FIXATION ARRANGEMENT ADAPTED TO RELEASABLY FIX A WIND TURBINE TOWER SEGMENT TO A SUPPORT OF A TRANSPORT VESSEL
20220307479 · 2022-09-29
Assignee
Inventors
- Jacob ANTONSEN (Esbjerg, DK)
- Michael BRAMM (Brørup, DK)
- Morten Fogh Jacobsen (Hjørring, DK)
- Soeren Majdal KAARSHOLM (Copenhagen N, DK)
- Tom NICOLAISEN (Auning, DK)
Cpc classification
B60P7/0892
PERFORMING OPERATIONS; TRANSPORTING
F05B2260/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D13/40
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D13/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F03D13/40
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60P7/08
PERFORMING OPERATIONS; TRANSPORTING
Abstract
Fixation arrangement adapted to releasably fix a wind turbine tower segment (4) to a support (3) of a transport vessel (20), comprising at least two fixation means (2), wherein each fixation means (2) comprises a base member (6) fixed or to be fixed to the support (3), a lever arm (8) connected to the base member (2) and pivotable around a pivot axis (9), and a tensioning means (13) for clamping the lever arm (8) with a clamping section (10) against the tower segment (4), wherein the tensioning means (13) comprises at least one tensioning element (14) supported relative to the base member (6) and movable from a non-clamping position in a clamping position and back, wherein the tensioning element (14) directly or indirectly interacts with the lever arm (8) which is pivoted into a clamping engagement of the clamping section (10) with the tower segment (4) when the tensioning element (14) moves from a non-clamping position into a clamping position and which is released when the tensioning element (14) moves back to the non-clamping position.
Claims
1. Fixation arrangement adapted to releasably fix a wind turbine tower segment (4) to a support (3) of a transport vessel (20), comprising at least two fixation means (2), wherein each fixation means (2) comprises a base member (6) fixed or to be fixed to the support (3), a lever arm (8) connected to the base member (2) and pivotable around a pivot axis (9), and a tensioning means (13) for clamping the lever arm (8) with a clamping section (10) against the tower segment (4), wherein the tensioning means (13) comprises at least one tensioning element (14) supported relative to the base member (6) and movable from a non-clamping position in a clamping position and back, wherein the tensioning element (14) directly or indirectly interacts with the lever arm (8) which is pivoted into a clamping engagement of the clamping section (10) with the tower segment (4) when the tensioning element (14) moves from a non-clamping position into a damping position and which is released when the tensioning element (14) moves back to the non-clamping position.
2. Fixation arrangement according to claim 1, wherein the tensioning element (14) is releasably movable into at least one recess (12) provided at the lever arm (8), wherein the tensioning element (14) and the recess (12) comprise interacting surfaces with at least one surface (16) being slanted, so that by the interaction of the surfaces during the movement of the tensioning element (14) into the recess (6) the lever arm (8) is pivoted around the pivot axis (9).
3. Fixation arrangement according to claim 1, wherein the tensioning element (14) comprises a slanted surface (16), wherein the tensioning means (13) further comprises a tensioning pin (21) movable on the slanted surface (16) of the tensioning element (14) from a non-engaging position into an engaging position, in which it engages at least one recess (12) provided at the lever arm (8), wherein the tensioning element (14), when moved from the non-clamping position into the clamping position, interacts with the tensioning pin (21) which in turn interacts with the lever arm (8).
4. Fixation arrangement according to claim 3, wherein the tensioning pin (21) is cylindrical with a flat bottom surface (25) sliding on the slanted surface (16), and that the recess (12) is at least in part form adapted to the cylindric shaped surface (26) of the tensioning pin (21).
5. Fixation arrangement according to claim 3, wherein the tensioning element (14) comprises a catch (28) adapted to disengage the tensioning pin (14) from the recess (12) when the tensioning element (14) moves from the clamping position in the non-clamping position.
6. Fixation arrangement according to claim 5, wherein the tensioning pin (21) comprises a distance element (27) rotatably arranged at the tensioning pin (21) and adapted to rotate from a first lifted position in a second lowered position in which it is arranged between the tensioning pin (21) and the catch (28).
7. Fixation arrangement according to claim 3, wherein the tensioning pin (21) is moved by an elastic spring means (24) from the non-engaging position in the engaging position and/or that the distance element (27) is automatically moved from the first in the second position and back by a mechanical forced guidance.
