The present invention relates to underwater structures, and, in particular, to clamping mechanisms for underwater structures.
Underwater structures, particularly water current and wave power generating devices, are subjected to significant mechanical loads due to the action of water current and waves. These loads must be reacted through a support structure or mooring into an underwater surface, such as the seabed. Some power generation devices are designed to orientate themselves with respect to the oncoming water current or wave direction in order to maximise the power that they are able to generate and/or minimise any adverse interactions between generation apparatus and support structure. Ideally, the generation apparatus and support structure should be connected together by a mechanical connection, or clamping mechanism, that is capable of:
i) opposing the significant mechanical loads;
ii) providing the necessary degree of mechanical freedom to allow re-orientation of the device with respect to the current/wave direction; and
iii) allowing the power generating equipment to be detached from the support structure for maintenance.
The following patent applications illustrate previously considered techniques for attachment of equipment to underwater support structures.
According to one aspect of the present invention, there is provided an underwater structure comprising a support structure, a power generating apparatus, and a coupling which is operable to clamp the power generating apparatus to the support structure, and which is adapted to allow rotation of the power generating apparatus with respect to the support structure about a substantially vertical axis thereof, and to transfer all other mechanical loads from the power generating apparatus to the support structure when the power generating apparatus is clamped to the support structure, and which is operable to release the power generating apparatus from the support structure.
According to another aspect of the present invention, there is provided a coupling for clamping a power generating apparatus to an underwater support structure, the coupling being adapted to allow, when in use, rotation of the power generating apparatus with respect to the support structure about a substantially vertical axis thereof, and to transfer all other mechanical loads from the power generating apparatus to the support structure when the power generating apparatus is clamped to the support structure, and which is operable to release the power generating apparatus from the support structure.
According to another aspect of the present invention, there is provided a coupling for clamping a power generating apparatus to an underwater support structure, the coupling comprising an attachment portion for attaching the coupling to a power generating apparatus, an engagement portion adapted for slidable engagement with a locating portion of a support structure, and a clamp mechanism movable between a release position in which, in use, the power generating apparatus and the support structure are releasable from one another, and an engaged position in which, in use, the power generating apparatus and the support structure are not substantially releasable from one another.
Embodiments of the present invention can provide apparatus for the attachment and detachment of a normally submerged water current or wave power generating apparatus (PGA) to/from a submerged support structure or foundation, consisting of a mating feature or features on the PGA and support structure and a detachable coupling.
When engaged with the mating features on the PGA and support structure, the detachable coupling forms a yaw bearing, allowing rotation of the PGA relative to the support structure about a substantially vertical axis, such rotation being provided for the purposes of orientating the PGA with respect to the oncoming water current or wave direction.
When disengaged the detachable coupling allows the PGA to be freely detached from the support structure so that the PGA can be recovered to the surface and subsequently re-attached to the support structure when desired.
During connection and disconnection of the PGA to/from the support structure, the detachable coupling is insensitive to orientation of the PGA about a substantially vertical axis, and tolerant to some lateral misalignment and angular misalignment about a horizontal axis.
The detachable coupling consists of one or more movable elements mounted on the PGA which can be individually or collectively actuated to engage in a substantially radial sense with the mating feature or features on the PGA and support structure.
For a better understanding of the present invention, and to show more clearly how it may be carried into effect, reference will now be made, by way of example only, to the following drawings, in which:
a, 1b and 1c illustrate a first embodiment of the present invention;
a and 2b illustrate a second embodiment of the present invention;
a, 3b, and 3c illustrate a third embodiment of the present invention;
a, 4b, and 4c illustrate a fourth embodiment of the present invention;
a, 5b, and 5c illustrate a fifth embodiment of the present invention
a and 6b illustrate a sixth embodiment of the present invention;
a and 7b illustrate a first coupling for use in an embodiment of the present invention;
a and 8b illustrate a second coupling for use in an embodiment of the present invention;
a and 9b illustrate a third coupling for use in an embodiment of the present invention; and
a and 10b illustrate a fourth coupling for use in an embodiment of the present invention.
a, 1b and 1c show respective cross sectional views through an underwater current turbine device. The underwater device comprises a power generating apparatus (PGA) 1, and a support structure 2. The support structure 2 is mounted on an underwater surface, such as a seabed or riverbed. Although a current turbine device is shown and described in the following, it should be understood that the principles of the present invention are applicable also to wave power generation devices.
In
b shows the PGA 1 located on the support structure 2 with the moveable elements 3 in a release position, that is, a disengaged position in which the PGA 1 and support structure 1 can be moved apart from one another. In
a and 2b illustrate respective cross sections of a second embodiment in which the moveable elements 3 are located inside the PGA 1, and are actuated radially outwards to secure the coupling.
a, 3b, and 3c show respective cross sections of a third embodiment in which the moveable elements 3 perform the dual function of a yaw bearing and, upon further tightening of the actuators, a friction brake to prevent the yaw bearing rotating about the vertical axis. In
An alternative embodiment of the arrangement described in
a, 4b, and 4c show respective cross sections of a fourth embodiment in which additional locking pins 9 are employed to prevent the yaw bearing rotating about the vertical axis. In
a, 5b, and 5c show respective cross sections of a fifth embodiment in which additional brakes 11 are employed to prevent the yaw bearing form rotating. In
a and 6b show respective cross sections of a sixth embodiment in which the moveable elements 3 of the detachable coupling are mounted from the PGA 1 on horizontal axis hinges 13. In
a and 7b show a first example of a coupling suitable for use in an embodiment of the present invention, viewed looking up from the seabed (PGA 1 not shown, support structure 2 in cross section). In this example, the moveable elements 3 are linked together by a hinge 15 and driven by an actuator 16 to open and close the moveable elements around mating features 5 and 6 on the support structure 2 and PGA 1 by articulating the moveable elements 3 in a substantially horizontal plane. In
a and 8b show a second coupling suitable for use in an embodiment of the present invention, again viewed looking up at the detachable coupling from the seabed (PGA 1 not shown, support structure 2 in cross section). In this example, the moveable elements 3 are not directly connected to each other but are linked by a pair of linear actuators 16. Together these actuators open and close the moveable elements 3 around mating features 5 and 6 on the support structure and PGA, acting in a predominantly horizontal plane. In
a and 9b show a third coupling suitable for use in an embodiment of the present invention, again viewed looking up at the detachable coupling from the seabed (PGA 1 not shown, support structure 2 in cross section). In this example, the moveable elements 3 are loosely held together by a band clamp 17 which can be opened and closed by an actuator 16. Springs 18 mounted on the ends of each moveable element help them to disengage when the band clamp is released. In
a and 10b show a fourth coupling suitable for use in an embodiment of the present invention, again viewed looking up at the detachable coupling from the seabed (PGA not shown, support structure 2 in cross section). In this example, the moveable elements 3 are individual latches which rotate about their respective horizontal axes, driven by one or more actuators (not shown). In
It should be noted that the features previously described can be used in any combination. By way of example, the moveable elements 3 described in
As will be readily appreciated from the above description, embodiments of the present may have one or more of the following advantages:
Number | Date | Country | Kind |
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0707909.8 | Apr 2007 | GB | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/GB2008/001482 | 4/24/2008 | WO | 00 | 10/16/2009 |
Publishing Document | Publishing Date | Country | Kind |
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WO2008/129311 | 10/30/2008 | WO | A |
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Number | Date | Country | |
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20100129221 A1 | May 2010 | US |