinder and rod 52 with respect to the bearing pad 32 by a pair of parallel hydraulic skidding cylinders 62. When the bearing pad 32 is lowered on the ground, the skidding cylinders 62 are configured to move the entire rig substructure with respect to the bearing pad 32.
(37) The elongated rod 52 is, thus, connected to the bearing pad 32 through the roller assembly. Accordingly, rotational movement of the rod 52 results in rotational movement of the roller assembly 30 and, in turn, the bearing pad 32.
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(41) While the foregoing describes operation of one lifting jack assembly, the others operate in similar fashion.
(42) The present invention thus provides direct transfer of rotational movement of the elongated rod of the hydraulic cylinder housing to the bearing pad without complicated linkage or other mechanisms. At the same time, the bearing pad is incrementally movable with respect to the hydraulic lifting cylinder and elongated rod.
(43) Whereas, the invention has been described in relation to the drawings attached hereto, it should be understood that other and further modifications, apart from those shown or suggested herein, may be made within the scope of this invention.