EP4616067A1 - Installation of a nacelle and rotor blades of a wind turbine - Google Patents
Installation of a nacelle and rotor blades of a wind turbineInfo
- Publication number
- EP4616067A1 EP4616067A1 EP23800874.2A EP23800874A EP4616067A1 EP 4616067 A1 EP4616067 A1 EP 4616067A1 EP 23800874 A EP23800874 A EP 23800874A EP 4616067 A1 EP4616067 A1 EP 4616067A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- blade
- nacelle
- integrated device
- motion
- crane
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Pending
Links
Classifications
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F03—MACHINES OR ENGINES FOR LIQUIDS; WIND, SPRING, OR WEIGHT MOTORS; PRODUCING MECHANICAL POWER OR A REACTIVE PROPULSIVE THRUST, NOT OTHERWISE PROVIDED FOR
- F03D—WIND MOTORS
- F03D13/00—Assembly, mounting or commissioning of wind motors; Arrangements specially adapted for transporting wind motor components
- F03D13/10—Assembly of wind motors; Arrangements for erecting wind motors
- F03D13/104—Rotor installation, e.g. installation of blades
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B66—HOISTING; LIFTING; HAULING
- B66C—CRANES; LOAD-ENGAGING ELEMENTS OR DEVICES FOR CRANES, CAPSTANS, WINCHES, OR TACKLES
- B66C1/00—Load-engaging elements or devices attached to lifting or lowering gear of cranes or adapted for connection therewith for transmitting lifting forces to articles or groups of articles
- B66C1/10—Load-engaging elements or devices attached to lifting or lowering gear of cranes or adapted for connection therewith for transmitting lifting forces to articles or groups of articles by mechanical means
- B66C1/108—Load-engaging elements or devices attached to lifting or lowering gear of cranes or adapted for connection therewith for transmitting lifting forces to articles or groups of articles by mechanical means for lifting parts of wind turbines
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B66—HOISTING; LIFTING; HAULING
- B66C—CRANES; LOAD-ENGAGING ELEMENTS OR DEVICES FOR CRANES, CAPSTANS, WINCHES, OR TACKLES
- B66C1/00—Load-engaging elements or devices attached to lifting or lowering gear of cranes or adapted for connection therewith for transmitting lifting forces to articles or groups of articles
- B66C1/10—Load-engaging elements or devices attached to lifting or lowering gear of cranes or adapted for connection therewith for transmitting lifting forces to articles or groups of articles by mechanical means
- B66C1/42—Gripping members engaging only the external or internal surfaces of the articles
- B66C1/425—Gripping members engaging only the external or internal surfaces of the articles motor actuated
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B66—HOISTING; LIFTING; HAULING
- B66C—CRANES; LOAD-ENGAGING ELEMENTS OR DEVICES FOR CRANES, CAPSTANS, WINCHES, OR TACKLES
- B66C13/00—Other constructional features or details
- B66C13/04—Auxiliary devices for controlling movements of suspended loads, or preventing cable slack
- B66C13/08—Auxiliary devices for controlling movements of suspended loads, or preventing cable slack for depositing loads in desired attitudes or positions
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B66—HOISTING; LIFTING; HAULING
- B66C—CRANES; LOAD-ENGAGING ELEMENTS OR DEVICES FOR CRANES, CAPSTANS, WINCHES, OR TACKLES
- B66C23/00—Cranes comprising essentially a beam, boom, or triangular structure acting as a cantilever and mounted for translatory of swinging movements in vertical or horizontal planes or a combination of such movements, e.g. jib-cranes, derricks, tower cranes
- B66C23/18—Cranes comprising essentially a beam, boom, or triangular structure acting as a cantilever and mounted for translatory of swinging movements in vertical or horizontal planes or a combination of such movements, e.g. jib-cranes, derricks, tower cranes specially adapted for use in particular purposes
- B66C23/20—Cranes comprising essentially a beam, boom, or triangular structure acting as a cantilever and mounted for translatory of swinging movements in vertical or horizontal planes or a combination of such movements, e.g. jib-cranes, derricks, tower cranes specially adapted for use in particular purposes with supporting couples provided by walls of buildings or like structures
- B66C23/207—Cranes comprising essentially a beam, boom, or triangular structure acting as a cantilever and mounted for translatory of swinging movements in vertical or horizontal planes or a combination of such movements, e.g. jib-cranes, derricks, tower cranes specially adapted for use in particular purposes with supporting couples provided by walls of buildings or like structures with supporting couples provided by wind turbines
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B66—HOISTING; LIFTING; HAULING
- B66C—CRANES; LOAD-ENGAGING ELEMENTS OR DEVICES FOR CRANES, CAPSTANS, WINCHES, OR TACKLES
- B66C23/00—Cranes comprising essentially a beam, boom, or triangular structure acting as a cantilever and mounted for translatory of swinging movements in vertical or horizontal planes or a combination of such movements, e.g. jib-cranes, derricks, tower cranes
- B66C23/62—Constructional features or details
- B66C23/72—Counterweights or supports for balancing lifting couples
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F03—MACHINES OR ENGINES FOR LIQUIDS; WIND, SPRING, OR WEIGHT MOTORS; PRODUCING MECHANICAL POWER OR A REACTIVE PROPULSIVE THRUST, NOT OTHERWISE PROVIDED FOR
- F03D—WIND MOTORS
- F03D1/00—Wind motors with rotation axis substantially parallel to the air flow entering the rotor
- F03D1/06—Rotors
- F03D1/065—Rotors characterised by their construction elements
- F03D1/0658—Arrangements for fixing wind-engaging parts to a hub
-
- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02E—REDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
- Y02E10/00—Energy generation through renewable energy sources
- Y02E10/70—Wind energy
- Y02E10/72—Wind turbines with rotation axis in wind direction
Definitions
- the present invention relates to the installation of a wind turbine, e.g. an offshore wind turbine.
- a nacelle including a generator and a hub driving the generator onto the top of a tower of a wind turbine.
- the hub is provided with multiple blade mounting structures, e.g. three, each configured for securing thereto a rotor blade.
- the rotor blades are fitted one by one to their respective blade mounting structure.
- each rotor blade is lifted by a crane to a height allowing for securing of the blade root to a blade mounting structure.
- the nacelle of a wind turbine often is a very bulky and heavy object. A weight of several hundred tonnes for a nacelle has become normal in the wind energy industry.
- the SG 14-222 DD wind turbine with a design capacity of 14 MW has a nacelle weight of some 500 tonnes.
- the Haliade-X 12 MW wind turbine has a nacelle weight of 675 tonnes.
- nacelle lifting tool In order to lift a heavy nacelle to the top of the wind turbine tower one or two tall and high capacity cranes are required. In this operation it is known to make use of a specific nacelle lifting tool that is suspended from the load connector of the one crane or from both cranes.
- the nacelle lifting tool in itself is a sizable object and may weigh tens of tonnes in order to handle the weight of the nacelle.
- the nacelle is commonly provided with anchoring points which are configured to be connected to the nacelle lifting tool, commonly via slings.
- anchoring points which are configured to be connected to the nacelle lifting tool, commonly via slings.
- three or four anchoring points are provided, e.g. three in a triangular configuration when seen from above.
- one anchoring point is located rather forward on the hub on the centreline of the nacelle and two anchoring points are located more rearward on opposite sides of the nacelle.
