Device for coupling two boats
10994812 · 2021-05-04
Assignee
Inventors
- Christophe Colmard (Guyancourt, FR)
- Sylvie Deschamps (Paris, FR)
- Mathieu Buschiazzo (Magny les Hameaux, FR)
Cpc classification
B63B2021/006
PERFORMING OPERATIONS; TRANSPORTING
B63B21/50
PERFORMING OPERATIONS; TRANSPORTING
B63B21/00
PERFORMING OPERATIONS; TRANSPORTING
F25J2290/60
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B63C1/06
PERFORMING OPERATIONS; TRANSPORTING
International classification
B63B35/44
PERFORMING OPERATIONS; TRANSPORTING
B63B21/00
PERFORMING OPERATIONS; TRANSPORTING
B63C1/06
PERFORMING OPERATIONS; TRANSPORTING
B63B21/50
PERFORMING OPERATIONS; TRANSPORTING
E02B3/00
FIXED CONSTRUCTIONS
Abstract
A device for rapidly remotely coupling together two vessels, in particular a first ship or floating support and a second ship, comprises: at least one floating and docking structure fastened to or suitable for being releasably fastened to the side and/or the keel of the hull of a second vessel; and at least two actuators spaced in succession from one another in the longitudinal direction of the first vessel. The actuator cylinder of each the actuator is arranged to be fastened to the side of the hull of the first vessel, using a first fastener and pivot hinge device. The end of the rod of each actuator is arranged to be fastened to or suitable for being fastened to the floating and docking structure via a second fastener and pivot hinge device.
Claims
1. A device for remotely coupling together a first vessel consisting of a first ship or floating support and a second vessel consisting of a second ship, the device for remotely coupling together the first and second vessels comprising: at least one floating and docking structure comprising at least one docking float suitable for being ballasted and de-ballasted in order to enable the at least one floating and docking structure to be immersed, and at least one docking element fastened to or suitable for being releasably fastened to a hull of the second vessel; and at least two actuators spaced in succession from one another in a longitudinal direction of the first vessel, one end of an actuator cylinder of each of the at least two actuators being fastened to the first vessel using respective first fastener and pivot hinge devices, wherein an end of a rod of each of the at least two actuators is configured for being fastened to the at least one floating and docking structure via respective second fastener and pivot hinge devices.
2. The device for remotely coupling together a first vessel consisting of a first ship or floating support and a second vessel consisting of a second ship according to claim 1, wherein the at least two actuators, in a retracted position and fastened to the at least one floating and docking structure via said second fastener and pivot hinge devices, are suitable for being positioned together, vertically or in a position close to a vertical axis, against a hull of the first vessel and out of water when the at least one floating and docking structure is not fastened to the second vessel and when the at least one docking float is de-ballasted.
3. The device for remotely coupling together a first vessel consisting of a first ship or floating support and a second vessel consisting of a second ship according to claim 1, wherein the respective first and second fastener and pivot hinge devices at the end each of the at least two actuators each make possible at least a first pivoting movement of each of the at least two actuators about a horizontal first axis perpendicular to a longitudinal axis of a corresponding actuator of the at least two actuators, and wherein the respective first and second fastener and pivot hinge devices at the ends of each of the at least two actuators also each make possible a second pivoting movement of each of the at least two actuators about a second axis perpendicular to the longitudinal axis of the corresponding actuator of the at least two actuators and situated in a vertical plane containing the longitudinal axis of each of the at least two actuators, and wherein the respective first and second fastener and pivot hinge devices at the ends of each of the at least two actuators also make possible a third pivoting movement about the longitudinal axis of the corresponding actuator of the at least two actuators.
4. The device for remotely coupling together a first vessel consisting of a first ship or floating support and a second vessel consisting of a second ship according to claim 1, wherein when the rod of each of the at least two actuators is fastened to the at least one floating and docking structure, each of the at least two actuators is arranged above a surface of water horizontally or with the rod sloping relative to a horizontal plane at an angle of less than 15 degrees while remaining out of the water, the actuator cylinder of each of the at least two actuators being fastened to a side of a hull of said first vessel at a same height.
