WO2014073956A1 - Floatable transportation and installation structure for transportation and installation of a floating wind turbine, a floating wind turbine and method for transportation and installation of the same - Google Patents

Floatable transportation and installation structure for transportation and installation of a floating wind turbine, a floating wind turbine and method for transportation and installation of the same Download PDF

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Publication number
WO2014073956A1
WO2014073956A1 PCT/NL2013/050790 NL2013050790W WO2014073956A1 WO 2014073956 A1 WO2014073956 A1 WO 2014073956A1 NL 2013050790 W NL2013050790 W NL 2013050790W WO 2014073956 A1 WO2014073956 A1 WO 2014073956A1
Authority
WO
WIPO (PCT)
Prior art keywords
wind turbine
transportation
installation
floating
floating wind
Prior art date
Application number
PCT/NL2013/050790
Other languages
French (fr)
Inventor
Eyal Moshe TAUB
Original Assignee
Mecal Wind Turbine Design B.V.
Priority date (The priority date 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 date listed.)
Filing date
Publication date
Application filed by Mecal Wind Turbine Design B.V. filed Critical Mecal Wind Turbine Design B.V.
Priority to DK13801867.6T priority Critical patent/DK2917097T3/en
Priority to EP13801867.6A priority patent/EP2917097B1/en
Priority to US14/440,624 priority patent/US9523355B2/en
Priority to KR1020157015103A priority patent/KR101753499B1/en
Priority to CN201380069507.6A priority patent/CN105102317B/en
Priority to ES13801867.6T priority patent/ES2620732T3/en
Priority to JP2015540631A priority patent/JP6039097B2/en
Publication of WO2014073956A1 publication Critical patent/WO2014073956A1/en

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Classifications

    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F03MACHINES OR ENGINES FOR LIQUIDS; WIND, SPRING, OR WEIGHT MOTORS; PRODUCING MECHANICAL POWER OR A REACTIVE PROPULSIVE THRUST, NOT OTHERWISE PROVIDED FOR
    • F03DWIND MOTORS
    • F03D13/00Assembly, mounting or commissioning of wind motors; Arrangements specially adapted for transporting wind motor components
    • F03D13/20Arrangements for mounting or supporting wind motors; Masts or towers for wind motors
    • F03D13/25Arrangements for mounting or supporting wind motors; Masts or towers for wind motors specially adapted for offshore installation
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B63SHIPS OR OTHER WATERBORNE VESSELS; RELATED EQUIPMENT
    • B63BSHIPS OR OTHER WATERBORNE VESSELS; EQUIPMENT FOR SHIPPING 
    • B63B1/00Hydrodynamic or hydrostatic features of hulls or of hydrofoils
    • B63B1/02Hydrodynamic or hydrostatic features of hulls or of hydrofoils deriving lift mainly from water displacement
    • B63B1/10Hydrodynamic or hydrostatic features of hulls or of hydrofoils deriving lift mainly from water displacement with multiple hulls
    • B63B1/107Semi-submersibles; Small waterline area multiple hull vessels and the like, e.g. SWATH
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B63SHIPS OR OTHER WATERBORNE VESSELS; RELATED EQUIPMENT
    • B63BSHIPS OR OTHER WATERBORNE VESSELS; EQUIPMENT FOR SHIPPING 
    • B63B21/00Tying-up; Shifting, towing, or pushing equipment; Anchoring
    • B63B21/50Anchoring arrangements or methods for special vessels, e.g. for floating drilling platforms or dredgers
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B63SHIPS OR OTHER WATERBORNE VESSELS; RELATED EQUIPMENT
    • B63BSHIPS OR OTHER WATERBORNE VESSELS; EQUIPMENT FOR SHIPPING 
    • B63B21/00Tying-up; Shifting, towing, or pushing equipment; Anchoring
    • B63B21/50Anchoring arrangements or methods for special vessels, e.g. for floating drilling platforms or dredgers
    • B63B21/502Anchoring arrangements or methods for special vessels, e.g. for floating drilling platforms or dredgers by means of tension legs
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B63SHIPS OR OTHER WATERBORNE VESSELS; RELATED EQUIPMENT
    • B63BSHIPS OR OTHER WATERBORNE VESSELS; EQUIPMENT FOR SHIPPING 
    • B63B35/00Vessels or similar floating structures specially adapted for specific purposes and not otherwise provided for
    • B63B35/003Vessels or similar floating structures specially adapted for specific purposes and not otherwise provided for for transporting very large loads, e.g. offshore structure modules
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B63SHIPS OR OTHER WATERBORNE VESSELS; RELATED EQUIPMENT
    • B63BSHIPS OR OTHER WATERBORNE VESSELS; EQUIPMENT FOR SHIPPING 
    • B63B35/00Vessels or similar floating structures specially adapted for specific purposes and not otherwise provided for
    • B63B35/44Floating buildings, stores, drilling platforms, or workshops, e.g. carrying water-oil separating devices
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B63SHIPS OR OTHER WATERBORNE VESSELS; RELATED EQUIPMENT
    • B63BSHIPS OR OTHER WATERBORNE VESSELS; EQUIPMENT FOR SHIPPING 
    • B63B77/00Transporting or installing offshore structures on site using buoyancy forces, e.g. using semi-submersible barges, ballasting the structure or transporting of oil-and-gas platforms
    • B63B77/10Transporting or installing offshore structures on site using buoyancy forces, e.g. using semi-submersible barges, ballasting the structure or transporting of oil-and-gas platforms specially adapted for electric power plants, e.g. wind turbines or tidal turbine generators
    • EFIXED CONSTRUCTIONS