- the nacelle lifting tool is disconnected from the nacelle, e.g. by disconnecting the lifting slings from the anchoring points. Then the nacelle lifting tool is brought back down, e.g. to the ground or to a deck of a vessel when installing an offshore wind turbine, and is disconnected from the crane(s).
- the rotor blade has a blade body with a blade root, a blade tip, a length between the root and the tip, as well as a mass.
- the rotor blade is often made primarily of composite material.
- the blade root is configured to be secured to a blade mounting structure of the hub of the wind turbine by means of one or more fasteners.
- a series of bolts protrudes from the stern face of the hollow blade root, e.g. in the form of so-called T-bolts.
- the mounting structure of the hub is provided with a circular flange provided with a matching series of bolt holes, e.g. the flange being part of or integrated with a pitch bearing of the blade mounting structure.
- wind turbines have steadily increased over the years, mainly in view of economically efficient energy generation.
- wind turbines have very large rotor blades, e.g. over 75m, or even over 100m in length.
- each blade of the Vestas 15 V236 wind turbine measures 115.5 meters in length.
- the Siemens Gamesa’s SG 14-222 DD direct drive wind turbine has rotor blades of 108 meters in length.
- This market development further increases demands on the installation of a rotor blade to a wind turbine, whether onshore or offshore.
- the blade root may have a diameter of more than 5 m.
- the mass of a single rotor blade may be well in excess of 50 tons.
- a rotor blade For the installation of a rotor blade to the hub of the wind turbine, it is common to lift the blade by means of one crane using a blade lifting tool that is attached to the load connector of the crane.
- the crane In a common approach, the crane is operated to lift the rotor blade whilst remaining in horizontal orientation to a height that is substantially level with a blade mounting structure, which is positioned in the so-called three o’clock or nine o’clock position.
- the crane is then operated to bring the rotor blade closer to the blade mounting structure of the hub, for example assisted by a taglines system of the crane in order to stabilize and align the rotor blade so that the bolts can be introduced into the bolt holes.
- the so-called six o’clock installation has become rather problematic as it is difficult to hold the blade in a vertical position by means of a blade lifting tool.
- the rotor blade that is lifted by means of a crane may obviously be subject to wind-induced motion as long as it is not fully secured to the hub.
- crane induced motions may occur in the installation process of the rotor blade, e.g. vibrations of the crane boom.
- the relative motion between the root end of the rotor blade and the blade mounting structure of the hub may be the source of an undesirable impact or collision between one of more bolts and the hub or other part of the nacelle.
- This impact may lead to damage, even hidden damage, in the blade root, e.g. (minimal) cracking of the laminated composite material, and/or damage to one or more of the bolts, etc.
- the same problem may arise if some of the bolts are initially replaced by longer guide rods, that protrude beyond the bolts and are to be introduced into the respective hole as a guide.
- EP2918969 for example, reference is made to EP2918969.
- the above-mentioned article discusses that at sea the wind direction and the wave direction may be the same, yet they may also be different from one another. The latter is called windwave misalignment.
- impact velocity of the blade root may be such that undue damage occurs on impact.
- the article shows graphs wherein periodic hub motion in the horizontal or XY-plane is depicted for different angles between waves and wind. The amplitude of the periodic hub motion may be about 1 meter due to waves hitting the foundation.
- the blade suspended from the crane is subject to its own periodic motion, so that significant relative motion is present in the mating process. It is an object of the present invention to provide a more effective approach and associated equipment for the installation of a wind turbine, whether at sea or on land.
- the invention provides a method according to claim 1 .
- an integrated device configured for nacelle lifting as well as for blade positioning, the integrated device having a nacelle lifting structure and a blade positioning assembly.
- the method comprises connecting the integrated device to a nacelle and to the load connector of the crane.
- two cranes can be employed for lifting the nacelle, yet the use of a single crane is preferred.
- Connecting the integrated device to the nacelle can be done after the integrated device has first been connected to the load connector of the crane, e.g. the crane being used to bring the integrated device in position relative to the nacelle to allow its connection to the nacelle.
- the integrated device is first connected to the nacelle, e.g. using another crane than the one used for actual lifting of the nacelle. This other crane can be significantly smaller in size and capacity than the crane(s) required for lifting the nacelle.
- the nacelle is then lifted to the top of the tower, followed by fastening of the nacelle to the top of the tower.
- the integrated device more in particular the nacelle lifting structure thereof, has a shank protruding upward and, at an upper end thereof, a shoulder.
- the one shank of the integrated device is configured to support the weight of the device as well as of the nacelle when being lifted by means of one or two high capacity cranes.
- W02020/055249 for possible embodiments and operation of this shank and load connector.
- the blade position assembly of the integrated device may be embodied, for example, as disclosed in EP2538073.
- the blade positioning assembly is configured to center the blade root relative to the respective blade mounting structure.
- the blade positioning assembly comprises a stationary mounted blade engaging member, so stationary relative to the nacelle, e.g. a static guide, e.g. a roller, along which the blade is made to slide when mounting the blade root to the mounting structure.
- a stationary mounted blade engaging member so stationary relative to the nacelle, e.g. a static guide, e.g. a roller, along which the blade is made to slide when mounting the blade root to the mounting structure.
- the blade positioning assembly comprises:
- a mobile blade engaging member e.g. a blade coupler, e.g. a blade root coupler that is configured to couple to the exterior of the blade root
- a motion mechanism supporting the blade engaging member e.g. a motion arm
- a controllable actuator assembly comprising one or more actuators associated with the motion mechanism and a controller, the actuator assembly being configured to provide controlled motion of the motion mechanism in order to controllably move the blade engaging member.
- the centering of the blade root is done by means of the motion mechanism, e.g. providing for motion of the blade coupler in a plane that is perpendicular to the axis of the rotor blade to achieve a centering of the blade root.
- the motion mechanism is configured to provide at least controlled displacement of the mobile blade engaging member in direction of an axis along which the blade root is to be mounted to the blade mounting structure, e.g. perpendicular to a plane of a pitch bearing of said structure.
- this embodiment is used to couple to the blade, e.g. the blade root, and then controllably move the blade root towards the blade mounting structure, e.g. introducing bolts protruding axially from the blade root into their respective bolt hole of the blade mounting structure.
- the blade to be mounted to the respective blade mounting structure is held horizontally by the crane and blade lifting device during the mounting phase. This corresponds to the three o’clock or nine o’clock orientation.
- the blade can be held at an inclination, e.g. at an angle of about 30 degrees relative to the horizontal plane.
- the motion mechanism is operated to bring the mobile blade engaging member in a receiving position thereof so that the rotor blade lifted by the crane can be brought in engagement with the mobile blade engaging member.
- the blade coupler is configured as a blade root coupler that engages on, e.g. clamps about, the exterior of the blade root of the rotor blade.
- the blade coupler is configured and operated to engage on another portion of the rotor blade, e.g. on the aerofoil portion thereof.
- the blade coupler is configured and operated to couple with the blade lifting tool, e.g. an extender member of said blade lifting tool that extends towards the blade root.
- the coupling of the blade coupler to the blade may be performed in a variety of manners, e.g. depending on the design of the blade coupler and/or of the blade/blade root.
- the blade coupler may couple to the exterior of the blade or blade root by magnetically coupling, by vacuum coupling, etc.
- the blade coupler restrains the rotor blade at least in the longitudinal direction of the blade.
- the blade coupler allows for (some) rotation of the blade about the longitudinal axis thereof, e.g. said rotation being caused by an appropriately design of the blade lifting tool, e.g. said rotation being performed in view of alignment of the bolts with the bolt holes.