5. The device for remotely coupling together a first vessel consisting of a first ship or floating support and a second vessel consisting of a second ship according to claim 1, wherein when the at least two actuators are fastened to the at least one floating and docking structure, the at least two actuators are arranged parallel to one another and/or sloping at an angle of less than 30 degrees relative to a first vertical plane perpendicular to a second vertical plane that is tangential to a side of the first vessel.
6. The device for remotely coupling together a first vessel consisting of a first ship or floating support and a second vessel consisting of a second ship according to claim 1, wherein the at least two actuators are double-acting hydraulic actuators having the rods, the rods being set to an initial coupling extension position defining a first distance between the first and second vessels and having a hydraulic circuit that is adjusted and/or automatically controlled in such a manner that any departure from the first distance to a second distance is corrected in order to reestablish the first distance between the first and second vessels, and to reestablish the initial coupling extension position of the rods.
7. The device for remotely coupling together a first vessel consisting of a first ship or floating support and a second vessel consisting of a second ship according to claim 1, wherein the at least one floating and docking structure comprises at least one attachment element suitable for attaching to the second vessel while the at least one docking float is ballasted at least in part and the at least one attachment element is underwater, and wherein the at least one attachment element presenting an arrangement and/or shape making the at least one attachment element suitable for being positioned under a bottom of a hull of the second vessel by ballasting the at least one docking float and then for pressing against and/or facing the bottom of the hull of the second vessel by partially de-ballasting the at least one docking float.
8. The device for remotely coupling together a first vessel consisting of a first ship or floating support and a second vessel consisting of a second ship according to claim 7, wherein the at least one attachment element is suitable for being underwater is situated on the at least one floating and docking structure at a height such that when the at least one docking float is de-ballasted and said actuators are safely positioned against the first vessel, the at least one attachment element is out of water.
9. The device for remotely coupling together a first vessel consisting of a first ship or floating support and a second vessel consisting of a second ship according to claim 7, wherein the at least one attachment element of the at least one floating and docking structure suitable for attaching to the second vessel includes magnetic or pneumatic suction cups suitable for pressing against a side and/or the bottom of the hull of the second vessel.
10. The device for remotely coupling together a first vessel consisting of a first ship or floating support and a second vessel consisting of a second ship according to claim 7, wherein the at least one attachment element is constituted or supported by a portion of the at least one floating and docking structure that forms a fork suitable for extending under the bottom of the hull of the second vessel from a first side to a second side and supporting magnetic or pneumatic suction cups suitable for bearing against bilges of the hull of the second vessel.
11. The device for remotely coupling together a first vessel consisting of a first ship or floating support and a second vessel consisting of a second ship according to claim 1, wherein the at least one floating and docking structure comprises a single floating and docking structure constituted by beams and/or tubes assembled together in a truss assembly forming a tower having the at least one docking float underwater and suitable for being ballasted.
12. The device for remotely coupling together a first vessel consisting of a first ship or floating support and a second vessel consisting of a second ship according to claim 11, wherein the tower has a tubular structure of a rectangular parallelepiped shape.
13. The device for remotely coupling together a first vessel consisting of a first ship or floating support and a second vessel consisting of a second ship according to claim 11, wherein the at least one docking float suitable for being ballasted is in the form of a cylinder and/or a rectangular caisson that is integrated in or supported by the single floating and docking structure.
14. The device for remotely coupling together a first vessel consisting of a first ship or floating support and a second vessel consisting of a second ship according to claim 1, wherein the at least one floating and docking structure extends: a) heightwise from under a hull of the second vessel to at least above a deck of the second vessel; and b) in a longitudinal direction of the second vessel over a length that is at least one-fourth of a length of said second vessel.
15. An assembly of two vessels remotely coupled together using a device for remotely coupling together a first vessel consisting of a first ship or floating support and a second vessel consisting of a second ship according to claim 1.
16. The assembly of two vessels according to claim 15, wherein the device for remotely coupling together a first vessel consisting of a first ship or floating support and a second vessel consisting of a second ship provides coupling between the first vessel which is a floating support including an installation for liquefying or regassifying gas, and the second vessel comprising a methane tanker.