8. Fixation arrangement according to claim 2, wherein the recess (12) is provided at a first end of the lever arm (8) and the clamping section (10) is arranged at the other end of the lever arm (8), with the pivot axis (9) being arranged between the first and the second end.
9. Fixation arrangement according to claim 8, wherein the pivot axis (9) is arranged closer to the second end than to the first end.
10. Fixation arrangement according to claim 1, wherein the tensioning element (14) has a wedge-like cross section comprising a bottom surface and a top surface, which top surface is a slanted surface (16).
11. Fixation arrangement according to claim 10, wherein the slanted surface (16) is angled under 1°-5°, preferably 2°-4°.
12. Fixation arrangement according to claim 1, wherein the tensioning element (14) is movably supported on the base member (6).
13. Fixation arrangement according to claim 1, wherein the tensioning element (14) is movably by means of a controllable hydraulic or pneumatic cylinder means (17).
14. Fixation arrangement according to claim 1, wherein the lever arm (8) is adapted to gravity driven move around the pivot axis (9) from the clamping position into a non-working position when being released from the tensioning element (14).
15. Fixation arrangement according to claim 14, wherein the lever arm (8) is movable by means of a controllable hydraulic or pneumatic cylinder means (23) from the non-working position into a position allowing the movement of the tensioning element (14) or the tensioning pin (21) into the recess (12).
16. Fixation arrangement according to claim 1, wherein the lever arm (8) is movable by a hydraulic or pneumatic cylinder means (23) from the clamping position into the non-working position after removing the tensioning element (14) or the tensioning pin (21) from the recess (21) and from the non-working position into a position allowing the movement of the tensioning element (14) or the tensioning pin (12) into the recess (12).
17. Fixation arrangement according to claim 1, wherein the support (3) is a grillage to which the fixation means (2) are fixed.
18. Fixation arrangement according to claim 1, wherein the fixation means (2) are linearly and radially movable arranged on guide rails.
19. Transport vessel, comprising a fixation arrangement (1) according to claim 1.
20. Method for transporting a wind turbine tower (4) segment with a transport vessel (20) using a fixation arrangement (1) according to claim 1 arranged at the vessel (20), wherein the tower segment (4) is positioned on the support (3) of the vessel (20) relative to the fixation arrangement (1) and fixed by moving the tensioning elements (14) from the non-working position into the clamping position, thereby clamping the lever arms (8) against an engagement section of the tower segment (4), and wherein the tower section (4) is released by moving the tensioning elements (14) from the clamping position into the non-clamping position, thereby releasing the clamping of the lever arms (8).
21. Method according to claim 20, wherein the tensioning elements (14) and the lever arms (8) are automatically moved by controlling the cylinder means (17) with a control means, and that the lever arms (8) either pivot gravity driven from the clamping position in the non-clamping position or are automatically moved by controlling respective cylinder mans (23) from the clamping position into the non-clamping position.
22. Method according to claim 21, wherein the respective same cylinder means (17, 23) of all fixation means (2) are simultaneously controlled.
Description
[0038] Other objects and features of the present invention will become apparent from the following detailed description considered in conjunction with the accompanying drawings. The drawings, however, are only principle sketches designed solely for the purpose of illustration and do not limit the invention. The drawings show:
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[0056] Each fixation means 2 comprises a base member 6, which is fixed to the support 3, although not shown. This is done by any screw or bolt fixations attached to respective flanges 7 of the base member 6.
[0057] At the base member 6 a lever arm 8 is attached, which is pivotable around a pivot axis 9. The lever arm 8 comprises a clamping section 10, which for clamping purpose is pressed against the flange 5 of the tower section 4 as will be explained in detail.
[0058] The lever arm 8 comprises two lever arm plates 11, which are connected to build a stable lever arm. The lever arm 8 respectively each plate 11 is provided with a recess 12, in which a tensioning element will engage for providing the clamping force as will be explained later.
[0059] The arrangement of the pivot axis 9 is such that two lever arm sections of different lengths are provided. The first lever arm section extends from the end comprising the recesses 12 to the pivot axis 9 and is the longer section. The second lever arm section extends from the pivot axis 9 to the lever arm end comprising the clamping section 10. This design allows the lever arm 8 to swivel gravity driven around the pivot axis 9 when released by the tensioning means as will be explained later.
