The present invention relates to a method and device for installation of an elongated offshore structure. In particular, the present invention relates to a method and device for installation of an offshore wind turbine device or a foundation of an offshore wind turbine device.
Several concepts and designs exist for offshore wind turbine devices. Basically, a wind turbine device comprises a tower device with a nacelle and rotor blades provided in a first end thereof and a foundation provided in a second end thereof.
Offshore wind turbine devices may have a floating foundation anchored to the seabed or a foundation fixed to the seabed.
The installation of offshore wind turbine devices is a vulnerable operation until the foundation is anchored or fixed sufficiently to the seabed. Often, a considerable time window with good weather forecasts is needed before the operation can begin.
The object of the invention is to provide an efficient device and method for installation of offshore wind turbine devices such that a shorter time window is needed. Moreover, it is an object that the method and device contribute to a reduced exposure to weather conditions during installation. One further object is that the method and device allows the wind turbine device to be assembled on a land based facility before transportation to the installation site. Of course, the object is also to provide a method and device for decommissioning and transportation of similar structures from sea to land.
It is also an object to provide an efficient device and method for installation of other elongated offshore structures.
The object of the invention is to provide a device for installation of an elongated offshore structure, where the device comprises:
In one aspect, the elongated offshore structure is a wind turbine device comprising a tower device with a nacelle and at least one rotor blade provided in a first end thereof and a foundation provided in a second end thereof. Hence, in this aspect, the invention relates to a device for installation of an offshore wind turbine device, where the wind turbine device comprises a tower device with a nacelle and at least one rotor blade provided in a first end thereof and a foundation provided in a second end thereof, where the device comprises:
In one aspect, the connection device comprises a cross bar slidingly arranged in relation to the outer frame by means of the longitudinal actuation device.
In one aspect, the first supporting element is connected to the cross bar.
In one aspect, the connection device comprises a second supporting element for releasable connection of the elongated offshore structure or wind turbine device in relation to the outer frame.
In one aspect, an inner frame is provided inside the outer frame, where the inner frame comprising a first supporting device for supporting the elongated offshore structure or wind turbine device in the substantially horizontal position during transportation to the installation site.
In one aspect, the inner frame comprises a cross bar supporting device for supporting the cross bar in relation to the inner frame.
In one aspect, the cross bar supporting device is configured to release the support of the cross bar in the substantially vertical position.
In one aspect, the inner frame is displaceable in a longitudinal direction with respect to the outer frame.
In one aspect, the longitudinal actuation device is pivotably mounted to the outer frame.
In one aspect, control devices are provided to control the orientation of the elongated offshore structure or wind turbine device in the free hanging configuration.
In one aspect, a locking device is provided for locking the inner frame to the outer frame.
The invention also relates to a method for installation of an offshore elongated offshore structure, where the method comprises:
In one aspect, the elongated offshore structure is a wind turbine device comprising a tower device with a nacelle and at least one rotor blade provided in a first end thereof and a foundation provided in a second end thereof. Hence, in this aspect, the invention relates to a method for installation of an offshore wind turbine device, where the wind turbine device comprises a tower device with a nacelle and at least one rotor blade provided in a first end thereof and a foundation provided in a second end thereof, where the method comprises:
In one aspect the method is comprising the step of providing the connection device with a cross bar slidingly arranged in relation to the outer frame by means of the longitudinal actuation device.
In one aspect the method is comprising the step of connecting the first supporting element to the cross bar.
In one aspect the method is comprising the step of providing the connection device with a second supporting element for releasably connecting the elongated offshore structure or wind turbine device in relation to the outer frame.
In one aspect the method is comprising the step of providing an inner frame inside the outer frame, where the inner frame comprising a first supporting device for supporting the elongated offshore structure or wind turbine device in the substantially horizontal position during transportation to the installation site.
In one aspect the method is comprising the step of providing the inner frame with a cross bar supporting device for supporting the cross bar in relation to the inner frame.
In one aspect the method is comprising the step of configuring the cross bar supporting device to release the support of the cross bar in the substantially vertical position.