    • E02HYDRAULIC ENGINEERING; FOUNDATIONS; SOIL SHIFTING
    • E02BHYDRAULIC ENGINEERING
    • E02B17/00Artificial islands mounted on piles or like supports, e.g. platforms on raisable legs or offshore constructions; Construction methods therefor
    • E02B17/02Artificial islands mounted on piles or like supports, e.g. platforms on raisable legs or offshore constructions; Construction methods therefor placed by lowering the supporting construction to the bottom, e.g. with subsequent fixing thereto
    • EFIXED CONSTRUCTIONS
    • E02HYDRAULIC ENGINEERING; FOUNDATIONS; SOIL SHIFTING
    • E02BHYDRAULIC ENGINEERING
    • E02B17/00Artificial islands mounted on piles or like supports, e.g. platforms on raisable legs or offshore constructions; Construction methods therefor
    • E02B17/04Equipment specially adapted for raising, lowering, or immobilising the working platform relative to the supporting construction
    • EFIXED CONSTRUCTIONS
    • E02HYDRAULIC ENGINEERING; FOUNDATIONS; SOIL SHIFTING
    • E02DFOUNDATIONS; EXCAVATIONS; EMBANKMENTS; UNDERGROUND OR UNDERWATER STRUCTURES
    • E02D27/00Foundations as substructures
    • E02D27/32Foundations for special purposes
    • E02D27/50Anchored foundations
    • EFIXED CONSTRUCTIONS
    • E02HYDRAULIC ENGINEERING; FOUNDATIONS; SOIL SHIFTING
    • E02DFOUNDATIONS; EXCAVATIONS; EMBANKMENTS; UNDERGROUND OR UNDERWATER STRUCTURES
    • E02D27/00Foundations as substructures
    • E02D27/32Foundations for special purposes
    • E02D27/52Submerged foundations, i.e. submerged in open water
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F03MACHINES OR ENGINES FOR LIQUIDS; WIND, SPRING, OR WEIGHT MOTORS; PRODUCING MECHANICAL POWER OR A REACTIVE PROPULSIVE THRUST, NOT OTHERWISE PROVIDED FOR
    • F03DWIND MOTORS
    • F03D13/00Assembly, mounting or commissioning of wind motors; Arrangements specially adapted for transporting wind motor components
    • F03D13/20Arrangements for mounting or supporting wind motors; Masts or towers for wind motors
    • F03D13/22Foundations specially adapted for wind motors
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B63SHIPS OR OTHER WATERBORNE VESSELS; RELATED EQUIPMENT
    • B63BSHIPS OR OTHER WATERBORNE VESSELS; EQUIPMENT FOR SHIPPING 
    • B63B1/00Hydrodynamic or hydrostatic features of hulls or of hydrofoils
    • B63B1/02Hydrodynamic or hydrostatic features of hulls or of hydrofoils deriving lift mainly from water displacement
    • B63B1/10Hydrodynamic or hydrostatic features of hulls or of hydrofoils deriving lift mainly from water displacement with multiple hulls
    • B63B1/12Hydrodynamic or hydrostatic features of hulls or of hydrofoils deriving lift mainly from water displacement with multiple hulls the hulls being interconnected rigidly
    • B63B2001/128Hydrodynamic or hydrostatic features of hulls or of hydrofoils deriving lift mainly from water displacement with multiple hulls the hulls being interconnected rigidly comprising underwater connectors between the hulls
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B63SHIPS OR OTHER WATERBORNE VESSELS; RELATED EQUIPMENT
    • B63BSHIPS OR OTHER WATERBORNE VESSELS; EQUIPMENT FOR SHIPPING 
    • B63B21/00Tying-up; Shifting, towing, or pushing equipment; Anchoring
    • B63B21/50Anchoring arrangements or methods for special vessels, e.g. for floating drilling platforms or dredgers
    • B63B2021/505Methods for installation or mooring of floating offshore platforms on site
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B63SHIPS OR OTHER WATERBORNE VESSELS; RELATED EQUIPMENT
    • B63BSHIPS OR OTHER WATERBORNE VESSELS; EQUIPMENT FOR SHIPPING 
    • B63B35/00Vessels or similar floating structures specially adapted for specific purposes and not otherwise provided for
    • B63B35/44Floating buildings, stores, drilling platforms, or workshops, e.g. carrying water-oil separating devices
    • B63B2035/4433Floating structures carrying electric power plants
    • B63B2035/446Floating structures carrying electric power plants for converting wind energy into electric energy
    • EFIXED CONSTRUCTIONS
    • E02HYDRAULIC ENGINEERING; FOUNDATIONS; SOIL SHIFTING
    • E02BHYDRAULIC ENGINEERING
    • E02B17/00Artificial islands mounted on piles or like supports, e.g. platforms on raisable legs or offshore constructions; Construction methods therefor
    • E02B2017/0039Methods for placing the offshore structure
    • EFIXED CONSTRUCTIONS
    • E02HYDRAULIC ENGINEERING; FOUNDATIONS; SOIL SHIFTING
    • E02BHYDRAULIC ENGINEERING
    • E02B17/00Artificial islands mounted on piles or like supports, e.g. platforms on raisable legs or offshore constructions; Construction methods therefor
    • E02B2017/0039Methods for placing the offshore structure
    • E02B2017/0047Methods for placing the offshore structure using a barge
    • EFIXED CONSTRUCTIONS
    • E02HYDRAULIC ENGINEERING; FOUNDATIONS; SOIL SHIFTING
    • E02BHYDRAULIC ENGINEERING
    • E02B17/00Artificial islands mounted on piles or like supports, e.g. platforms on raisable legs or offshore constructions; Construction methods therefor
    • E02B2017/0091Offshore structures for wind turbines
    • EFIXED CONSTRUCTIONS
    • E02HYDRAULIC ENGINEERING; FOUNDATIONS; SOIL SHIFTING
    • E02BHYDRAULIC ENGINEERING
    • E02B17/00Artificial islands mounted on piles or like supports, e.g. platforms on raisable legs or offshore constructions; Construction methods therefor
    • E02B2017/0095Connections of subsea risers, piping or wiring with the offshore structure