- such alignment is effected by rotation of the mounting structure, e.g. by means of the pitch adjustment mechanism thereof.
- the blade coupler is first moved into a receiving position thereof and the coupled to the blade.
- the motion mechanism is then operated to displace the blade root of the coupled blade to the blade mounting structure.
- the blade root coupler is an openable gripper that is configured to grip about the blade root of the blade.
- the gripper has a gripper base connected to the motion mechanism, e.g. arm, e.g. via a Z-axis swivel.
- the gripper has one or more movable, e.g. pivotal, gripper jaws, e.g. one at each circumferential end of the gripper base.
- the blade root coupler is an openable gripper that is configured to grip about the blade root, e.g. about a blade root having a diameter of at least 3 meters, e.g. of more than 4 meters.
- the initial coupling of the blade to the blade coupler, e.g. to the blade root, is, preferably, done at a fairly large distance, e.g. a safety distance, from the blade mounting structure of the hub, so as to practically exclude the possibility of impact between the blade root and the mounting structure or other part of the nacelle, e.g. the outer hull of the nacelle and/or the generator.
- a fairly large distance e.g. a safety distance
- the motion mechanism is configured to provide for controlled motion of the blade engaging member, e.g. the blade coupler, solely in two non-parallel horizontal directions, so in a horizontal plane.
- the motion mechanism is or comprises an articulated motion arm having multiple interconnected arm segments including an inner arm segment that is connected to a frame component of the integrated device and an outer arm segment that carries the blade engaging member, e.g. blade coupler, possible also one or more intermediate arm segments between the inner and outer arm segments.
- the arm segments are connected to one another via a Z-axis hinge.
- the motion arm solely provides for motion in two non-parallel horizontal directions.
- all arm segments of the articulated motion arm are fixed length arm segments.
- one or more of the arm segments are embodied as a telescopic arm segment.
- the motion mechanism e.g. the motion arm
- the motion mechanism is configured for motion in and/or rotation around the X-axis, Y-axis, and Z-axis such that motion with multiple, e.g. four, five, or six degrees of freedom is enabled for the blade engaging member, e.g. the blade coupler.
- the method comprises:
- the tower top is subject to sea state and/or wind induced tower top motion in at least one direction in a horizontal plane, e.g. as discussed in the mentioned scientific article.
- the integrated device is configured and operated to perform a method which comprises:
- the blade coupler e.g. blade root coupler
- the controllable actuator assembly e.g. the motion arm folding and stretching in embodiments, so that this coupler does not exhibit the tower top motion.
- the compensation may be such that the blade coupler is at a stationary or stabilized position in space. This greatly facilitates the act of engaging the suspended rotor blade, e.g. the exterior of the blade root, with the blade root coupler. This engaging act may involve operating the crane to move the rotor blade but may also entail controlled engagement motion of the blade coupler.
- the blade coupler is motion compensated at such a location that mere slew motion of the crane, e.g. without luffing motion of the crane boom, brings the blade root in position for the initial coupling.
- mere slew motion of the crane e.g. without luffing motion of the crane boom
- any disturbance of the blade stability caused by luffing of the crane boom which may be over 100 meters long in practical embodiments, is avoided.
- controllable actuator assembly is operated to gradually bring, and then maintain, the coupled blade in a horizontal motion that is synchronized with tower top motion.
- the motion mechanism e.g. including or embodied as an arm, e.g. an articulated arm, is configured to exert selectively - under control of the actuator assembly - both a force pulling the blade, e.g. the root, towards the mounting structure as well as a force pushing against the blade, e.g. the root, away from the blade mounting structure.
- this allows for the mentioned synchronization with the nacelle.
- Use of the blade coupler and the associated motion mechanism allows for a controlled gradual approach of the blade root towards the blade mounting structure, e.g. including a pitch bearing, which is desired in view of the large mass of the rotor blade.
- a rapid or even sudden approach would cause undue inertia-based forces, e.g. necessitating an unduly heavy motion mechanism and/or may cause excessive strain where the blade coupler engages the blade, e.g. the exterior of the blade root.
- the tower top motion coincides mainly with a horizontally extending mounting axis defined by the blade mounting structure during blade installation.
- the motion mechanism may then, in embodiments, be operated so that synchronization takes place along this axis, so along the longitudinal axis of the blade suspended from the crane.
- the blade lifting tool and/or the crane may be configured and operated to let the blade follow this motion, so without being restrained by or unduly pulling on the crane, e.g. avoiding, or reducing vibrations of the boom due to the blade motion synchronization.
- the tower top motion has a component that is perpendicular to the mounting axis or fully extends perpendicular to this axis.
- a blade root coupler will synchronize the blade root, yet the lengthy and heavy blade will likely not be following this synchronized motion.
- the method comprises, with the blade root gripper in its motion compensated receiving position, the opening of the gripper so that the coupling or engaging of the blade root comprises resting the blade root on a gripper base, e.g. by lowering the blade trough operation of the crane, and then closing the gripper about the blade root by actuation of the one or more movable, e.g. pivotal, gripper jaws.
- one or more gripper jaws are hydraulically actuated.
- the motion mechanism is operated so that blade coupler is on the one hand compensated for tower top motion and on the other hand is caused to follow motion, e.g. sway, of the still not engaged blade root as the blade is suspended from the crane.
- motion of the blade which effectively renders the engagement even more problematic, can also be (partly) countered by means associated with the crane and/or the blade lifting tool.
- one or more taglines lines and associated winches can be employed to counter sway of the blade suspended from the crane.
- the blade lifting tool may be equipped with means to counter sway, e.g. one or more gyroscopes, propellors that create air thrust, etc.
- the synchronization of the coupled blade with the tower top motion is effected prior to displacing the coupled blade root into the pre-mounting position.
- the articulated motion arm whilst stabilizing the blade coupler in the receiving position, initially behaves like/is operated as a limp, flexible arm to compensate the tower top motion, and is then, e.g. gradually, stiffened, or made to behave stiffer, so that the blade gradually assumes the motion of the tower top and is no longer compensated for such motion.
- a gradual reduction of the compensating operation of the arm is preferred, so that the blade is gradually brought into the synchronised motion without undue stresses/load occurring in the process.
- the synchronization of the coupled blade with the tower top motion is effected at last in part simultaneously with displacing the coupled blade root into the premounting position.
- the rotor blade that is lifted by the crane and before being coupled to the blade coupler is subject to motion in at least one direction in a horizontal plane, e.g. wind induced motion, e.g. a periodic motion.
- wind or wind gusts may cause the blade to exhibit a periodic motion.
- the integrated device is configured and operated to perform a method which comprises:
- the blade coupler e.g. the blade root coupler
- a horizontal motion that is synchronized with blade motion in the at least one direction, e.g. in multiple horizontal directions, e.g. two orthogonal horizontal directions,
- the controllable actuator assembly to perform a mounting motion wherein the blade root is moved from the pre-mounting position into a mounting position, and keeping the blade root in the mounting position during securing of the blade root, e.g. fastening of the blade root to the mounting structure by one or more fasteners.
- the blade coupler is effectively made to follow the blade that is in (periodic) motion, e.g. the blade root, before actually coupling to the blade.
- the motion mechanism e.g. motion arm, is operated to move the blade root in a controlled process towards the blade mounting structure.
- the method comprises a verification step that is performed with the blade root in the pre-mounting position and prior to initiating the mounting motion, which verification step comprises verification of the synchronization and/or of the alignment of the blade root with the blade mounting structure.
