System and method for launching and recovering a daughter boat from a stern of a mother ship
09783270 ยท 2017-10-10
Assignee
Inventors
Cpc classification
B63B23/32
PERFORMING OPERATIONS; TRANSPORTING
B63B35/40
PERFORMING OPERATIONS; TRANSPORTING
B63B27/36
PERFORMING OPERATIONS; TRANSPORTING
B63B23/34
PERFORMING OPERATIONS; TRANSPORTING
International classification
B63B23/32
PERFORMING OPERATIONS; TRANSPORTING
B63B35/40
PERFORMING OPERATIONS; TRANSPORTING
B63B27/14
PERFORMING OPERATIONS; TRANSPORTING
Abstract
In a system (1) for launching, and recovering, a daughter boat (3) from a stern of a mother ship (2), there is provided a telescopic stern ramp of the mother ship. In the telescopic stern ramp, a landing frame (5) has a telescopic retracted position and a telescopic extended position. Furthermore, the landing frame is reciprocally pivotable between said telescopic extended position and a boat landing pivot position. During a boat recovering operation, the boat landing pivot position of the landing frame allows for reliable and quick fastening of the daughter boat to the mother ship. The telescopic retracted position of the landing frame allows for stowing the daughter boat in the stern area of the mother ship.
Claims
1. Stern ramp launch and recovery system for launching, and recovering, a daughter boat from a stern of a mother ship, the system comprising a main frame, a landing frame for supporting the daughter boat, a first translation guiding structure, a second translation guiding structure, a translation movement mechanism, a rotation guiding structure, and a rotation movement mechanism, wherein the system is configured to be in an operation condition, in which the system is forming a telescopic stern ramp of the mother ship, said telescopic stern ramp having an inclined stern ramp length axis having a descending slope in rearward direction of the mother ship, and in which operation condition: the first translation guiding structure is attached to the mother ship along the stern, whereby the first translation guiding structure defines said inclined stern ramp length axis, as well as a corresponding stern ramp width axis, of said telescopic stern ramp; the main flame is held by the mother ship and by the first translation guiding structure in a first reciprocally translatable manner along said inclined stern ramp length axis, said first translatable manner being relative to the stern; the landing frame is held by the main frame and by the second translation guiding structure in a second reciprocally translatable manner along said inclined stern ramp length axis, said second translatable manner being relative to the main frame; the translation movement mechanism effects and controls movements according to said first reciprocally translatable manner and said second reciprocally translatable manner; said first reciprocally translatable manner and said second reciprocally translatable manner are allowing the landing frame to reciprocally translate between at least one telescopic retracted position and at least one telescopic extended position, wherein the landing frame in its telescopic extended position is farther descended along said inclined stern ramp length axis than in its telescopic retracted position; the landing frame is held by the main frame and by the rotation guiding structure in a reciprocally pivotable manner relative to the main frame, about a pivot axis being parallel to said stern ramp width axis, between said telescopic extended position of the landing frame and at least one boat landing pivot position in which the landing frame has less inclination as compared to the inclined stern ramp length axis; and the rotation movement mechanism effects and controls movements according to said reciprocally pivotable manner.
2. Stern ramp launch and recovery system according to claim 1, wherein the translation movement mechanism is configured to effect that: movements, according to said first reciprocally translatable manner, of the main frame relative to the stern, on the one hand; and movements, according to said second reciprocally translatable manner, of the landing frame relative to the main frame, on the other hand; take place simultaneously and in the same direction of said inclined stern ramp length axis.
3. Stern ramp launch and recovery system according to claim 1, wherein the rotation guiding structure comprises a first auxiliary frame, which is configured to follow the landing frame to reciprocally translate between said at least one telescopic retracted position and said at least one telescopic extended position, and which is hingeably connected to the landing frame with a hinge axis being parallel to said stern ramp width axis and being spaced from said pivot axis.
4. Stern ramp launch and recovery system according to claim 1, further comprising at least one sensor, which in said operation condition is configured, arranged and effective to sense at least one property of water waves in the neighbourhood of the mother ship.
5. Stern ramp launch and recovery system according to claim 4, further comprising at least one calculator, which is communicatively connected to said at least one sensor, and which in said operation condition is configured, arranged and effective to calculate, based on said at least one property sensed by said at least one sensor: a suitable moment in time for starting up launching or recovering a daughter boat by means of the stern ramp launch and recovery system; and/or proposed operation parameters of the stern ramp launch and recovery system; and/or proposed alterations in the sailing characteristics of the mother ship relative to the water waves in the neighbourhood of the mother ship, which proposed alterations are influencing the relative movements between said water waves and the mother ship in a manner so as to make launching or recovering a daughter boat by means of the stern ramp launch and recovery system easier and/or safer.