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F05INDEXING SCHEMES RELATING TO ENGINES OR PUMPS IN VARIOUS SUBCLASSES OF CLASSES F01-F04
    • F05BINDEXING SCHEME RELATING TO WIND, SPRING, WEIGHT, INERTIA OR LIKE MOTORS, TO MACHINES OR ENGINES FOR LIQUIDS COVERED BY SUBCLASSES F03B, F03D AND F03G
    • F05B2240/00Components
    • F05B2240/90Mounting on supporting structures or systems
    • F05B2240/93Mounting on supporting structures or systems on a structure floating on a liquid surface
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F05INDEXING SCHEMES RELATING TO ENGINES OR PUMPS IN VARIOUS SUBCLASSES OF CLASSES F01-F04
    • F05BINDEXING SCHEME RELATING TO WIND, SPRING, WEIGHT, INERTIA OR LIKE MOTORS, TO MACHINES OR ENGINES FOR LIQUIDS COVERED BY SUBCLASSES F03B, F03D AND F03G
    • F05B2240/00Components
    • F05B2240/90Mounting on supporting structures or systems
    • F05B2240/95Mounting on supporting structures or systems offshore
    • YGENERAL 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
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02BCLIMATE CHANGE MITIGATION TECHNOLOGIES RELATED TO BUILDINGS, e.g. HOUSING, HOUSE APPLIANCES OR RELATED END-USER APPLICATIONS
    • Y02B10/00Integration of renewable energy sources in buildings
    • Y02B10/30Wind power
    • YGENERAL 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
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02EREDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
    • Y02E10/00Energy generation through renewable energy sources
    • Y02E10/70Wind energy
    • Y02E10/72Wind turbines with rotation axis in wind direction
    • YGENERAL 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
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02EREDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
    • Y02E10/00Energy generation through renewable energy sources
    • Y02E10/70Wind energy
    • Y02E10/727Offshore wind turbines

Definitions

  • the present invention relates to a floatable transportation and installation structure for transportation and installation of an essentially fully assembled and erected floating wind turbine.
  • the invention relates to such a wind turbine securable to such a floatable transportation and installation structure.
  • the invention relates to a method for transportation and installation of an essentially fully assembled and erected floating wind turbine.
  • the present invention relates to a transportation and installatio method and structure for an offshore wind turbine and in particular to floating offshore wind turbines with tension leg platform (TLP) type support structures.
  • TLP tension leg platform
  • the main floating wind turbine support structures can be categorized into three groups: spar ' buby, semi-submersible and TLP,
  • a semi-submersible is a partially submerged structure that is stabilized by the buoyancy of watertight containers that are ully submerged in the water.
  • a spar buo structure for a floating turbine is stabilized by ballasting.
  • the spar relies on a ballasted deep-draft hull to stabilize the floating wind turbine. This requires deep water depths of over 100m.
  • the structures are also very heavy and costly with the possibility of reduction in ' weight being highly unlikely. Due to the length of th spar structure, onshore assembly of the full turbine and support structure is probabl not possible which increases the cost further due to the offshore cranes, lifting devices or specialist transport vessels required.
  • TLP structure With regard to a TLP structure, vertical motions are eliminated by the tension-leg mooring system in which the tendons are anchored to the sea bed. This stability provided by the tendons, allows the platform size to be significantly reduced audit is therefore lighter and less expensive. In addition the structure can be fully submerged in order to reduce wave loads,
  • the most versatile and cost-effective of the support structures mentioned before is the TLP structure.
  • the complete TLP system is such that the support structure is smaller and much less expensive than a semi- subroergible and a spar buoy.
  • the biggest problem involved is in th e cost and complexity of transportation and installation of the TLP structure wind turbine due to its instable nature outside of its installed form which means that without anchoring the floating wind turbine to the sea bed, wind and. water forces have a drastic impact on the buoyancy stability of the TLP based floating wind turbine.
  • the first solution is to transport and install the whole TLP structure, namely the support structure, the tendons, the anchors, the wind turbine and the tower, all separately.
  • the cost and amount of time required for this solution are considerably large.
  • the second solution is to make the TLP support structure larger and more complex in order for it to be able to support a fully assembled wind turbine during transportation by towing it. to the installation site.
  • transportation structures made up of several separate units that do not form a single, self-supporting and independent structure.
  • transportation and installation structure comprises securing means for detachably and temporarily securing the floatable transportation and installation structure to the erected, floating wind turbine in such a way that the floating wind turbine is stabilized and can be moved by moving the transportation and installation structure.