- a collision may damage the blade root, e.g. cracking of the laminated structure, such that installation of the blade is no longer possible, e.g. the blade needing to the shipped back to the factory for repairs.
- the verification step seeks to avoid this situation, e.g. by accurately measuring, e.g. using surveying equipment, the line-up of the blade with the axis along which the mounting motion is to be performed, and/or of the position of any bolts and/or temporary guides (e.g. to be later replaced by bolts) relative to the mounting structure, etc.
- the crane used in the lifting of the rotor blade has a boom, and the crane is provided with a load connector active position control system that is configured and operated to actively control the position of the load connector in at least one horizontal direction, preferably in at least two non-parallel horizontal directions, relative to the boom.
- a load connector active position control system that is configured and operated to actively control the position of the load connector in at least one horizontal direction, preferably in at least two non-parallel horizontal directions, relative to the boom. Examples of cranes having such capabilities are disclosed in WO2019156556, WO2018199743, and W02018106105.
- the method comprises operating the load connector active position control system of the crane in synchronicity with the blade coupler when coupled to the blade, e.g. as the blade root coupler moves in sync with the tower top motion, e.g. whilst the blade root is controllably advanced towards the pre-mounting position and/or to the mounting position.
- the load connector active position control system is configured and operated to cause the blade lifting tool to be moved in sync with the tower top motion, e.g. at least in one horizontal direction, possibly in two non-parallel directions in a horizontal plane.
- the blade lifting tool comprises a frame that is attached to the load connector of the crane involved in the installation of the rotor blade, wherein the blade lifting tool comprises a blade holding assembly that is mobile mounted relative to the frame, e.g. at least mobile relative to the frame in one horizontal direction, e.g. along a length of the rotor blade held by the blade holding assembly, preferably two non-parallel horizontal direction, wherein the blade lifting tool comprises a controllable motion actuator device between frame and blade holding assembly.
- the method comprises operating the controllable motion actuator device to move the blade holding assembly relative to the frame in synchronicity with the blade coupler, e.g. when coupled to the exterior of the blade root.
- the blade lifting tool comprises an active COG (centre of gravity) balancing system with a counterweight that is mobile mounted relative to frame and with a controlled motion actuator device between the frame and the counterweight, wherein the method comprises moving the counterweight relative to the frame in order to cause a common centre of gravity of the blade mass and the blade lifting tool to remain stable in a horizontal plane when the blade holding assembly and the blade held thereby are moved relative to the frame.
- COG centre of gravity
- use is made of one or more sensors that measure the distance and/or position and/or angular orientation of the blade root relative to the mounting structure, e.g. said one or more sensors being linked to the controller of the controllable motion arm actuator assembly and/or to load connector active position control system and/or to the controllable motion actuator device that moves the blade holding assembly relative to the frame.
- the method comprises the use of a control unit for control of the motion mechanism, e.g. said control unit being operated by a human operator that is present in or on the nacelle or on a platform or cabin on or in proximity of the nacelle.
- communication means are provided to cause communication between controller of the motion mechanism of the blade positioning assembly and the crane involved in lifting of the rotor blade, e.g. with the crane controller and/or with the crane driver.
- the controller communicates, e.g. in two directions, with a load connector position control system for multi-axis, e.g. x-y-z axis, control of the position of the load connector of the crane lifting the rotor blade.
- the blade positioning assembly is provided with one or more force sensors configured to measure force exerted by the rotor blade on the assembly or components thereof.
- force feedback is used for the control of operation of the crane and/or the blade lifting tool involved in lifting of the rotor blade.
- the force feedback can be automatically processed, and/or signalled to a crane drive, e.g. providing a warning signal when one or more forces become too high.
- the blade positioning assembly may be provided with one or more sensors configured to provide signals, e.g. feedback signals, that are used for the control of operation of the crane and/or the blade lifting tool involved in lifting of the rotor blade.
- signals e.g. feedback signals
- the blade engaging member e.g. blade coupler
- the motion mechanism is then operated to move into a retracted configuration thereof, wherein a clearance is provided for the installed rotor blade during a rotation of the hub that is done so as to bring another one of the blade mounting structures into position for the installation of another rotor blade to the wind turbine.
- the method comprises an emergency distancing routine, wherein the motion mechanism is operated to cause a rapid distancing of blade root away from nacelle, e.g. in case of a power and/or control signal anomaly, e.g. black-out, and/or in case of an anomaly in wind condition and/or sea state, e.g. wind gust, bass wave, etc.
- a power and/or control signal anomaly e.g. black-out
- an anomaly in wind condition and/or sea state e.g. wind gust, bass wave, etc.
- the present invention also relates to an integrated device configured for nacelle lifting as well as for blade positioning, the integrated device having a nacelle lifting structure and a blade positioning assembly.
- the integrated device may have one or more features as discussed herein.
- the present invention also relates to the use of the integrated device in the installation of a wind turbine.
- the present invention also a vessel loaded with multiple nacelles configured to each be installed on a respective offshore wind turbine tower, e.g. of an offshore wind farm, wherein each nacelle is pre-fitted with an integrated device configured for nacelle lifting as well as for blade positioning, the integrated device having a nacelle lifting structure and a blade positioning assembly.
- this vessel is the vessel having the one or two cranes for lifting the nacelle or is a dedicated transport vessel, e.g. a barge.
- FIG. 1 shows schematically, in a view onto the front of the nacelle, the top of an offshore wind turbine with the inventive integrated device which is used in the installation of the rotor blades,
- Fig. 2 shows schematically, in a view from above, the use of the inventive integrated device in the installation of a rotor blade
- FIG. 3 shows schematically , the installation of the rotor blade with the inventive integrated device as well as a blade lifting tool used in lifting of the rotor blade
- Fig. 4 shows schematically another embodiment of the inventive integrated device as well as a nacelle
- Fig. 5 shows the integrated device of figure 4 mounted on the nacelle
- Fig. 6 illustrates the connection between the integrated device and the nacelle of figure 5
- Fig. 7 shows the nacelle having been lifted and secured onto the top of the tower of a wind turbine, with the integrated device remaining on the nacelle after having been disconnected from the crane(s)
- Fig. 8 illustrates the operation of the blade positioning assembly of the integrated device of figures 4 - 7 in the installation of a rotor blade
- Fig. 9 illustrates the rotation of the hub after the rotor blade has been fastened to the respective blade mounting structure of the hub
- Fig. 10 illustrates the operation of the blade positioning assembly when installing the second rotor blade
- Fig. 11 illustrates the rotation of the hub after the second rotor blade has been fastened to the respective blade mounting structure of the hub
- Fig. 12 illustrates the operation of the blade positioning assembly when installing the third rotor blade
- Fig. 13 illustrates the removal of the integrated device from the nacelle once the installation of the rotor blades has been completed
- Fig. 14 illustrates the top portion of the wind turbine once the installation thereof has been completed and the wind turbine is ready to generate electricity.
- FIG 1 a top portion of a wind turbine is schematically shown.
- the wind turbine comprises:
- a foundation (not shown), e.g. fixed to the seabed, e.g. a monopile or a jacket, or a floating foundation,
- the nacelle 3 is provided with a horizontal axis hub 4 having multiple blade mounting structures 5a,b,c, here three, each configured for securing thereto a rotor blade 7, 8.
- the mounting structures 5a,b,c may each include a pitch bearing, allowing to adjust the pitch of the rotor blades by means of a pitch adjuster mechanism.