17. A method of implementing a device for remotely coupling together a first vessel consisting of a first ship or floating support and a second vessel consisting of a second ship according to claim 1, wherein the following steps are performed: with the at least two actuators being in a retracted position and the at least one floating and docking structure with the at least one docking float being de-ballasted and fastened to the at least two actuators via the respective second fastener and pivot hinge devices, and the at least two actuators being pressed at least in part out of water against and/or above a hull of the first vessel, ballasting the at least one docking float in order to immerse the at least one floating and docking structure to a depth for fastening the at least one floating and docking structure to the second vessel, pivoting and deploying the at least two actuators together in order to fasten the at least one floating and docking structure against the second vessel; with the at least two actuators deployed in an initial coupling position with the at least one floating and docking structure fastened to the at least two actuators via the respective second fastener and pivot hinge devices and being fastened to the second vessel via a respective at least one attachment element, with said at least one docking float being ballasted, actuating the at least two actuators in extension and/or controlling automatically the at least two actuators such that the at least two actuators and the first and second vessels remain in the initial coupling position or return towards the initial coupling position with a distance between the first and second vessels being controlled in the event that the at least two actuators and the first and second vessels depart therefrom; with the at least two actuators being deployed in the initial coupling position and the at least one floating and docking structure being fastened to the at least two actuators and to said second vessel, and with the at least one docking float ballasted, separating the at least one floating and docking structure from the second vessel, retracting the at least two actuators, and de-ballasting the at least one docking float in order to cause the at least two actuators to pivot and be pressed at least in part out of the water against and/or above the hull of the first vessel.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Other characteristics and advantages of the present invention appear better on reading the following description made in illustrative and non-limiting manner, with reference to the accompanying drawings, in which:
(2)
(3)
(4)
(5)
DETAILED DESCRIPTION OF VARIOUS EMBODIMENTS
(6) In
(7) The tower is fitted with the mooring system 3b, 3b1 3b2 forming a said attachment element 3b, 3b1, 3b2 for attaching said floating and docking structure to the hull of the second vessel 11. Said attachment element or mooring system 3b, 3b1, 3b2 may comprise a system of plates 3b1, 3b2 having suction cups or magnetic fasteners 3b, the system of plates having suction cups or magnetic fasteners 3b defining the attachment element 3b, 3b1, 3b2.
(8) In the first preferred embodiment of
(9) The floating and docking structure 3 shown in
(10) In the second preferred embodiment of
(11) In
(12) In
(13) In all three embodiments, the cantilevered-out tubular elements 33b are themselves supported by junction tubular elements 33a that serve to connect them with the tower, and said fork 33 may bear against and be fastened to the underside of the hull 11b-11c of the second vessel 11.
(14) The coupling device 1 shown in
(15) More precisely, for each actuator, rear end plates of the actuator cylinder 2a are fastened via a hinge device 2c1 to the hull 10a of the first vessel 10, and the end of the actuator rod 2b is fastened via a hinge device 2c2 at the top portion of a floating and docking structure 3 that enables the device to float and that enables the vertical position of the assembly to be adjusted.
(16) The fastener and hinge devices 2c1 and 2c2 shown in
(17) Each of the fastener and hinge devices 2c1 and 2c2 comprises an intermediate independent connection part 2e1, 2e2, each comprising: a first portion comprising two branches forming a first clevis 2e′1, 2e′2 co-operating with a first fastener plate 2d1 secured to the end of the actuator cylinder 2a for 2c1 and to a second fastener plate 2d2 secured to the end of the actuator rod 2b for 2c2; and a second portion forming a third fastener plate 2e″1, 2e″2 co-operating with two branches forming a second clevis 2f1 secured to the vessel 10 for 2c1 and respectively a third clevis 2f2 secured to a tube 31 of the structure 3 for 2c2.