  • a floating wind turbine comprising counter securing means connectable to securing means of a floatable transportation and installation structure as defined within this specification,
  • transportatio and installation of an essentially folly assembled and erected floatin wind turbine comprising: Securing the essentially fully assembled and erected floating wind ⁇ turbine to a floatable transportation and installation structure in such a way that the erected floating wind turbine is stabilized and can be moved by moving the transportation and installation structure; transporting the floating wind turbine to a designated position by moving the floatable transportation and installation structure to said designated position; seeming the floating wind turbine to fixation m eans provided at the designated position; detaching the transportation and installation structure from the now fixed floating wind turbine and separating it from the wind turbine.
  • a key aspect of the invention is the use of a preferably reusable floatable transportation and installation structure which can be attached to a floating wind turbine in such a way that the wind turbine can be essentially fully assembled and, which is even more relevant, that the wind turbine can be moved in an erected state.
  • the wind turbine can be assembled onshore by use of provided onshore cranes an d additional necessary equipment, wherein no offshore equipment for liftin or moving the wind turbine is necessary except for tugboats or similar standard moving equipment,
  • essentially fully assembled therefore means that the floating wind turbine is assembled in such a way that offshore installation can be done without use of any expensive offshore equipment for lifting and moving except for tugboats or similar standard moving and lifting equipment.
  • the floatable transportation and installation structure is secured to the erected floating wind turbine in a manner that it can be moved along a horizontal axis to a designated position offshore, where for example the floating wind turbine has to be installed.
  • the floatable transportation and .installation structure also allows vertical xaoyement of the .floating wind turbine, which is explained further along in the description. This vertical movement helps, for example, when attaching the 'floating wind turbine and its floating support structure to the tendons of a TLP support structure.
  • Temporarily connecting the floatable transportation and installation structure to the floatin wind turbine allows reusability of the transportation and installation structure reducing installation costs tremendously.
  • any securing means known from the state of the art may be used, . however the present invention preferably utilizes temporar connecting or securing means which, are easily disconnected or detached when required. Therefore the invention presumes to exclude connecting means such as welding o similar securing means which are known in the state of the art and for which detaching the wind turbine from the floatable transportation and installation structure, would be significantly more complex.
  • the structure preferably provides a reusable, towable, semi-submersible transportation and installation structure which comprises a pre-asserabled single unit that is easily attached to and detached from the floating wind turbine and/or TLP support structure or similar parts.
  • the floatable transportation and installation stracture is a passive structure comprising no active traction means, and especiall no motor, however, preferably comprising' connection means for being connected to at leas one active traction means and especially a tugboat,
  • the use of a tugboat is the ⁇ most
  • the floatable transportation and installation structure comprises ballastable and de-ballastable means configured in such a way that the floating depth of the floatable transportation and installation structure is adaptable by ballasting and. de-ballasting the respective means, and especially by taking in sea water and ejecting sea water respectively.
  • the ballasting or de-ballasting can be carried out in a situation where the floatable transportation and installation structure is secured to the floating wind turbine a d or in a situation where it is separated From the floating wind turbine.
  • the transportation and installation structure can preferably be lowered b ballasting resulting in the lowering of the floating wind turbine - and its support structure together with the floatable transportation and installation frame.
  • the floatable transportatio and installation structure is de-ballastable resulting in the lifting of the floatable
  • the floatable transportation and installation structure is ballastahle and de-ballastable to submerge and especially preferably fully submerge the floating support structure of the wind turbine.
  • These h h astable and de-ball astable floating means could also be useful when towing the attached transportation and installation structure and floating wind turbine through rough sea and stormy weathers, in order to adapt the damping and the stabilization of the (non-fixed) arrangement or to adapt the hydraulic resistance dur g transport.
  • the floatable transportation and installation structure can be ballasted in such a wa that the wind turbine and especially their floating support structure is lowered in the water so that th floating wind turbine and the floating support structure
  • the floatable transportation and installation structure is de-ballast able in such a way that its floating depth can be adjusted in order to separate it from the fixed floating wind turbine and/o to reduce the hydraulic resistance durin transportation and especially during towing by a tugboat.
  • the floatable transportation and installation structure comprises an. accommodation area where the floating wind turbine can be accommodated in such a way that the floatable transportation and installation structure is at least partially enclosing the floating wind turbine.
  • This accommodation area preferably provides fixation points for fixation of the wind turbine to the floatable transportation and installation structure whereby the fixation is simple and efficient.
  • such an accommodation area ensures secure support of the erected floating wind turbine and its floating support structure respectively, even under rough weather conditions, with minimal risk of damage to the wind turbine tower.
  • Such a tower can fo example be a tower carrying at a top end a nacelle of a horizontal axis wind turbine.
  • the floatable transportation and installation structure comprises at least one opening-closing structure or similar gate structure for reversibl essentially fully enclosing the accommodation are around the floating wind turbine.
  • a gate structure can for example be a gate which can be opened and closed protecting the floating wind turbine inside the accommodation area and preferably allowing the separation of the floating wind turbine to and from the floatable transportat on and installation structure by providing an opening in the structure. This is particularl efficient when detaching the floating wind turbine at the offshore site.
  • said gate structure applies to at least one sidewall of the transportation and installation structure, whereby the floatable transportation and installation structure can be placed around the essentially fully assembled upright wind turbine fo transportation and removed from around said wind turbine after installation without haying to lift said turbine or unassembled the transportation and installation structure.
  • the floatable transportation and installation structure is built in such a way that attaching, detaching and separating the floating wind turbine to. and from the floatable transportation and installation structure is possible without any lifting means for lifting the wind turbine.