6. Assembly of a stern ramp launch and recovery system according to claim 1, and a mother ship, wherein the stern ramp launch and recovery system is installed in its operation condition on the mother ship.
7. Method of launching, and recovering, a daughter boat from a stern of a mother ship, wherein: a stern ramp launch and recovery system according to claim 1 is installed in its operation condition on the mother ship; said recovering comprises the consecutive steps of: (i) sailing the daughter boat onto the landing frame being in a first one of said at least one boat landing pivot position, while fastening the daughter boat, sailed onto the landing frame, to the landing frame; (ii) pivoting the landing frame from said first boat landing pivot position into a first one of said at least one telescopic extended position; (iii) translating the landing frame from said first telescopic extended position into a first one of said at least one telescopic retracted position; and said launching comprises the consecutive steps of: (iv) translating the landing frame from a second one of said at least one telescopic retracted position into a second one of said at least one telescopic extended position, while the landing frame is supporting the daughter boat, which is fastened thereto; (v) pivoting the landing frame from said second telescopic extended position into a second one of said at least one boat landing pivot position; (vi) unfastening, in said second boat landing pivot position, the daughter boat from the landing frame and releasing the daughter boat from the landing frame.
Description
(1) The abovementioned aspects and other aspects of the invention will be apparent from and elucidated with reference to the embodiments described hereinafter by way of non-limiting examples only and with reference to the schematic figures in the enclosed drawing.
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(14) It is noted that, when the same reference signs are used throughout different ones of the abovementioned
(15) Reference is first made to the embodiment of
(16) As mentioned, in
(17) To illustrate how the telescopic moveability of the system may for example be realized, it is now temporarily referred to
(18) Now reverting to
(19) By comparing the telescopic extended position of
(20) In the shown example, the abovementioned translation movement mechanism comprises a winch system 21, which in the schematical Figures is shown only partly by means of only one schematical pulley and only one schematical cable. In practice, however, the winch system will in general comprise many more components, including additional pulleys, etc. In the schematical Figures it is seen that the shown cable of the winch system 21 has been shown to be connected to the first auxiliary frame 6. This has been done only for simplicity of presentation. The skilled person will readily appreciate how to arrange the system for effecting and controlling movements according to said first reciprocally translatable manner and said second reciprocally translatable manner, based on a winch system.
(21) As mentioned above, in a preferable embodiment of a system according to the invention, the translation movement mechanism may be configured to effect that movements, according to said first reciprocally translatable manner, of the main frame relative to the stern, on the one hand, and movements, according to said second reciprocally translatable manner, of the landing frame relative to the main frame, on the other hand, take place simultaneously and in the same direction of said inclined stern ramp length axis. Also, it has been mentioned above that said simultaneity of movements in said same direction offers the advantage that it speeds up the retracting and extending movements of the telescopic stern ramp of the system. The embodiment of
(22) The sensor and calculator, both as mentioned above, have schematically been shown in
(23) Now, reference is made to
(24) While the invention has been described and illustrated in detail in the foregoing description and in the drawing figures, such description and illustration are to be considered exemplary and/or illustrative and not restrictive; the invention is not limited to the disclosed embodiments.
(25) As an example, it is noted that in the shown embodiments the translation movement mechanisms comprise winch systems 21, while the rotation movement mechanisms comprise piston/cylinder combinations 22, 122. However, instead of or in addition to a winch system, it is possible to apply, in the translation movement mechanism of a system according to the invention, various other movement systems, including hydraulic and/or pneumatic systems and/or chain systems, etc., and, if desired, also including piston/cylinder combinations. Similarly, instead of or in addition to piston/cylinder combinations, it is possible to apply, in the rotation movement mechanism of a system according to the invention, various other movement systems, including hydraulic and/or pneumatic systems and/or chain systems, etc., and, if desired, also including winch systems.
(26) Other variations to the disclosed embodiments can be understood and effected by those skilled in the art in practicing the claimed invention, from a study of the drawings, the disclosure, and the appended claims. In the claims, the word comprising does not exclude other elements or steps, and the indefinite article a or an does not exclude a plurality. A single processor or other unit may fulfill the functions of several items recited in the claims. For the purpose of clarity and a concise description, features are disclosed herein as part of the same or separate embodiments, however, it will be appreciated that the scope of the invention may include embodiments having combinations of all or some of the features disclosed. The mere fact that certain measures are recited in mutually different dependent claims does not indicate that a combination of these measures can not be used to advantage. Any reference signs in the claims should not be construed as limiting the scope.