- the rotation of the hub 4 causes a generator of the nacelle 3 to generate electricity.
- the generator may be, for example, a direct drive type generator.
- the drive train of the generator includes a gearbox.
- the nacelle 3 is bulky and heavy, and for lifting the nacelle 3 at least one high capacity crane (not shown) is used.
- This crane has a load connector 75, here a crane hook 75, suspended from winch driven cable(s) of the crane.
- the crane For installation of an offshore wind turbine at an offshore location, the crane will be mounted on a vessel, e.g. a jack-up vessel or a floating vessel e.g. a semi-submersible vessel.
- a vessel e.g. a jack-up vessel or a floating vessel e.g. a semi-submersible vessel.
- the nacelle 3 is transported to the site of the wind turbine on the same vessel.
- the nacelle 3 is transported to the site on a distinct vessel, e.g. on a barge or other supply vessel.
- an integrated device 100 which is configured not only for nacelle lifting but also for blade positioning in the stage or phase of installation of the rotor blades to the hub of the nacelle.
- the integrated device 100 has a nacelle lifting structure 110 and a blade positioning assembly 130.
- the nacelle lifting structure 110 is configured to support the weight of the nacelle 3 as it is lifted by means of a crane.
- the blade positioning assembly 130 serves to assist in and/or control the positioning of the blade relative to the blade mounting structure in the process of installation of the blade.
- the integrated device 100 is suspended from the load connector 75 of the crane, here by means of slings 80.
- Other connections to the load connector of the crane(s) are also possible, e.g. as shown in figure 4.
- the method comprises connecting the integrated device 100 to the nacelle 3 and then lifting the nacelle 3 to the top of the tower 2 by means of the crane(s), followed by fastening of the nacelle 3 to the top of the tower.
- Various manners for connecting the device 100, in particular the structure 110 thereof, to the nacelle 3 are discussed herein.
- the load connector 75 of the crane is disconnected from the integrated device 100, which device 100 then remains connected to the nacelle 3.
- the integrated device 100 is configured to have a stable position relative to the nacelle 3 at least when disconnected from the load connector 75 of the crane.
- a blade lifting tool 20 which retains the rotor blade 8 and is suspended from a load connector of a crane, e.g. the crane also having been used for lifting the nacelle but possible from another crane, e.g. a crane mounted on another, second vessel.
- the crane is operated to lift the rotor blade 8 to a height allowing for securing of the blade root to a respective blade mounting structure 5c of the hub 4.
- the rotor blade 8 e.g. the blade root 8a
- the blade positioning assembly 130 of the integrated device 100 that is present on the nacelle 3.
- the blade positioning assembly 130 is used in positioning of the blade root 8a with bolts 10 relative to the blade mounting structure 5c of the hub 4 for the securing of the blade root to the blade mounting structure 5c.
- the positioned blade root 8a is then secured to the blade mounting structure 5c, e.g. by sticking the bolts 10 through corresponding bolt holes in the structure 5c and then mounting nuts on the bolts 10.
- the integrated device 100 is disconnected from the nacelle 3 and is then removed by means of a crane, e.g. the crane also having been used for lifting the rotor blade.
- the integrated device 100 is configured to have a stable position relative to the nacelle at least when disconnected from the load connector of the crane that lifted the nacelle.
- the stable position is required in view of the use of the blade positioning assembly 130 of the integrated device 100 in the subsequent installation of rotor blades.
- the stable position may be provided in many different manners, e.g. the integrated device 100 being rigidly connected to the nacelle, e.g. to the anchoring points (also known as hard point) of the nacelle 3.
- disconnectable rigid connectors 101 are provided between the device 100 and anchoring points of the nacelle.
- the rigid connectors may include, for example, tensile load resistant connector rods.
- the stable position of the device 100 may also be provided by stabilizing members that function to stabilize the integrated device relative to the nacelle, e.g. stabilizing members 102 being distinct from load transmitting connector members 101.
- stabilizing members 102 being distinct from load transmitting connector members 101.
- slings are use, as in the prior art, as load transmitting connector members 101 , with additional stabilizer members serving the stabilize the integrated device.
- one or more stabilizer members are operable between an inactive state and/or position and an active state and/or position.
- the integrated device 100 is provided with one or more operable stabilizers.
- stabilization of the integrated device 100 is obtained by one or more stabilizers engaging on the nacelle 3 only.
- the integrated device is configured to provide a stable position by engaging on the top end of the tower, e.g. in addition to engaging on the nacelle.
- a nacelle lifting tool is provided with one or more mobile stabilizer arms that engage on the top end portion of the tower.
- the blade positioning assembly 130 is present at a lateral side of the nacelle 3.
- Other locations of the assembly 130 are also possible, e.g. generally above the nacelle 3, e.g. extending over the nose end of the hub provided with the mounting structures 5a,b,c.
- the integrated device 100 may comprise a counterweight 105 opposite from the blade positioning assembly 130.
- the integrated device 100 has a front connection that connects to the nacelle 3 at the front nose end of the hub, e.g. an anchoring point at said location.
- the integrated device then has two more rearward connections to the nacelle.
- FIG 1 it is illustrated that two of the three blades 6, 7 have already been installed to the hub 4. It is noted that at this stage, the load connector 75 has already been disconnected from the integrated device 100, e.g. allowing for the same crane to be used for lifting of the rotor blade to be installed, or allowing for the vessel with the nacelle lifting capacity crane to move away from this specific wind turbine and for a second vessel with a rotor blade lifting crane to be stationed near the specific wind turbine.
- FIG. 3 illustrates, as is preferred, that the centre of gravity (COG) of the blade 8 is located within the area where the tool 20 holds the blade 8.
- COG centre of gravity
- Each rotor blade like blade 8, has a blade body with a blade root 8a, a blade tip, a length, and a rotor blade weight.
- the blade root 8a has an exterior and is configured to be secured in a mounting position of the blade root 8a to a blade mounting structure 5c of the hub of the offshore wind turbine by means of one or more fasteners, e.g. bolts 10 protruding from the root as is known in the art.
- the structure 5c has bolt holes into which the bolts are to be introduced, after which nuts are secured on the bolts.
- the crane is operated to lift the blade lifting tool 20 and thereby the rotor blade 8, e.g. from a deck and/or a storage rack of the vessel, or from a barge, whilst remaining in horizontal orientation to a height that is substantially level with a blade mounting structure 5c of the offshore wind turbine.
- the blade mounting structure 5c to which the blade 8 is installed is oriented horizontally, so in the 3 o’clock or 9 o’clock position.
- the integrated device 100 includes a blade positioning assembly 130, here more specifically an advanced blade motion synchronization and positioning assembly 130, which assembly 130 comprises: - a base frame 131 , that is integral with or fixated to a nacelle lifting frame structure 110 of the integrated device 100,
- blade coupler here a blade root coupler 132 that is configured to couple to the exterior of the blade root 8a
- a motion mechanism here a motion arm 140, between the base frame 131 and the blade coupler 132,
- controllable actuator assembly comprising one or more actuators 150, 151 , 152 associated with the motion mechanism and a controller 160, the assembly being configured to provided controlled motion of the motion mechanism.
- the tower top is subject to sea state and/or wind induced tower top motion in at least one direction in a horizontal plane, e.g. as discussed in detail in the documents referred to in the introduction.