  • the floatable transportation and installation structure is built in such a way that it is positionable and/or securable, at least partially, on a fop part of the floating support structure.
  • the transportation and installation structure By placing the transportation and installation structure on top of the floating support structure and around the wind turbine base respectively, the transportation and installation structure does not need to be engineered to support the whole arrangement to be transported and efficient use is made of the buoyancy of the existing floating support structure.
  • the buoyant or floating support structure of the wind turbine does not need to be made baliastable and its buoyancy is utilized efficiently. Flexibility, ballasting and/or other expensive features with regard to manufacturing and technology can all be put on the reusable transportation and installation structure in order to reduce the costs of the floating wind turbine and its anchors. The overall cost of wind farms would then be reduced due to the repeated usage of the floatabl e transportation and installation structure,
  • the floatable transportation and installation structure comprises a frame structure and especially a lattice structure.
  • this frame or lattice structure preferably also has an enciosable accommodation, area for attaching the floating wind turbine.
  • the floatable transportation and installation structure and especially the frame structure comprise hollow chambers and especially tubular elements comprising the ballastable and de-ballastable floating means. Hollow parts of the transportation and installation structure and especially of the frame, or separate stabilizing units, can be made
  • the structure is preferably lowered to a distance so that the tendons and/or the mooring lines slack and therefore can easily be connected.
  • th ese hollow chambers or floating means could also be separate hollow chambers or floating means which can be attached to the floatable transportation, and installation structure if necessary.
  • respective attaching means are provided, for example bolt connections or similar.
  • These hollow chambers or floating means would be watertight and be ballastable and ⁇ de-ballastable individually.
  • the frame could itself comprise the gate structure for openin and closing the accommodat on area,
  • a floatable transportation and installatio structure and especially a frame structure with at least one open side in order to reduce the need for gates and extra handling of the same.
  • the sides of the frame or floatable transportation and installation structure respectively may be opened using hydraulics or simila mechanisms which do not require the gate to be manually opened by divers, which are an expensive addition to current offshore installation methods.
  • all relevant techniques and especially drive mechanisms are usable.
  • the floatable transportation and installation structure and especially the frame can be, as mentioned before, de-ballasted, detached and especially unbolted from the floating wind turbine and the gate, if -provided, can be opened in order to remove the frame from around the wind turbine and especially tow the structure back to shore with no need for offshore cranes and minimal need, -if any, for divers.
  • the floatable transportation and installation structure is reusable for transportation and installation of multiple floating wind turbines.
  • the adapter means are used to make the fixation means of the transportation and installation structure compatible with counter fixation means of the floating wind turbine to be transported and installed,
  • fixation and counter fixation means can be chosen by a person skilled in the art from known techniques and methods, Here, bolt connections, hydraulic clamping, screw connections or similar connections are all applicable, as well as welding or other such methods.
  • connection between the transportation and installation structure and the wind turbine is intended to be as simple as possible to connect and disconnect in terms of the time and labor required.
  • the floatable transportation and installation structure could be attached to the 18 floating wind turbine and a TLP buoyancy support structure respectivel by bolt connection plates.
  • the connection pieces could then be retrofitted onto different suppor structures in order for the floatable transportation and installation structure to be used for more than one type of floating wind turbine and support structure respectively.
  • the floatable transportation and installation structure therefore preferably comprises adapter means for securing different kinds of floating wind turbines to it for transportation and installation.
  • the floatable transportation and installation structure is built as a modular structure comprising multiple parts and especiall frame-like parts s having designs and dimensions such that they are attachable with each other and can be combined in various arrangements whereby the floatable transportation and installation structure can foe adapted for transportation and installation of different kinds of floating wind turbines, in this case, especially with regard to a frame structure and a lattice structure, different kinds of tubular elements, having different size and especially length can be used and attached together to build the floatable transportation and installation structure.
  • the proposed structure could be made more versatile especially by having a frame and tubular structure respectivel which would be suited to a modula design.
  • the frames would usually be built specifically for the transport and installation of at least one special kind of fl oating wind turbine - after the have been used for the installation of one wind farm they would probably be saved for the next installation of exactl the same wind turbine or scrapped/recycled for other purposes.
  • the frames are mOduiar, they are adaptable to different wind turbines and TLP or similar suppor structures respectively.
  • the horizontal and vertical length of such tubular steel and similar frame structures would for example easily be connected with connecting pieces whilst diagonal length would be made flexible by hinged connections to the horkon tal/vertical I engt .
  • the TLP structure includes fixation means by which the floating wind turbine can be fixed at an offshore site.
  • These TLP fixation means include tendons, tendon anchoring mea s,, catenary mooring lines, catenary mooring line anchorin means etc. Therefore, the floatable transportation and installation structure preferably comprises attachment means for some or the entire fixation means to be temporarily fixed to said structure during
  • the floatable transportation, and installation structure and/or the floating wind turbine comprise fixing means so that they can at least partly carry their own fixation means to the position where they are fixed to the sea bed. This provides an all-in-one installation system which is cheap and fast to install.
  • the invention also relates to a floating wind turbine comprising counter securing means eonneetable to securing means of a floatable transportation and installation structure as mentioned before, in this regard all features disclosed in this specification are applicable to the floating wind turbine also.
  • the floating wind turbine preferably further comprises a floating support structure and at least one wind turbine arrangement attached to the floating support structure, wherein the floating support structure is not comprising ballasting and de-ballasting means and is especially not ballastable and de-ballastable by taking and/or ejecting water or similar ballast, means.