[0060] Furthermore, the fixation means 2 comprises a tensioning means 13. This tensioning means 13 in this embodiment comprises as tensioning element 14 which is wedge-shaped in cross section. It comprises a bottom surface sliding on the surface 15 of the base member 6. It further comprises a slanted surface 16. The tensioning element 14 is coupled to a hydraulic or pneumatic cylinder means 17 (see
[0061] The tensioning element 14 is designed to engage the recesses 12 for building up a force which makes the lever arm 8 rotate around the pivot axis 9 and which makes the clamping section 10 to firmly engage the flange 5. As mentioned, the tensioning element 14 has a wedge-like cross section with a slanted surface 16. When the tensioning element 14 moves towards the lever arm 8, as shown by the arrow P1 in
[0062] As mentioned, a certain number of fixation elements 2 are arranged in a ring-form. Preferably they are all simultaneously controlled, so that all their cylinder means 17 are simultaneously moving the respective tensioning element 14 into the respective recesses by pulling the plunges 19 into the cylinders 18. All clamping sections 10 of all fixation means 2 are simultaneously pressed against the flange 5, so that the tower section 4 is tightly fixed to the support 3 around its circumference. This allows to securely fasten the tower section to the vessel and for transporting it to the construction site.
[0063] At the construction site the tower section 4 needs to be unloaded. It is therefore necessary to again release the clamped fixation.
[0064] For this purpose, the tensioning element 14 of each fixation means 2 is moved backwards by the respective cylinder means 17 so that it disengages the respective recesses 12. As mentioned, the respective lever arm sections have different lengths. The longer lever arm section extending from the end comprising the recesses 12 to the pivot axis 9 is heavier than the other lever arm section extending from the pivot axis 9 to the clamping section 10. Therefore, when the tensioning element 14 is moved and disengages the recesses 14, the lever arm 8 swings gravity driven around the pivot axis 9 in an almost upright position as shown in
[0065] As again all cylinder means 17 of all fixation means 2 are simultaneously controlled by a respective control means, which controls the hydraulic or pneumatic circuit, each clamping point realised by each separate fixation means 2 is simultaneously released with all other clamping points, so that the tower section 4 is released from one moment to the other around its whole circumference and may therefore immediately be lifted. The whole release process in fact takes only seconds, allowing to release the tower segment 4 even if the vessel is in motion and not jacked-up to the construction site.
[0066] For bringing the gravity driven pivoted lever arm 8 from the position according to
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[0069] The lever arm 8 again comprises respective recesses 12 arranged at both plates 11. In the non-working position of the lever arm 8, as shown in
[0070] As
[0071] In this embodiment, the cylinder means 23 may also be used to move the lever arm 8 back to the non-working position according to
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[0073] The tensioning pin 21 is basically of a cylindrical cross section, but has a flat bottom surface 25, with which it slides on the slanted surface 16. A respective sliding surface or sliding bearing arrangement may be provided to ease the sliding movement. The recesses 12 are also rounded, so that, see
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[0075] Due to this linear movement, see the
[0076] As
[0077] Between these plates 11 also a catch 28, which is provided at the tensioning element 14, is arranged.
[0078] From the position according to
[0079] If now the clamping of the tower segment shall be released for unloading it, the lifting element 14 is retracted again as shown by the arrow P7 in
[0080] Obviously the distance element 27 allows for a very quick release of the clamping of the tower section, as it necessitates only a very small movement of the tensioning element 14 to abut the distance element 27 and to move the tensioning pin 21, which is the only item engaging in the recesses 12, so that the release is overall very fast and can be realised within seconds. As again all fastening means 2 are simultaneously controlled, meaning that all their respective cylinder means 17 and 23 are simultaneously controlled by a control means according to the respective process situation, the releasing or unclamping process is simultaneously performed around the whole circumference, so that all clamping points are opened at the same time and the tower section may immediately be lifted.
[0081] This lifting operation is finally shown in
[0082] Although the present invention has been described in detail with reference to the preferred embodiment, the present invention is not limited by the disclosed examples from which the skilled person is able to derive other variations without departing from the scope of the invention.