System and method for obstacle avoidance during hydrocarbon operations
09546540 ยท 2017-01-17
Assignee
Inventors
Cpc classification
E21B19/00
FIXED CONSTRUCTIONS
International classification
E21B43/01
FIXED CONSTRUCTIONS
Abstract
A system and method for obstacle avoidance during hydrocarbon operations utilizing a non-vertical conduit between a vessel and associated subsea equipment. The system comprises a vessel and a conduit connected to the vessel with a first rotatable apparatus which is constructed and arranged to permit the vessel to rotate with respect to the conduit. The system also comprises a second rotatable apparatus connecting the conduit to subsea equipment secured to the seafloor. The second rotatable apparatus is constructed and arranged to permit the conduit to rotate with respect to the subsea equipment.
Claims
1. An offshore hydrocarbon operations system comprising: a vessel; a conduit connected to the vessel with a first rotatable apparatus, the first rotatable apparatus is constructed and arranged to permit the vessel to rotate with respect to the conduit; a subsea equipment positioned on a seafloor; and a second rotatable apparatus connecting the conduit to the subsea equipment, the second rotatable apparatus is constructed and arranged to permit the conduit to rotate with respect to the subsea equipment, wherein the first rotatable apparatus and the second rotatable apparatus are arranged to enable the vessel to be laterally offset and travel along a circular path centered on the subsea equipment, the circular path being laterally offset a distance from the subsea equipment allowing the vessel to generate velocity or momentum to push through an ice floe.
2. The system of claim 1, wherein the distance is greater than 500 meters.
3. The system of claim 1, wherein the conduit is a drilling riser, the first rotatable apparatus is a top swivel, and the second rotatable apparatus is a base swivel.
4. The system of claim 3 further comprising at least one buoy positioned along the riser.
5. The system of claim 3, wherein the vessel is equipped with a vertical drilling derrick.
6. The system of claim 3, wherein the vessel is equipped with a horizontal drilling derrick.
7. The system of claim 3, wherein the riser has at least one negative riser slope section.
8. The system of claim 1, wherein the subsea equipment is a wellhead.
9. The system of claim 1, wherein the vessel is selected from the group consisting of a floating production, storage and offloading vessel (FPSO), a floating production of liquefied natural gas vessel (FLNG), a floating storage and regasification unit for LNG (FSRU), a gas-to-liquids floating production, storage and offloading vessel (GTL), and a gas-to-chemicals floating production, storage and offloading vessel (GTC).
10. The system of claim 1, wherein the first rotatable apparatus is a first turret, and the second rotatable apparatus is a second turret.
11. A method for positioning a drilling vessel comprising: providing an offshore drilling system comprising: a riser connected to the vessel with a top swivel, the top swivel constructed and arranged to permit the vessel to rotate with respect to the riser, a subsea equipment positioned on a seafloor, and a base swivel connecting the riser to the subsea equipment, the base swivel is constructed and arranged to permit the riser to rotate with respect to the subsea equipment, wherein the top swivel and the base swivel are arranged to enable the vessel to be laterally offset and travel along a circular path centered on the subsea equipment; laterally offsetting the vessel from the subsea equipment by adding riser sections; and moving the vessel along a circular path centered at the subsea equipment, the circular path being laterally offset a distance from the subsea equipment allowing the vessel to generate velocity or momentum to push through an ice floe.
12. The method of claim 11 further comprising adding at least one buoy along the riser.
13. The method of claim 11, wherein the distance is more than 500 meters from the subsea equipment.
14. A method of producing hydrocarbons from a subsea wellhead secured to a seafloor, the method comprising: positioning a vessel in a body of water, the vessel is equipped with a hydrocarbon operations system comprising: a conduit connected to the vessel with a first rotatable apparatus, the first rotatable apparatus is constructed and arranged to permit the vessel to rotate with respect to the conduit, and a second rotatable apparatus connecting the conduit to the wellhead, the second rotatable apparatus is constructed and arranged to permit the conduit to rotate with respect to the wellhead; laterally offsetting the vessel from the wellhead; receiving the hydrocarbons into the vessel; and moving the vessel along a circular path centered at the wellhead, the circular path being laterally offset a distance from the wellhead allowing the vessel to generate velocity or momentum to push through an ice floe.
15. The method of claim 14, wherein the distance is more than 500 meters from the wellhead.
16. The method of claim 14, wherein the vessel is selected from the group consisting of a floating production, storage and offloading vessel (FPSO), a floating production of liquefied natural gas vessel (FLNG), a floating storage and regasification unit for LNG (FSRU), a gas-to-liquids floating production, storage and offloading vessel (GTL), and a gas-to-chemicals floating production, storage and offloading vessel (GTC).
17. The method of claim 14, wherein the first rotatable apparatus is a first turret, and the second rotatable apparatus is a second turret.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The present invention and its advantages will be better understood by referring to the following detailed description and the attached drawings.
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(11) It should be noted that the figures are merely examples of several embodiments of the present invention and no limitations on the scope of the present invention are intended thereby. Further, the figures are generally not drawn to scale, but are drafted for purposes of convenience and clarity in illustrating various aspects of certain embodiments of the invention.