  • the floating wind turbine comprises attachment means for at least temporarily attaching some or all of the fixation means, by which the floating wind turbine can be fixed at an installation position offshore, during transportation to this position.
  • the floating wind turbine and especially the floating support structure preferably comprises attachment means of at least part of the anchoring means to be temporarily fixed to said wind turbine during transportation.
  • a floating wind turbine comprises attachment means to temporarily attach TLP or other fixation means, namely anchoring means, tendons or catenary mooring lines, etc., to attach them to the floating wind turbine during transport.
  • attachment means could also be provided for the attachment and transportation of other fixation means for the fixation of other floating wind turbines known from the state of the art.
  • the invention also relates to a method for transportation and installation of an essentially fully assembled and erected floating wind turbine especially a floating wind turbine as- mentioned before comprising the following steps: securing the essentiall fully assembled and erected floating wind turbine to a floatable transportation and installation structure in such a way that the erected floating wind turbine is stabilized and can be moved by moving the transportation and installation structure; moving the floating wind turbine to a designated, position by moving the floatable transportation and installation structure to said desi nated position; securing the floating wind turbine to fixations means provided at the given position; detaching the transportation and installation structure from the now fixed floating wind turbine and separating it from the wind turbine.
  • the method for transportation and installation further comprises: ballasting the floatable transportation and installation structure in such a wa that the secured floating wind turbine is lowered further into the water; securing the lowered floating wind turbine to fixation means; separatin the lowered floatable transportation and installatio structure from the fixed floating wind turbine; and de-ballasting the floatable transportat on and installation structure in such a way that it is lifted in the water.
  • the method for transportation and installation of the floating wind turbine comprises the steps that the transportation and installation structure and especially a frame is placed around the wind turbine and. especially around a tower of a wind turbine and preferably on top of the floating support structure of the same, using a gate or opening.
  • the transportation and installation structure is then fixed to or onto the floating support structure with pre-existing fixing means, the floatable transportation and installation structure is connected to a tugboat or a similar transportation vessel and towed to the designated position, wherein the frame is supporting the wind turbine and preferably also the TLP support structures or similar fixation structures, e.g. anchoring means, connection lines or any other fixation means.
  • the floatable transportation and installation structure is weighted further by ballasting, lowering the wind turbine so that the floating support structure is especially full submerged, the submerged support structure respectively is attached to the fixation means and especially the TLP structure arranged before, wherein the frame is the detached from the floating support structure, its ballasting is removed so that the frame rises and is then towed back, to the harbor or onshore assembly area for farther use.
  • the method preferabl also comprises the steps of detaching fixation means and especially TLP fixations means for fixation of the floating wind turbine offshore at the designated position from the floatable transportation and installation structure and/or the floating wind turbine and arranging them in such a way that they can be connected to the floating wind turbine for fixation of the same at the designated position.
  • Pig, 1 a side view of one embodiment of a floating wind turbine comprisin a TLP support structure
  • Pig. 2 top view of the floating wind turbine according to Figs. 3 - 9 one embodiment of a method for ' transporting and installation of an offshore wind turbine according to the invention
  • FIG. 10 - 17 another embodiment of a method for transporting and installation of an offshore wind turbine according to the invention
  • Figs. 18 and 19 a top view of an embodiment of a floatable transportation and installation structure according to the invention.
  • FIG. 20 a to vie of an embodiment of a floatable transportation and installation structure according to the invention
  • Fig, 21 a top view of an embodiment of a floatable transportation and installation structure according to the invention
  • Pigs. 22 and 23 a top view of an embodiment of a floatable transportation and installation structure according to the invention.
  • FIGs..24 - 26 views of an embodiment of a floatable
  • FIGs. 1 and 2 are schematically depicting one embodiment of a floating wind turbine 1 anchored to the sea bed 23 by fixation means 28 provided as a TLP support structure,
  • the wind turbine 1 is a wind turbine known by the state of the art, namely a horizontal axis wind turbine comprising a tower.22, where a nacelle 26 is attached to.
  • the nacelle comprises rotor blades 27 which are turned b wind for generating energy.
  • wind turbine arrangement 21 This wind turbine
  • the wind turbine arrangement 21 and especiall the tower 22 are attached to a floating support structure 24 providing buoyant forces to keep the wind turbine arrangement 21 in a sufficient operatio high above sea level 19 and water 20 respectively.
  • a floatin wind turbine 1 is subjected to different movements and forces respectively due to weather and sea condition.
  • the resulting movements are depicted in fig. 1 as well indicated by respectively arrows X, Y and Z for surge, sway and heave movement, and R, P and Y for rotational movements, namely roll, pitch and y aw respectively .
  • the provided fixation means 28 and especially the her used TLP support structure provides catenar mooring lines 34 anchored to mooring anchoring means 44 and tendons 82 anchored to tendon anchoring means 42, Both, the tendon anchoring means and the mooring anchoring means are concrete volumes lowered to the sea bed 23.
  • the floating wind turbine 1 is enforcing a buoyancy force FA against this fixation means 28, the floating wind turbine 1 is secured at a position even under strong weathers.
  • Figs. 3 - 9 are disclosing one method and arrangement for transportation and installati on of a wind turbine, for example a wind turbine .1 as shown before.
  • the floating wind turbine 1 comprises a tower 22, a nacelle 26, where rotor blades 27 are attached to. These parts constitute the wind turbine arrangement 21 which is attached to a floating support structure 24, Like shown in fig. 1 the floating support structure 24 provides buoyant forces FA to keep the floatin wind turbine 1 in a floating position.