- the illustrated motion arm 140 is an articulated motion arm having multiple interconnected arm segments including an inner arm segment 141 that is connected to the base frame 131 and an outer arm segment 142 that carries the blade coupler 132.
- the inner arm segment 141 is connected via a z-axis hinge 143 to the base frame 131.
- the base frame 131 has a vertically adjustable coupler member 131c, here guided on a vertical beam 131 d of the base frame, and an associated height adjustment actuator 131e allowing to set the height of the arm 140, and thereby the blade root coupler 132.
- the inner arm segment 141 is connected via vertical axis hinge 143 to this coupler member 131c.
- the arm segments 141 , 142 are connected to one another via a Z-axis hinge 144.
- the arm segments 141 , 142 are rigid arm segments having a fixed length, in this example.
- an actuator 150 For controlled (pivotal) motion of the arm segment 141 relative to the base frame an actuator 150 is provided.
- the blade root coupler 132 is carried on the outer arm segment 142 of the motion arm so as to be pivotal relative to the motion arm at least about a Z-axis swivel pivot 145, e.g. freely pivotal or provided with a damping arrangement, allowing for sway motion of rotor blade 8 suspended from the crane about the Z-axis swivel when coupled to the blade root coupler 132.
- the coupler 132 is movable in the horizontal plane, in two non-parallel directions, relative to the tower top.
- the blade root coupler 312 is an openable gripper that is configured to grip about the blade root 8a.
- the gripper has a gripper base 132b that is connected to the motion arm, via the Z-axis swivel 145, and the gripper has one or more pivotal gripper jaws 132c, e.g. one at each circumferential end of the gripper base 132b.
- the gripper base 132 not only is hinged about vertical swivel 145 but also about a horizontal swivel axis 146.
- the coupler 132 includes a subframe 132a between the arm, here segment 142 via swivel 145 and the base 132b.
- the subframe 132a swivels about the axis 145 and the base 132b swivels about the horizontal axis 146 relative to the subframe 312a.
- an actuator 146a controls the swivel motion of the base 132a about the horizontal (swivel) axis 146.
- an actuator 152 controls the swivel motion about the vertical axis 145.
- the gripper 132 can be opened so that the coupling of the blade root 8a comprises resting the blade root on the gripper base 132b, here also on one of the jaws 132c, and then closing the gripper by actuation of the one or more pivotal gripper jaws 132c.
- the installation of the blade 8 to the hub 4 comprises:
- figure 3 also shows the retracted position of the arm 140.
- the synchronization with the tower top motion is effected prior to displacing the blade root 8a of the coupled blade into the pre-mounting position by means of operation of the arm 140.
- the method comprises a verification step that is performed with the blade root 8a in the pre-mounting position pm and prior to initiating the mounting motion, here in axial direction of the blade 8 as defined by the extension of the bolts 10 and their introduction into bolt holes of the mounting structure 5c, which verification step comprises verification of the synchronization and/or alignment of the blade root with the mounting structure.
- Verification may entail the use of one or more position detectors, e.g. contactless, e.g. from nacelle to blade root, e.g. a camera, a radar, infrared distance measuring, and/or satellite based position sensing, etc.
- position detectors e.g. contactless, e.g. from nacelle to blade root, e.g. a camera, a radar, infrared distance measuring, and/or satellite based position sensing, etc.
- the crane used in lifting of the rotor blade 8 has a boom, and the crane is provided with a load connector active position control system that is configured and operated to actively control the position of the load connector in at least one horizontal direction, preferably two non-parallel horizontal directions, relative to the boom, wherein the method comprises operating the load connector active position control system in synchronicity with the blade coupler 132, e.g. the blade root coupler when coupled to the exterior of the blade root 8a.
- the blade lifting tool 20 comprises a frame 21 that is attached to the load connector of the crane, wherein the blade lifting tool comprises a blade holding assembly 22 that is mobile mounted relative to the frame, e.g. at least mobile relative to the frame in one horizontal direction, e.g. along a length of the rotor blade 8 held by the blade holding assembly, preferably two non-parallel horizontal direction, and wherein the blade lifting tool comprises a controllable motion actuator device 23 between frame and blade holding assembly.
- the method comprises operating the controllable motion actuator device 23 to move the blade holding assembly 22 relative to the frame 21 in synchronicity with the blade coupler 132 when coupled to the blade 8 as discussed.
- the method comprises the use of a control unit for control of the motion arm 140, e.g. said control unit being operated by a human operator present in the nacelle 3.
- Figure 2 illustrates that after completion of fastening of the rotor blade 8 to the hub 4 of the offshore wind turbine, the blade coupler 132, e.g. blade root coupler, is released from the blade root 8a and the motion mechanism, here arm 140, is then operated to move into a retracted configuration wherein a clearance is provided for the installed rotor blade during a rotation of the hub that is done so as to bring another one of the mounting structures into position for the installation of another rotor blade to the offshore wind turbine.
- the blade coupler 132 e.g. blade root coupler
- the method may comprise an emergency distancing routine, e.g. programmed into controller 160, wherein the motion mechanism, here arm 140, is operated to cause a rapid distancing of blade root 8a away from nacelle 3, e.g. in case of a power and/or control signal anomaly and/or in case of an anomaly in wind condition and/or sea state.
- the motion mechanism here arm 140
- the motion mechanism here arm 140
- the motion mechanism here arm 140
- the wind direction may be the same as the wave direction, yet they may also differ and not-coincide, e.g. waves still being in a direction of earlier strong wind that has reduced in force and changed direction.
- the illustrated assembly 130 allows to effectively deal with such situations as well.
- the periodic tower top motion may have a significant amplitude, e.g. more than 0.5 meter, even more than 1 meter.
- the use of the arm 140 is highly effective and at least enlarges the operational window for the blade installation over prior art approaches.
- collision of the bolts 10 may cause damage to the bolts and/or to structure of blade root, e.g. of the composite material, e.g. in the form of internal cracks.
- the bolts 10 may be T-bolts as is known in the art. Other fasteners may be used as well.
- the advancing of the blade 8 by means of the motion mechanism, here the arm 140, in the installation process may be accompanied by a corresponding operation of the crane, e.g. so that the point of suspension from the crane follows the motion governed by the arm.
- the crane follows this motion primarily by slewing of the boom about a vertical slew axis, and/or by operation of a load connector position control system for x-y (possibly also-z) control of position of load connector that carries the blade lifting tool 20.
- the vessel on which the crane for lifting the rotor blades is mounted could be in a floating condition, but could also be a jack-up vessel so that the crane is not subject to hull motion.
- the crane may also be stabilized, e.g. mounted on a motion stabilized platform onboard a floating vessel.
- an optical (e.g. laser based) guidance system is provided that is used for control of the path of the blade coupler relative to mounting structure to which the blade is to be installed.
- the blade root coupler 132 frictionally couples to the exterior of the blade root, e.g. as the root is clamped by the gripper, e.g. by friction pads, e.g. pneumatic friction pads. Coupling to the blade, e.g. blade root, may also involve the use of vacuum, magnetic forces, etc.
- a load connector position control system of the crane is operated to bring and maintain the blade longitudinal axis in alignment with mounting axis, so with the direction of the bolts 10 when present, preferably when in stationary receiving position, and/or when moving to pre-mounting position, or when in mounting position.
- an angle sensing assembly is present to detect angle between the mounting axis and the longitudinal axis of blade, e.g. between blade root coupler and motion arm, e.g. the outer segment of the arm, in horizontal plane.