DESCRIPTION OF THE SELECTED EMBODIMENTS
(12) For the purpose of promoting an understanding of the principles of the invention, reference will now be made to the embodiments illustrated in the drawings and specific language will be used to describe the same. It will nevertheless be understood that no limitation of the scope of the invention is thereby intended. Any alterations and further modifications in the described embodiments, and any further applications of the principles of the invention as described herein are contemplated as would normally occur to one skilled in the art to which the invention relates. One embodiment of the invention is shown in great detail, although it will be apparent to those skilled in the relevant art that some features that are not relevant to the present invention may not be shown for the sake of clarity.
(13) An offshore drilling system according to one embodiment of the present disclosure is depicted in
(14) Unlike the system depicted in
(15) Though not depicted, at least one propulsion device may be attached to vessel 101. Suitable propulsion devices are known to those skilled in the art and may be any type of propeller, thruster, propulsor, or water jet, to name a few non-limiting examples. The propulsion devices may be operated using known techniques for station-keeping of the vessel 101 while in body of water 103.
(16) The inclusion of top swivel 203 and base swivel 205 allow the riser to rotate with respect to vessel 101 and wellhead 105, respectively. In the depicted embodiment, the top swivel 203 and base swivel 205 enable the laterally offset vessel 101 to travel along a circular path 209 centered on wellhead 105. The operational range of the vessel 101 is essentially transformed from a point with an offset tolerance (see 113 of
(17) As appreciated by those skilled in the art, the drill string is in constant rotation and under high tensile loads while in the riser 201. Therefore, the curvature of the riser should be accounted for and limited to meet system design objectives. In one embodiment, the curvature of the riser 201 is kept to a maximum curvature of 3/100 ft of riser or a radius of curvature of approximately 580 m. Such a curvature allows for an approximate 500 m lateral offset in 1000 m water. Other curvatures may be implemented based upon a variety of considerations, such as, but not limited to, design objectives, water depth, riser strength, etc. In addition to curvature, the riser angle from horizontal may be also limited in order to enable certain operations (such as, but not limited to, ball-drop activated equipment) or to limit fatigue or wear to the riser or drill string.
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(19) The system depicted in
(20) The system depicted in
(21) In the embodiment depicted in
(22) As will be appreciated by those skilled in the art considering the present disclosure, the top swivel 203 enables the vessel 101 to weathervane towards the prevailing wind, wave, current and/or ice forces. As discussed herein, base swivel 205 enables the vessel 101 to rotationally traverse around a wellhead 105 to avoid dangerous surface objects such as icebergs. One embodiment of such a capability is depicted in
(23) The ability to move in a circular path 209 on the water surface also allows the vessel 101 to gain momentum to push through more competent ice floes. Such a scenario is depicted in
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(25) In embodiments of the present disclosure, the vessel 101 and subsurface equipment may be the same or similar to current technology with reinforcement as necessary for additional forces. Riser 201 may have a construction and design as known in the current art. In some embodiments, riser 201 forms a gradual S curve in order to allow fluids and equipment to pass and so that the connection to both the vessel 101 and subsea equipment (for example, wellhead 105) is continuous. The curvature and stability of the riser 201 shape may be controlled through a variety of techniques. In one embodiment, curvature and stability are provided by adding weights or variable buoys 703 along the length of the riser 201. In other embodiments, the axial force applied to the riser 201 is changed or altered.
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(27) According to one embodiment of the present disclosure, once the well structure installation process is completed, the riser 201 would be installed section by section. In the depicted embodiment, added weights or buoys 703 are also provided to achieve the desired riser geometry. Other embodiments may not include the weights or buoys on the riser. Once riser 201 is set vertically, additional sections of riser would be added as the vessel moves to the laterally offset location. In
(28) In the depicted embodiment, as the vessel moves from position 801a to 801d, the riser 201 assumes a gently S curve with the aid of buoys 703 positioned along the riser 201. The differential buoys 703 are provided so that riser bend is more continuous and the reaction forces and curvature at the ends of riser are acceptable. Naturally, the vessel 101 not move back to a position directly over the wellhead 105, without removing the additional riser sections, because doing so would potentially buckle riser, damage connections, or, at a minimum, increasing the stress and fatigue at critical locations.
(29) As discussed herein, embodiments of the present disclosure allow the orientation of a surface vessel and the attached riser to be changed with respect to the seafloor riser attachment point. In other words, the vessel and riser do not maintain the same absolute (GPS) location; however, the vessel and riser do maintain the same distance and angle (within some tolerance) from the fixed subsea equipment resulting in rigid body rotation around the seafloor equipment.