  • this floating wind turbine 1 is built to be fixed to the sea bed 23 by fixation means and especially by a TIP structure (see fig, 1), during transportation and especially in a non-fixed state it is unstable and therefore it normally cannot be transported in an erected and folly assembled way as shown in fig. 3 without any aid means,
  • a floatable transportation and installation structure 2 is provided the essentially fully assembled and erected floating wind turbine 1 is attached to by use of securing means 4 provided at the floatable transportation and installation structure and counter securing means 36 provided at the wind turbine 1,
  • the floatable transportation and installation structure 2 is attached to the floating wind turbine 1 in such a way that the floating wind turbine 1 is stabilized and can be moved by moving the transportation and installation structure 2, Fo this movement, a tugboat 38 is provided which is connected to the arrangement of floatable transportatio and installation structure 2 and attached to floating wind turbin 1 b pulling means 39 and especially ropes or chains.
  • a tugboat 38 is provided which is connected to the arrangement of floatable transportatio and installation structure 2 and attached to floating wind turbin 1 b pulling means 39 and especially ropes or chains.
  • the tugboat 38 pulls the arrangement of floatable, transportation and installation structure 2 and Boating wind turbine 1 to pre-arranged fixation means 28 f which are built as a TLF support structure in this embodiment.
  • the fixation means 28 here comprise tendon anchoring means 42 and mooring anchoring means 44 lowered on the sea bed 28. Attached to the anchoring means 42 and 44 are tendons 82 and mooring lines 34
  • the tendons 82 and mooring lines 34 are held essentially e.g. at sea level or a required installation level by temporary buoyant means 46.
  • the fixation means 28 has been arranged at the installation position of the floating wind turbine 1 b another tugboat (not shown) before the wind turbine 1 has been pulled to their installation position shown in fig. 4,
  • the arrangement, of floatable transportation and instaliation structure 2 and floating wind turbine 1 has been pulled b the tugboat 88 to the future installation position of the wind turbine .1.
  • the floatable transportation and installation structure is thereby positioned on the top part 25 of the floating support structure 24 of the floating wind turbine .1 and secured to the tower 22 and/or the floating support structure 24, dependent on the provided securing means and counter securing means 4, 36.
  • the floatable transportation and installation structure comprises in fig, 3 and 4 floating depth d%.
  • ballasting means 6 are here provided as hollow chambers 14 and especially hollow tubes arranged within the frame structure 12 of the floatable transportation and installation structure 2.
  • the floatable transportation and installation structure 2 and especially the " baliastable floating means 6 comprise valves or similar apertures for taking and, for de-ballasting purpose, especially for ejecting water.
  • the floating depth cfe of a floating wind turbine 1 is about 10 to 25 m and especially 15 t 20 m in this state of the installation process.
  • the fixation means 28 and especially the tendons 32 and catenary mooring lines 34 can be easily attached to the floating support platform. For this reason the floating support structure 24 is lowered to such a depth that the fixation means and especially here the tendons 32 and the catenar mooring lines 34 can be attached without heavy normal forces acting on the tendons and the m ooring lines respectively, and especially lowered until at least parts of the fixation means 28 are slack. According to fig.
  • the floatable transportatio and installation structure 2 is detached from the floating wind turbine 1.
  • the fixation means 4; 36 it is also possible that the securing means 4; 36 are parts of a weldin or .-Similar connection, to be separated in this stage of the installation process e.g. by use of separating means like cutting or welding means etc.
  • the floatable transportation and installation structure 2 lifts away from the now fixed floating support structure 24 of the wind turbine 1. whereby the floating wind turbine rises within the limit of a slacking fixation means 28 bringing them into tension resulting in a secure fixation of the wind turbine 1 within the water 20, he floatable
  • Figs. 7 - 9 are now di sclosing removal of the detached floatable transportation and installatio structure 2 according to fig. 6.
  • the floatable transportation and installation structure 2 comprises a gate structure 10, here an openable gate, preferable controllable by an electronic control station (not disclosed).
  • the activation means 11 for opening and closing the gate 10 could be hydraulic, electrical or any other activation means as the ⁇ ? are known, from the state of the art.
  • the activation means could also me manually controlled like snap bars, bolt connections etc.
  • the gate structure 10 is show in a closed state enclosing an accommodation area 8, the wind turbine 1, and here as a special embodiment the tower 22 is accommodated and especially protected against environmental forces.
  • the detached floatable transportation and installation structure 2 can be pulled away from the fixed floati ng wind turbine 1 without any need of li fting of the wind turbine and especially without any need of additional lifting means like cranes etc.
  • the tugboat 38 is again connected to the floatable transportation and installation structure 2. its gate structure 10 is closed and the tugboat pulls the floatable transportation and installation structure preferably to a new side of operation and especially to an onshore place where a new wind turbine to be installed' offshore is waiting for transportation. The installation and especially the fixation of the floating wind turbine 1 is finished.
  • Figs. 10 - 17 are disclosing a second embodiment and especially a second method of transportation and installation wind turbine 1.