(18) For each fastener and hinge device 2c1, 2c2, the first pivot axis X1X1′ and X2X2′ passes through orifices in the two branches of the first clevis 2e′1, 2e′2 and an orifice in said first or second fastener plate 2d1 or 2d2 respectively arranged between the two branches of the first clevis so that said first or second fastener plate 2d1, 2d2 is suitable for pivoting about the horizontal first axis X1X1′ or X2X2′ relative to said intermediate independent connection parts 2e1, 2e2; and said second axis Y1Y1′, Y2Y2′ passes through orifices in the two branches of the second clevis 2f1 or respectively the third clevis 2f2 and passes through an orifice in said third fastener plate 2e″1, 2e″2 arranged between the two branches of the second and third devises in such a manner that said third fastener plate is suitable for pivoting about the second axis Y1Y1′, Y2Y2′ relative to said intermediate independent connection part 2e1, 2e2.
(19) Preferably, the actuator rod 2a is also suitable for turning about its own axis in the actuator cylinder 2b, so that the actuator thus forms a swivel connected to the two devices 2c1 and 2c2 and allowing a third pivoting movement about the longitudinal direction of the actuator.
(20) Alternatively, use is made of a pivot fastener and hinge device of the ball joint type. The ball joints used for said first and second pivot fastener and hinge devices are typically mechanical elements having a ball embedded in a spherical housing, thus enabling the actuators to work only axially in sliding.
(21) The coupling device 1 is typically secured to the first vessel 10 of the FLNG type using the actuators while in the retracted position, each having one end 2c1 fastened to the flank or side 10a of the first vessel.
(22) When the coupling device 1 is not in use, in particular in a storm, it is put into a safe or stowed position: the actuators 2, 21-24 are retracted and positioned so as to be folded upwards above their ends 2c1 against the hull of the first vessel, with the floating and docking structure 3 put in a high position by at least partially de-ballasting said float(s) 3a so as to be capable of following the actuators and allowing them to pivot until the maximally retracted actuators are in a substantially vertical position with said floating and docking structure 3 fastened to said actuators via said second fastener and hinge devices 2c2, the assembly of the actuators and the floating structure 3 being pressed, while at least in part out of the water, against the hull of the first vessel, as shown in
(23) In
(24) In
(25) In all of the embodiments, the actuators are also arranged to slope relative to a horizontal plane at an angle of less than 15 degrees.
(26) In its top portion, said floating and docking structure 3 may advantageously support troughs for supporting flexible pipes extending out of the water between said first and second vessels arranged side by side.
(27) It is possible to use four actuators 21-24 each having a rating of 250 metric tonnes (T), the actuator rods being suitable for moving over a stroke of 5 m to 10 m, in particular for docking together two vessels that are 150 m to 300 m long.
(28) More particularly, an actuator stroke of 5 m with actuator lengths in the range 10 m to 15 m enables the vessels to be spaced apart by 30 m to 34 m, or indeed a stroke of 10 m leads to actuator lengths in the range 22 m to 24 m for spacing between the vessels of 40 m to 44 m.
(29) Once the coupling device 1 is attached to the second vessel 11, it is capable of keeping the two vessels at a constant mean distance apart in spite of weather environments, either passively or else by appropriate hydraulic control.
(30) With said actuators initially deployed in a medium extension position when coupling said floating and docking structure that is fastened to said actuators with said second vessel, and with a said float that is ballasted, as shown in
(31) Because of the long stroke of the actuators, the two vessels interact dynamically with each other relatively little. The forces taken up by the device are forces that are averaged and not impact forces. Because of this feature, it is possible to keep the vessels together even when the swell becomes strong (swells of about 4 m can typically be withstood).
(32) In order to optimize the position of the ships and the forces in the device, the actuators may be controlled in three ways: linear passive control: the actuators behave like springs of linear response regardless of the position of the rods within the cylinders; non-linear passive control: the actuators behave like springs with stiffness that depends on the position of each rod within the cylinder of the actuator; and non-linear active control: the stiffness of the actuators is adapted instantaneously under the control of software analyzing the relative position of the two vessels. With said actuators 21, 22, 23 being initially deployed in a medium extension position for coupling purposes and with said floating and docking structure 3 fastened to said actuators and to said second vessel, and with said docking float 3a ballasted, said floating and docking structure 3 is separated from said second ship, and then said actuators are retraced and said docking float 3a is de-ballasted so as to press the assembly while at least partially out of the water against the hull of the first vessel as described above.