(30) As discussed herein, embodiments of the present disclosure describe that the vessel may be configured to station keep and move along a circular path via propulsion devices. The propulsion devices may be manually controlled and/or automatically operated based on environmental and water conditions, such as, but not limited to, the detection of upcoming obstacles. While the present disclosure describes the vessel in the context of a drillship, the vessel may be also be a floating production, storage and offloading vessel (FPSO), a floating production of liquefied natural gas vessel (FLNG), a floating storage and regasification unit for LNG (FSRU), a gas-to-liquids floating production, storage and offloading vessel (GTL), and a gas-to-chemicals floating production, storage and offloading vessel (GTC) to name a few non-limiting examples. The utilization of the principles described herein with vessels other than a drillship may require different components. For example, the use of a FPSO vessel may require a top and a bottom turret to replace the top and bottom swivels and multiple flowlines may be placed between the wellhead and the vessel instead of a single riser. In such an embodiment, the water depth and flowline curvature restrictions would not be as limited as the requirements necessary to limit drillstring fatigue.
(31) The following lettered paragraphs represent non-exclusive ways of describing embodiments of the present disclosure.
(32) A. An offshore hydrocarbon operations system comprising: a vessel; a conduit connected to the vessel with a first rotatable apparatus, the first rotatable apparatus is constructed and arranged to permit the vessel to rotate with respect to the conduit; a subsea equipment secured to a seafloor; and a second rotatable apparatus connecting the conduit to the subsea equipment, the second rotatable apparatus is constructed and arranged to permit the conduit to rotate with respect to the subsea equipment.
(33) B. The system of paragraph A, wherein the vessel is laterally offset from the riser equipment.
(34) C. The system of paragraph B, wherein the offset is greater than 500 meters.
(35) D. The system of any preceding paragraph wherein the conduit is a drilling riser, the first rotatable apparatus is a top swivel, and the second rotatable apparatus is a base swivel.
(36) E. The system of paragraph D further comprising at least one buoy positioned along the riser.
(37) F. The system of paragraph D or E, wherein the vessel is equipped with a vertical drilling derrick.
(38) G. The system of paragraph D or E, wherein the vessel is equipped with a horizontal drilling derrick.
(39) H. The system of paragraph D, E, F or G, wherein the riser has at least one negative riser slope section.
(40) I. The system of any preceding paragraph, wherein the subsea equipment is a wellhead.
(41) J. The system of any preceding paragraph, wherein the vessel is selected from the group consisting of a floating production, storage and offloading vessel (FPSO), a floating production of liquefied natural gas vessel (FLNG), a floating storage and regasification unit for LNG (FSRU), a gas-to-liquids floating production, storage and offloading vessel (GTL), and a gas-to-chemicals floating production, storage and offloading vessel (GTC).
(42) K. The system of any preceding paragraph, wherein the first rotatable apparatus is a first turret, and the second rotatable apparatus is a second turret.
(43) AA. A method for positioning a drilling vessel comprising: providing an offshore drilling system comprising: a riser connected to the vessel with a top swivel, a subsea equipment secured to a seafloor, and a base swivel connecting the riser to the subsea equipment, the base swivel is constructed and arranged to permit the riser to rotate with respect to the subsea equipment; laterally offsetting the vessel from the subsea equipment by adding riser sections.
(44) BB. The method of paragraph AA further comprising adding at least one buoy along the riser.
(45) CC. The method of paragraph AA or BB, wherein the vessel is laterally offset more than 500 meters from the subsea equipment.
(46) DD. A method of producing hydrocarbons from a subsea wellhead secured to the seafloor, the method comprising: positioning a vessel in a body of water, the vessel is equipped with a hydrocarbon operations system comprising: a conduit connected to the vessel with a first rotatable apparatus, the first rotatable apparatus is constructed and arranged to permit the vessel to rotate with respect to the conduit, and a second rotatable apparatus connecting the conduit to the wellhead, the second rotatable apparatus is constructed and arranged to permit the conduit to rotate with respect to the wellhead; laterally offsetting the vessel from the wellhead; receiving the hydrocarbons into the vessel; and moving the vessel along a circular path centered at the wellhead.
(47) EE. The method of paragraph DD, wherein the vessel is laterally offset more than 500 meters from the wellhead.
(48) FF. The method of any preceding paragraph, wherein the vessel is selected from the group consisting of a floating production, storage and offloading vessel (FPSO), a floating production of liquefied natural gas vessel (FLNG), a floating storage and regasification unit for LNG (FSRU), a gas-to-liquids floating production, storage and offloading vessel (GTL), and a gas-to-chemicals floating production, storage and offloading vessel (GTC).
(49) GG. The method of any preceding paragraph, wherein the first rotatable apparatus is a first turret, and the second rotatable apparatus is a second turret.
(50) It should be understood that the preceding is merely a detailed description of specific embodiments of this invention and that numerous changes, modifications, and alternatives to the disclosed embodiments can be made in accordance with the disclosure here without departing from the scope of the invention. The preceding description, therefore, is not meant to limit the scope of the invention. Rather, the scope of the invention is to be determined only by the appended claims and their equivalents. It is also contemplated that structures and features embodied in the present examples can be altered, rearranged, substituted, deleted, duplicated, combined, or added to each other. The articles the, a and an are not necessarily limited to mean only one, but rather are inclusive and open ended so as to include, optionally, multiple such elements.