In one aspect the method is comprising the step of displacing the inner frame in a longitudinal direction with respect to the outer frame.
In one aspect the method is comprising the step of controlling the orientation of the elongated offshore structure or wind turbine device in the free hanging configuration.
In one aspect the method is comprising the step of locking the inner frame to the outer frame.
Embodiments of the invention will now be described in detail with reference to the enclosed drawings, where:
a and
c illustrates a perspective view of the connection device from below;
a illustrates a partial perspective view of the vessel, the inner frame and the outer frame assembled;
b and
a illustrates a partial top view of
b illustrates a partial front view of the embodiment of
a illustrates how the wind turbine device is supported on the inner frame on a land based facility;
b illustrates how the inner frame is pulled into the second frame of the vessel;
c illustrates the transportation to the installation site;
d illustrates a side view of the arrival at the installation site;
e and
g-7n illustrate the further steps of the installation procedure;
a-8e illustrate a third embodiment of the invention;
a-9e illustrate a fourth embodiment of the invention
A first embodiment of a device 1 for installation or decommissioning of an offshore wind turbine device 2 will now be described in detail. First, it is referred to
It should be noted that the present invention may be used for installation or decommissioning of only some parts of the offshore wind turbine device, for example only the foundation 6, i.e. without the tower device 3, nacelle 4 and rotor blade 5.
It should also be noted that the present invention may be used for installation or decommissioning of other elongated offshore structures, for example jacket foundations for oil and gas facilities, etc.
The device 1 comprises a vessel 10. The vessel 10 of the present embodiment is a barge intended to be towed to the installation site by means of a towing vessel 8 (see
In
It is now referred to
The device 1 further comprises a pivoting system for pivoting the outer frame 20 in relation to the vessel 10. In the present embodiment, the pivoting system comprises pivoting pins 12 provided on the vessel 10 and pivoting openings 21 provided in the second and third outer frame elements 20b, 20c, provided for receiving the pivoting pins 12. Consequently, the outer frame 20 may be pivoted with respect to the axis I-I indicated in
The device 1 further comprises a connection device 40 for connection of the wind turbine device 2 to the outer frame 20 by means of a longitudinal actuation device 42. The longitudinal actuation device 42 is provided for moving the wind turbine device 2 in its longitudinal direction. In the present embodiment the longitudinal actuation device 42 comprises a hydraulic cylinder device connected to the end of each of the second and third outer frame elements 20b, 20c as illustrated in
The purpose of the connection elements 47 and the other elements of the connection device 40 is to provide the wind turbine device 2 in a free hanging configuration when the outer frame 20 is in the substantially vertical position. The free hanging configuration allows an easy orientation of the foundation 6 of the wind turbine device with respect to the seabed or with respect to anchoring devices (not shown) at the installation site. The longitudinal actuation device 42 is provided for lowering the wind turbine device 2 towards the seabed when the wind turbine device 2 is in the free hanging configuration.
The weight of the wind turbine device 2 is in the vertical position carried by the outer frame 20 via the first supporting element 41, the connection elements 47 and the longitudinal actuation device 42.
Consequently, by actuating the pivotal actuation device 25, the outer frame 20 may be pivoted in relation to the vessel with an angle α between 0 and ca 100° (as indicated in
In the embodiment described above, the free hanging configuration may be achieved when the pivotation of the outer frame 20 is substantially perpendicular to the vessel (i.e. angle α≈90°, i.e. the position shown in
The longitudinal actuation device 42 may be pivotably mounted to the outer frame 20. In this way, the distance between the outer frame 20 and the wind turbine device 2 is increasing further when the angle α is increased to more than 90°.
For performing the orientation, the vessel 10 may comprises control devices 14 (
Alternatively, a dynamically positioned vessel may help with the orientation of the wind turbine device 2. Moreover, if the wind turbine device 2 is being anchored to the seabed, orientation may be performed by slackening or tightening the anchoring wires. In yet an alternative, the vessel 10 itself may be self-propelled and dynamically positioned to orient the wind turbine device 2 correctly.
