AN UNDERWATER VESSEL AND ASSOCIATED SYSTEM
20240239450 ยท 2024-07-18
Assignee
Inventors
- Lawrence Edward Clabburn (Barrow-in-Furness Cumbria, GB)
- Simon Phillip Newby (Barrow-in-Furness Cumbria, GB)
- David Charles Alexander Ritchie (Barrow-in-Furness Cumbria, GB)
Cpc classification
B63B3/13
PERFORMING OPERATIONS; TRANSPORTING
B63G8/001
PERFORMING OPERATIONS; TRANSPORTING
B63B3/70
PERFORMING OPERATIONS; TRANSPORTING
B63B21/04
PERFORMING OPERATIONS; TRANSPORTING
B63B3/00
PERFORMING OPERATIONS; TRANSPORTING
B63B35/40
PERFORMING OPERATIONS; TRANSPORTING
International classification
B63B35/40
PERFORMING OPERATIONS; TRANSPORTING
B63B21/04
PERFORMING OPERATIONS; TRANSPORTING
Abstract
Disclosed is a system comprising: a first, underwater, vessel provided with a substantially flat lower surface; and a second, surface, vessel, comprising a floodable well deck arranged to receive and accommodate the first vessel.
Claims
1. A system comprising: an underwater vessel provided with a substantially flat lower surface; and a surface vessel comprising a floodable well deck arranged to receive and accommodate the underwater vessel.
2. The system of claim 1, wherein the underwater vessel has an overall length, and the flat lower surface has a length in the range 80 to 90% of the overall length of the underwater vessel.
3. The system of claim 1, wherein the underwater vessel has a body, and the body has a widest part, and the flat lower surface has a width in the range 20 to 30% of the widest part of the body of the underwater vessel.
4. The system according to claim 1, wherein the underwater vessel is provided with a coupling point located towards a front of the underwater vessel to facilitate docking of the underwater vessel in the surface vessel.
5. The system of claim 4, wherein the underwater vessel is provided with a plurality of further coupling points to tether the underwater vessel in place within the surface vessel.
6. The system of claim 1, wherein the well deck of the surface vessel is provided with a plurality of rollers in its floor to facilitate docking of the underwater vessel.
7. The system of claim 6, wherein the plurality of rollers are able to be locked to prevent rolling.
8. The system of claim 1, wherein the well deck is provided with an innermost surface which is provided with a buffer region to protect both the underwater vessel and the surface vessel during a docking operation.
9. A method of docking using a system, the system including an underwater vessel and a surface vessel, the underwater vessel provided with a substantially flat lower surface, and the surface vessel comprising a floodable well deck arranged to receive and accommodate the underwater vessel, the method comprising: flooding the well deck; attaching a tether to the underwater vessel; and winching the underwater vessel into the well deck of the surface vessel.
10. The method of claim 9, wherein the winching causes the flat lower flat-surface of the underwater vessel to contact at least one roller provided in a floor of the well deck.
11. The method of claim 9, further comprising securing a plurality of additional tethers to a plurality of coupling points on an exterior of the underwater vessel and securing the additional tethers to a plurality of anchor points in the well deck.
12. The method of claim 10, wherein the underwater vessel has a body and an overall length, and the flat lower surface has a length in the range 80 to 90% of the overall length of the underwater vessel, and the flat lower surface has a width in the range 20 to 30% of a widest part of the body of the underwater vessel.
13. The system of claim 1, wherein the well deck of the surface vessel is provided with a plurality of skid beams in its floor to facilitate docking of the underwater vessel.
14. The system of claim 2, wherein the underwater vessel has a body, and the body has a widest part, and the flat lower surface has a width in the range 20 to 30% of the widest part of the body of the underwater vessel.
15. A system comprising: an underwater vessel provided with a substantially flat lower surface, wherein the underwater vessel has a body and an overall length, and the flat lower surface has a length in the range 80 to 90% of the overall length of the underwater vessel, and the flat lower surface has a width in the range 20 to 30% of a widest part of the body of the underwater vessel; a surface vessel comprising a floodable well deck arranged to receive and accommodate the underwater vessel; and a tether coupled between the underwater vessel and the surface vessel.
16. The system according to claim 15, wherein the underwater vessel is provided with a tether coupling point located towards a front of the underwater vessel to facilitate docking of the underwater vessel in the surface vessel, via the tether.
17. The system of claim 15, wherein the well deck of the surface vessel is provided with a plurality of rollers in its floor to facilitate docking of the underwater vessel.
18. The system of claim 17, wherein the plurality of rollers are able to be locked to prevent rolling.
19. The system of claim 15, wherein the well deck of the surface vessel is provided with a plurality of skid beams in its floor to facilitate docking of the underwater vessel.
20. The system of claim 15, comprising a winch, wherein the well deck is provided with an innermost wall which is provided with a cushioned or deformable buffer region to protect the underwater vessel during a docking operation, wherein the tether protrudes through the buffer region and the winch is located behind the buffer region.