- blade root coupler 132 there may be blade root engaging members that are resiliently mounted and/or associated with positioning devices, e.g. allowing to adjust to coupler 132 to transverse dimensions of the blade, e.g. to the diameter of the blade root.
- the blade root coupler 132 is opened and disengaged from blade root 8a, involving moving the motion mechanism, here arm 140, to the retracted position thereof so that hub can be rotated to bring a further mounting structure in the horizontal position for installation of the next blade to the hub.
- the motion mechanism 140 may comprise a parallelogram mechanism that acts in a vertical plane and of a motion stage supported by the parallelogram mechanism, for example an X-Y-0 motion stage.
- the parallelogram or four-bar-linkage mechanism is connected to the base frame via a vertical axis hinge and can be rotated or swivelled about this hinge by an actuator.
- the motion stage e.g. an X-Y-0 stage, is mounted on the end of the parallelogram mechanism.
- the blade coupler 132 is mounted on the motion stage.
- the motion mechanism can also function without the rotational component of the X-Y-0 stage and therefore be outfitted with an X-Y stage instead.
- a sensing assembly for sensing spatial motion of blade root 8a e.g. inertia-based sensing assembly, e.g. only in horizontal plane, e.g. two nonparallel directions, e.g. length and transverse to length, rotation about Z-axis of load connector, rotation about Y-axis through load connector, all oscillations.
- a mass damper may be provided as part of the tower 2 (e.g. permanently installed or temporary installed).
- a mass damper may also be provided as part of the integrated device 100 as to (temporarily) reduce tower motion during blade installation.
- a gyroscopic stabilizer is provided in the device 100.
- a gyroscopic stabilizer is present in the blade lifting tool 20 and/or load connector of the crane, e.g. on a spreader from which the tool 20 is suspended.
- the blade coupler 132 comprises one or more slings, e.g. with one or more sling adjuster devices, configured to each be engaged with a circumferential portion of the blade, e.g. of the blade root 8a, e.g. the blade root being gradually tightened between multiple slings to couple the blade root.
- communication means are provided to cause communication between controller 160 of the mechanism 140 and the crane, e.g. the crane controller and/or the crane driver, and/or the blade lifting tool involved in lifting of the rotor blade.
- the controller 160 communicates, e.g. in two directions, with a load connector position control system for multi-axis, e.g. x-y-z axis, control of the position of the load connector of the crane lifting the rotor blade.
- the blade positioning assembly 130 is provided with one or more force sensors configured to measure force exerted by the rotor blade on the assembly 130 or components thereof.
- force feedback is used for the control of operation of the crane and/or the blade lifting tool involved in lifting of the rotor blade.
- the force feedback can be automatically processed, or signalled to a crane drive, e.g. providing a warning signal when one or more forces become too high.
- the blade positioning assembly 130 may be provided with one or more sensors configured to provide signals, e.g. feedback signals, that are used for the control of operation of the crane and/or the blade lifting tool involved in lifting of the rotor blade.
- blade root coupler there is a gimbal mounting of blade root coupler so as to allow for (limited) rotation of blade root, e.g. to avoid overloading the motion mechanism 140 due to blade motion.
- one or more taglines of a tagline system of the crane may be used to orient and/stabilize lifting tool 20 and/or the blade 8, primarily in a horizontal plane.
- a so-called High Wind Boom Lock or other arrangement may be provided to stabilize the load connector relative to crane boom of the crane lifting the rotor blade.
- the integrated device 100 is provided with an integrated power supply, e.g. a battery, hydraulic power units(s), etc.
- an integrated power supply e.g. a battery, hydraulic power units(s), etc.
- the device 100 is provided with a fire extinguishing system.
- the device 100 is provided with an auxiliary crane, e.g. to allow lifting of (hand) tools that are to be used by personnel working on and in the nacelle during the installation process.
- Fig. 4 shows schematically another embodiment of the inventive integrated device 100’ as well as a nacelle 3’.
- the device 100’ is composed of a nacelle lifting structure 110’ and a blade positioning assembly 130’.
- the figure 4 illustrates that the integrated device 100’ is configured to be connected to load connector 75 as discussed in W02020/055249 to which reference is made.
- the device 100’ more in particular the nacelle lifting structure 110’ thereof, has a shank 111 protruding upward and, at an upper end thereof, a shoulder 112.
- the one shank 111 of the device 100’ is configured to support the weight of the device 100’ as well as of the nacelle 3’ when being lifted by means of one or two high capacity cranes.
- the load connector 75 comprises multiple cable sheaves through which the one or more winch driven cables are run so that the load connector 75 is suspended by the one or more winch driven cables in a multiple fall arrangement.
- the load connector 75 further comprises a female, open-centered body defining a shank receiving passage with a central vertical axis allowing introduction of the shoulder 112 of the device 100’ into the passage from below.
- Mobile tool retainers are provided, which are adapted to releasably engage under the shoulder 112 of the shank 111 so as to suspend the device 100’ underneath the load connector 75.
- a bearing supports the female, open-centered body in the load connector 75 so as to allow for swivelling of the female, open-centered body with the tool retainers, and thereby the device 100’ as well as the nacelle 3’ held thereby, about a vertical axis.
- a rotational drive is provided that is configured to selectively drive said swivelling of the female, open-centered body and of the mobile tool retainers mounted thereon, and thereby of the device 100’ as well as nacelle 3’, about a central vertical axis.
- the nacelle 3’ is depicted in figure 4 with two opened hatches 3a that provide access to anchoring points 3b (see figure 6) located within the external housing of the nacelle 3’.
- the hub 4’ is shown without the blade mounting structures for reasons of clarity.
- the nacelle lifting structure 110’ is depicted with two rigid connector members 10T, here embodied as rods 10T that are configured to be secured to the two anchoring points 3b.
- the nacelle lifting structure 110’ is configured to extend over the nose end of the hub 4’ provided with the blade mounting structures.
- a bridge portion 104 5 of the structure 110’ extends over the nose end with the blade mounting structures.
- the structure 110’ has a front connection 101” that connects to the nacelle 3’ at the front nose end of the hub 4’, e.g. an anchoring point 3c at said location.
- the integrated device 100’ has two more rearwardly located connections 10T to the nacelle 3’.
- the hub 4’ is rotatable whilst the device 100’ is in this position on the nacelle 3’.
- the front connection 101” that connects the nacelle lifting structure 110’ to the nacelle 3’ at the front nose end of the hub 4’ is primarily envisaged and/or configured for the purpose of stabilizing the structure 110’ relative to the nacelle 3’ and not, or merely in a limited manner, as a load transmitting connection for lifting of the nacelle 3’.
- a load connector is temporarily arranged to engage on an anchoring point within the nose of the hub 4’ via a hatch 3d that is located between adjacent blade mounting structures, e.g. as shown in figure 4.
- this load connector associated with the nose of the hub 4’ is embodied as a sling, cable, chain or the like, which allows for easy disconnection, removal, and/or retraction.
- Figure 5 shows that the integrated device 100’ has been mounted on the nacelle 3’.
- the outer housing of the nacelle 3’ has been removed to better illustrate the connection between the connector members 10T of the integrated device 100’ and the anchoring points 3b of the nacelle 3’.
- the integrated device 100’ in particular the nacelle lifting structure 110’, is now held in a stable position on the nacelle 3’. This stability allows for the proper operation of the blade positioning assembly 130’ of the device 100’.
- the nacelle 3’ is lifted to the top of a wind turbine tower 2 by means of one or two cranes.