The use of the first embodiment described above will now be described. In a first step the wind turbine device 2 is connected to the outer frame 20 via the longitudinal actuation device 42, where the outer frame 20 is pivotable in relation to a vessel 10. The wind turbine device 2 is transported to the installation site in a substantially horizontal position, i.e. substantially parallel to the vessel 10. At the installation site the outer frame 20 is pivoted to a substantially vertical position, thereby providing that the wind turbine device 2 is in a free hanging configuration via the longitudinal actuation device 42 when the outer frame 20 is in the substantially vertical position. In the free hanging configuration, the wind turbine device may be lowered towards the seabed by means of the longitudinal actuation device 42.
Thereafter, the foundation 6 of the wind turbine device is fixed to the seabed or anchored to the seabed by means of anchoring devices. In the present embodiment, a seabed supporting frame 9 has been preinstalled on, and is fixed to, the seabed. The seabed supporting frame 9 is assumed known for a skilled person. Consequently, the foundation of the wind turbine device only has to be lowered down into the seabed supporting frame 9 before fixing the seabed supporting frame to the foundation of the wind turbine device. This represents a very efficient way of installing an offshore wind turbine device, since no interaction with the seabed itself is necessary.
In the embodiment described above, the connection elements 47 are connected directly between the first supporting element 41 and the longitudinal actuation device 42. It should be noted that it would be possible to use only one connection element and one hydraulic cylinder as the longitudinal actuation device 42. A free hanging configuration would still be achieved between the wires of the control devices 14 and the only one connection element 47.
A second embodiment will now be described. In the second embodiment, the connection device 40 comprises a cross bar 43 slidingly arranged in relation to the outer frame 20 by means of the longitudinal actuation device 42. The cross bar 43 is showed in detail in
The connection device 40 may comprise a second supporting element 45 for releasable connection of the wind turbine device 2 in relation to the outer frame 20 (
The inner frame 30 is displaceable in a longitudinal direction with respect to the outer frame 20. The inner frame 30 may for example comprise roller devices, skid pads or wheels for rolling into the outer frame 20. This will be described more in detail below. Moreover, a locking device 60 may be provided for locking the inner frame 20 to the outer frame 30. In
As shown in
The inner frame 30 may also comprise a cross bar supporting device 33 for supporting the cross bar 43 in relation to the inner frame 30. In the present embodiment, the cross bar supporting device 33 comprises an opening for receiving the rear protruding pin 48 of the connection device 40. The cross bar supporting device 33 is configured to release the support of the cross bar 43 in the substantially vertical position. When the pivotation of the outer frame reaches an angle of 90° or more, the rear protruding pin 48 is no longer supported by the cross bar supporting device 33, and consequently, the abovementioned free hanging configuration is achieved. The cross bar 43 may now be lowered (and if necessary raised) in relation to the inner frame 30. Please note that the inner frame 30 should be locked to the outer frame before pivoting the outer frame in relation to the vessel.
The method for installation of the wind turbine device 2 by means of the second embodiment will now be described. As described above, a seabed supporting frame 9 has been preinstalled on, and is fixed to, the seabed.
It is now referred to
As shown, the wind turbine device is supported in a horizontal position on the inner frame 30. More specifically, the foundation 6 is supported directly on the inner frame element 30a and the tower device 3 is supported on the first supporting devices 31, 32.
Moreover, parts of the connection device 40 is here connected to the inner frame 30, i.e. the cross bar supporting device 33 is supporting the cross bar 43 in relation to the inner frame 30 since the rear protruding pin 48 is inserted into the opening of the cross bar supporting device 33. Moreover, the first supporting element 41 is connected around the tower device 3 and is connected to the cross bar 43 via the connection elements 47. Moreover, the second supporting element 45 of the connection device is connected to the tower device.
In
The inner frame 30 may now also be locked to the outer frame 20 by means of the locking device 60, however this is strictly not necessary. Moreover, the cross bar 43 is being connected to the longitudinal actuating devices 42 via the connection interface 44b.