Description
BRIEF DESCRIPTION OF THE FIGURES
[0017] Embodiments of the invention will now be described by way of example only with reference to the figures, in which:
[0018]
[0019]
[0020]
DETAILED DESCRIPTION
[0021] The present invention provides a system comprising a submarine or underwater vessel, the underwater vessel being able to operate independently and to operate underwater to perform one or more functions, such as surveillance, environmental monitoring, seabed surveys or military operations.
[0022] The underwater vessel is able to operate for extended periods. It may be provided with a crew or it may be arranged to operate substantially autonomously.
[0023] The underwater vessel is preferably fuelled by rechargeable battery cells, which may be charged before or during a particular operation begins.
[0024] The underwater vessel is provided with a substantially flat lower surface. This is provided to allow the vessel to remain for a period on the seabed. A typical prior art submarine has a substantially cylindrical profile and is substantially circular or elliptical in cross-section. In any event, a prior art submarine does not have a substantially flat lower surface. Due to their curved outer profile, prior art submarines are unable to sit on the seabed without toppling. Further, prior art submarines would typically have difficulty sitting on the seabed without risking structural damage, high ground pressures on the hull and digging into the seabed. Embodiments of the present invention are able to sit for extended periods on the seabed, without such problems.
[0025] In order to deploy an underwater vessel to a particular location, problems will be encountered if the destination is further away than the vessel can travel to in an allowed period of time. The time take may be longer than desirable and/or the distance may be beyond the range of the vessel. In either case, it can be necessary to transport the vessel to the destination by means of a further vessel. In the present case, the further vessel is a part of the system which forms an embodiment of the invention. The further vessel, arranged to transport the underwater vessel is a surface vessel, usually known as a Landing Platform/Dock, LPD, or Amphibious Transport Dock. Such a vessel has a so-called well deck located, usually, at the rear of the vessel. The well deck can be flooded, usually by means of a large door at the rear of the ship. The well deck can then receive and discharge amphibious vehicles and landing craft.
[0026] However, the larger types of LPD are of a size to receive and accommodate a relatively large underwater vessel and transport it more rapidly than would be possible if the underwater vessel were to travel under its own power.
[0027] In detail,
[0028] Most importantly,
[0029] The flat lower surface is arranged to have a width in the range 20 to 30% of the overall width of the widest part of the body of the vessel. In the embodiment shown in
[0030]
[0031] The well deck 10 is opened and flooded by means of door 14 at the rear of the vessel. From the configuration shown, where the underwater vessel 2 is stowed in the well deck 10, it can be released and launched by floating free from its moorings and can then set about its business.
[0032] When it comes time to dock again, the process is reversed with some differences. It would generally be unwise and possibly unsafe to attempt to manoeuvre the underwater vessel into the well deck whilst the underwater vessel is powered and moving at even quite a slow speed.
[0033] It should be noted that the underwater vessel 2 has a suitable amount of reserve of buoyancy (ballast tank volume) to enable it to reach surface draughts which are compatible with the surface vessel 1.
[0034] In order to dock, the well deck 10 is flooded 102. The underwater vessel 2 approaches the LPD 1 and a tether 13 is attached 104 to a coupling point provided on the underwater vessel 2 at or near its frontmost portion. The tether 13 is connected to a winch (not shown) and the winch operates 106 to pull the vessel 2 into the well deck 10.
[0035] In order to ease the docking procedure, a plurality of rollers 11 are provided in a floor of the well deck. These are arranged to lie across a substantial part of the width of the well deck and to rotate freely i.e. without power. The rollers contact the generally flat lower surface and during the winching operation 106, the vessel 2 is self-supporting. The rollers 11 may be replaced by skid beams which, rather than rolling, reduce the friction of an incoming vessel and produce substantially the same effect.
[0036] Once the first roller is encountered, the vessel 2 continues its entry into the well deck 10 as a result of the winching operation. Successive rollers 11 are encountered until the vessel 2 reaches the point of maximum ingress, as shown in
[0037] Instead of the rollers 11, one or more longitudinal guide rails can be provided forming a sort of slipway to guide the vessel 2 into position. Other means of guiding the vessel into the well deck 10 will be apparent to the skilled person and the above examples are illustrative only and not intended to be limiting.
[0038] At the innermost part of the well deck 10, there is a buffer region 12, which comprises a relatively cushioned tor deformable region to protect both the vessel 2 and the LPD 1 in the event that the vessel 2 over travels during docking and strikes the forward part of the well deck 10. The tether 13 protrudes through the buffer region 12 and the winch is located behind the buffer region 12.
[0039] Once docked and secured, the well deck can be cleared of water and the LPD can go on its way.
[0040] By means of a system comprising the LPD 1 and underwater vessel 2, the underwater vessel can be deployed relatively quickly where needed and is not limited by its own inherent range capacity. The system, comprising the underwater vessel 2 and surface vessel 1, is able to provide advantages in operational capability which neither vessel would be able to provide individually.