- the figure shows that the nacelle 3’ has been lifted to the top of the tower 2 and has then been secured onto the top of the tower.
- the figure 7 also illustrates that the integrated device 100’ remains in stable position on the nacelle 3’ after having been disconnected from the crane(s). This allows for the use of the blade positioning assembly 130’ in the installation of the three rotor blades 6,7,8 to the hub 4’ of the nacelle 3’.
- the blade positioning assembly 130’ may have various designs and functionalities.
- the assembly 130’ comprises a motion mechanism 140’ and an associated actuator assembly with controller.
- the depicted blade positioning assembly 130’ is configured primarily to center or centralize the blade root of a rotor blade relative to the respective blade mounting structure of the hub.
- the blade coupler 132’ is primarily movable in a plane that extends perpendicular to the axis of the rotor blade, here in orthogonal directions, which allows for alignment of the blade root in this perpendicular plane with the blade mounting structure.
- the rotor blades 6, 7, and 8 are to be oriented at an angle of 30 degrees relative to horizontal with the blade root downward for the blade installation to the hub.
- the blade lifting tool used in lifting of the rotor blade allows for lifting of the blade in horizontal orientation and then tilting of the blade to assume the inclined orientation that allows for the mounting to the hub.
- the assembly 130’ could also have a controlled motion in the direction of the axis of the rotor blade, e.g. to assist in controlled displacement of the blade root towards the blade mounting structure, e.g. in the process of insertion of bolts 10 into their respective bolt holes on the blade mounting structure.
- displacing the blade root towards the hub may, alternative to the use of the assembly 130’ or in combination therewith, also involve the use of a winch(es) and pull-in cable(s), the operation of the crane lifting the rotor blade, and/or operation of an appropriately designed blade lifting tool.
- the blade positioning assembly 130’ can be configured to provide damping for the rotor blade that is to be connected to the blade mounting structure.
- the assembly 130’ comprises resilient dampers or fenders for the blade, e.g. the blade root.
- damping is achieved in one or more directions, e.g. in longitudinal direction of the rotor blade.
- Damping of blade motion by means of the assembly 130’ can be achieved by means of the design of the motion mechanism and/or the operation/design of the related actuator assembly.
- a hydraulic actuator assembly is present, wherein one or more hydraulic throttle components serve to obtain damping of blade motion once engaged by the blade coupler 132’.
- Damping of blade motion by the assembly 130’ may be caused during a specific period, e.g. during an engagement period between the blade coupler and the rotor blade, with damping functionality then being terminated, e.g. to achieve position control of the coupled rotor blade by means of the blade positioning assembly 132’, e.g. in view of controlled motion of the blade root towards the blade mounting structure.
- FIG 9 it is illustrated that the hub 4’ fitted with the first rotor blade 6 is rotated after the rotor blade 6 has been fastened to the respective blade mounting structure of the hub.
- Rotation of the hub may be effected in many different manners, e.g. using a specific drive of the nacelle 3’ or, possibly, a drive 106 present on the integrated device 100’, e.g. engaging the nose end of the hub.
- the rotation is done by means of the crane that lifts the rotor blades.
- Figure 10 illustrates the operation of the blade positioning assembly 130’ when installing the second rotor blade 7.
- Figure 11 illustrates the rotation of the hub 4’ after the second rotor blade 7 has been fastened to the respective blade mounting structure of the hub.
- Figure 12 illustrates the operation of the blade positioning assembly when installing the third rotor blade 8.
- FIG. 13 illustrates the removal of the integrated device 100’ from the nacelle 3’ once the installation of the rotor blades has been completed.
- a load connector of the crane involved in the removal may be provided with the components discussed above to allow coupling with the shank 111 so that the device 100’ can be lifted. If desired, other connection arrangements between the crane and the device 100’ when being removed are possible as well.
- the figure 14 illustrates the top section of the wind turbine once the installation thereof has been completed and the wind turbine is ready to generate electricity.
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Abstract
Description
Claims
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| NL2033513A NL2033513B1 (en) | 2022-11-11 | 2022-11-11 | Installation of a nacelle and rotor blades of a wind turbine |
| PCT/EP2023/081244 WO2024100172A1 (en) | 2022-11-11 | 2023-11-09 | Installation of a nacelle and rotor blades of a wind turbine |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| EP4616067A1 true EP4616067A1 (en) | 2025-09-17 |
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Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| EP23800874.2A Pending EP4616067A1 (en) | 2022-11-11 | 2023-11-09 | Installation of a nacelle and rotor blades of a wind turbine |
Country Status (4)
| Country | Link |
|---|---|
| EP (1) | EP4616067A1 (en) |
| CN (1) | CN120530262A (en) |
| NL (1) | NL2033513B1 (en) |
| WO (1) | WO2024100172A1 (en) |
Families Citing this family (1)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CN118705124B (en) * | 2024-06-24 | 2025-04-22 | 巨杰科技发展集团股份有限公司 | Wind-powered electricity generation blade installs auxiliary device |
Family Cites Families (12)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| EP1843964B1 (en) | 2005-01-19 | 2011-11-09 | A2Sea A/S | Lifting device for a wind turbine generator |
| DE102007012848B4 (en) * | 2007-03-17 | 2013-09-19 | Aerodyn Engineering Gmbh | Method for repairing an offshore wind turbine and watercraft for carrying out the method |
| DK2538073T3 (en) | 2011-06-24 | 2016-07-25 | Vestas Wind Sys As | An improvement of a horizontal wing installation of windmills |
| CN104781181B (en) * | 2012-08-30 | 2019-03-19 | 疾风有限公司 | Apparatus and method for assembling structures |
| CA2892651A1 (en) * | 2012-11-27 | 2014-06-05 | Marmen Inc. | Lifting system for wind turbine towers and method for erecting a wind turbine tower |
| DK2918969T3 (en) | 2014-03-12 | 2019-01-28 | Siemens Ag | Device and method for aligning two components of a wind turbine |
| NL2017937B1 (en) | 2016-12-06 | 2018-06-19 | Itrec Bv | A wave-induced motion compensating crane for use on an offshore vessel, vessel and load transferring method |
| CN110088459A (en) * | 2016-12-23 | 2019-08-02 | 维斯塔斯风力系统有限公司 | It is a kind of for handling the method and component of wind turbine blade |
| US11066279B2 (en) | 2017-04-24 | 2021-07-20 | Itrec B.V. | Motion compensating crane for use on an offshore vessel |
| NL2020389B1 (en) | 2018-02-06 | 2019-08-14 | Itrec Bv | A crane |
| WO2020055249A1 (en) | 2018-09-12 | 2020-03-19 | Itrec B.V. | System of a crane and an exchangeable tool |
| WO2021219185A1 (en) * | 2020-04-28 | 2021-11-04 | Vestas Offshore Wind A/S | A wind turbine blade installation method |
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2022
- 2022-11-11 NL NL2033513A patent/NL2033513B1/en active
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2023
- 2023-11-09 CN CN202380090586.2A patent/CN120530262A/en active Pending
- 2023-11-09 WO PCT/EP2023/081244 patent/WO2024100172A1/en not_active Ceased
- 2023-11-09 EP EP23800874.2A patent/EP4616067A1/en active Pending
Also Published As
| Publication number | Publication date |
|---|---|
| WO2024100172A1 (en) | 2024-05-16 |
| CN120530262A (en) | 2025-08-22 |
| NL2033513B1 (en) | 2024-05-28 |
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