The device 1 is now transported to the installation site with the wind turbine device 2 in the substantially horizontal position. In
d illustrates the situation on the installation site, with the seabed supporting frame 9 provided on the seabed. Note the wires 14a connected between the control devices 14 and the foundation 6.
In
In
As described above, the wind turbine device is supported by the connection device 40 in relation to the outer frame. Due the cross bar 43 and its support in the supporting device 33 of the inner frame 30, the inner frame is also supported with respect to the outer frame. Hence, the locking device 60 is not necessary for supporting the inner frame with respect to the outer frame as long as the rear protruding pin 48 of the cross bar 43 is supported by the supporting device. This would be the case for pivotation angles between 0° and 90°.
When the pivotation angle exceeds 90°, the protruding pin 48 will exit from the supporting device 33. Before that happens, the inner frame should be locked to the outer frame by means of the locking device 60.
Hence, by pivoting the outer frame 30 further, for example to the position shown in
The wind turbine device is now in a free hanging configuration and may be lowered towards the seabed by means of the longitudinal actuation device 42 (
The tower device may now be released from the cross bar 43 by opening the second supporting element 45. Now, the control device 14 may control the orientation of the foundation with respect to the seabed supporting frame 9 by means of the wires 14a before the foundation is lowered further onto the seabed supporting frame 9.
The foundation is then fixed to the seabed supporting frame 9, and the connection device 40 is released from the wind turbine device allowing the vessel 10 with the outer and inner frames 30, 20 to leave the now installed wind turbine device.
For retrieval or de-commisioning of offshore wind turbine devices, the reverse procedure may be utilized.
A third embodiment is shown in
In
The vessel 10 is in this embodiment comprising propulsion means 15. In the present embodiment, these propulsion means 15 may be elevated to the position of
In this embodiment, the device comprises a vessel 10, a first or outer frame 20 and a second or inner frame 30 pivotable in relation to the vessel as described above.
The pivotal actuation device 25 for pivoting the outer frame 20 in relation to the vessel is in this embodiment comprising a hydraulic actuator connected to the outer frame 20 and is comprising a climbing beam device in contact with the vessel 10, as shown in
The connection device 40 of the present embodiment comprises a first supporting element 41 connected to the top end of the foundation 6. A cross bar 43 and a connection element 47 is provided for connecting the first supporting element 41 to the outer frame 20 via the longitudinal actuation device 42 and for supporting the connection device 40 to the inner frame 30. See
The longitudinal actuation device 42 here comprises a chain climbing device with a chain 42a. The present embodiment comprises two such longitudinal actuation devices 42, as shown in
The free hanging configuration is shown in
A second alternative embodiment is shown in
In
In this embodiment, the device comprises a vessel 10 and first or outer frame 20 pivotable in relation to the vessel. Hence, in this embodiment, there is no second or inner frame 30.
In his embodiment, the centre of gravity of the foundation 6 is provided over the slot 11 of the vessel 10, i.e. to the left of the pivotal pins 12 defining the pivotal axis I-I in
The connection device 40 of the present embodiment comprises a first supporting element 41 connected to the top end of the foundation 6. The connection element 41 is connected to the outer frame 20 via the longitudinal actuation device 42. The foundation 6 is supported directly against the outer frame 20 in the horizontal position, i.e. there is no cross bar 43 and connection elements 47.
The longitudinal actuation device 42 here comprises a chain climbing device with a chain 42a. The chain 42a is connected directly to the first supporting element 41. The present embodiment comprises one such longitudinal actuation device 42, as shown in
The free hanging configuration is shown in
It should also be noted that the first supporting device 41 may comprise one element 41a connected to the connection device 40 and one element 41b connected to the foundation 6 or wind turbine device 2. The elements 41a and 41b are connected to each other when foundation 6 is connected to the connection device 40, but is separated from each other when disconnecting the foundation from the connection device 40. This is for example indicated in
It should be noted that the vessel 10 may have many other suitable designs and configurations than the one illustrated in
Number | Date | Country | Kind |
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20100320 | Mar 2010 | NO | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/NO2010/000422 | 11/18/2010 | WO | 00 | 11/5/2012 |