  • the basic arrangement of a floatable transportation and installation structure 2 attached to a floatable wind turbine 1 and especially on top 25 of a floating support structure 24 of this wind turbine 1 is identical to the before mentioned embodiment. Therefore, to the before passages is referred for the sake of clarity,
  • the disclosed arrangement and method respectively differs from the before mentioned in that at least parts of the fixation system 28 are now attached to the arrangement of floatable transportation and installation structure 2 and or the wind turbine 1 by provided
  • tendon anchoring means 42 and mooring anchoring means 44 are attached to the floating support structure 24 of the floating wind turbine 1 during transport. Furthermore * it is possible to also attach the respective tendons 32 and catenary mooring lines 34 which are, however, not shown here in detail. Furthermore, it is of course possible to attach any other parts of the fixation means 28 during transport. After receiving the -designated installation positions (see fig. II and 12), the fixation means 28 are arranged so that the floating wind turbine 1 can be attached to. For example the anchoring means 44, 42 are lowered to the sea bed 23 and attached to mooring lines 34 and tendons 32. Again, temporarily buoyant means 46 are used, at least partly here, which of course could also have been connected to the floatable transportation and installation structure 2 or the floating wind turbine 1 during transport. Also, it is of course possible to transport these means on the tugboat etc.
  • the tendon anchoring mean 42 is lowered to the sea bed 23 by winches 33 arranged at the floatable transportation and installation structure 2.
  • winches 33 could also be provided at the floating support structure 24,
  • the floatable transportation and installation structure 2 is ballasted by taking water 20 into the hal!astafole floating means 8 and especially the hollow chambers 14 of the frame structure 12. The result is an increased floating depth d3 ⁇ 4. In detail, the floating support structure 2 is lowered a bit below normal installation depth.
  • the floatable transportation and installation structure 2 is detached from the floating wind turbine 1, the de-ballastabie floating means 6 are emptied, here e.g. by ejecting water 20, so that the floatable transportation and installation structure 2 lifts u to a floating depth ds (see fig. 14).
  • the detaching operation comprises the following steps; ballast water is pumped ou of the floatable transportation and installation structure 2 and especially out of the de-ballastabie floating means 6 until the floating wind turbine 1 reaches final installation position. Successively, the floatable transportation and installation structure 2 is detached from the floating wind turbine 1, wherein especially the securing and counter securing means 4, .36 are opened. " Finally ⁇ extra ballast water is ejected from the cfo-baliasta e floating means ⁇ until the floatable transportation and installation structure 2 reaches required transportation depth- A ter that the floatable transportation and installation structure 2 is pulled away, as shown in figs, 15— 17, by performing identical steps as explained before in figs. 3 - 9,
  • a gate 10 is opened by use of hydraulic cylinders. As mentioned, also other activation means could be used. After opening the gate structure 10, the tugboat 38 pulls the floatable transport ion and installation structure.2 away from the floatin turbine 1. The gate structure 10 is being closed and the fl atable transportation and installation structure 2 is been towed back to port or another operation position.
  • Figs. 18 and 19 are disclosing another embodiment of a floatabie transportation and installation structure 2 also comprising a frame structure 12 and having a gate structure 10 on one side of the structure 2. Hydraulic, electrical or any other activation means 1.1 are used for opening and closing the gate structure 10. Of course the means 11 could also be provided as supporting means, as hydraulic dampers, wherein the gate- parts 10 are opened and closed manually,
  • the floatable transportation and installation structure 2 comprises an accommodation area 8 for accommodating the . ' floating wind turbine 1, wherein both embodiments comprising a gate structure 10 open and clog able by a hydraulic or other activator means 11,
  • the activator means 11 is arranged on the outside of the accommodation area.8, wherein wit the embodiment according to fig. 21 it is arranged within the accommodation area.
  • the frame structure 12 could preferably generally be built i such a way that by use of different parts 16, 17, 10 and especially frame-like parts different sizes and/or geometries of the floatable transportation an d installation structure 2 can be provided. In such a way, different floating wind turbines 1 can be accommodated in the accommodating area and transported.
  • Figs. 22 and 23 are disclosing another embodiment of a floatable transportation and installation structure similar to the embodiment of figs, 20 and 21.
  • the gate structure 10 is activated b an activation mean 11 provided as a yaw motor, a hydraulic motor etc.
  • figs. 24 ⁇ 26 are disclosing an embodiment of a floatable transportation and install atio structure 2, wherein especially the securing means 4 and counter securing means 36 are depicted.
  • Fig. 23 discloses a side view of a tower 2 of a floating wind turbine (not shown) attached to the floatable transportation and installation structure 2.
  • the tower 22 comprises counte securing means 86 where securing means 4 of the floatable transportation and installation structure 2 can be attached to.
  • the embodiment of the floatable transportation and installation structure is further specified by the fact that a gate structure 10 for enclosing and openin an accommodation area 8 is part of the securing means 4 too, activated by activator means IL
  • a frame structures 48 of the securing means 4 as adapter means 30 so that they can be adapted to different nd of floating wind turbines and here especially towers 22,

Abstract

The present invention relates to a floatable transportation and installation structure for transportation and installation of an essentially fully assembled and erected floating wind turbine, wherein said transportation and installation structure is comprising securing means for detachably and temporarily securing the floatable transportation and installation structure to the erected floating wind turbine in such a way that the floating* wind turbine is stabilized and can be moved by moving the transportation and installation structure. Further, the invention relates to a floating wind turbine comprising securing counter means connectable to securing means of a floatable transportation and installation structure according to the before mentioned kind and to a method of transportation and installation of such a floating wind turbine,

Description

Title: Floatable transportation and installation structure for
transportation and installation of a floating wind turbine, a floating wind turbine and method for transportation and installation of the same
The present invention relates to a floatable transportation and installation structure for transportation and installation of an essentially fully assembled and erected floating wind turbine.
Further, the invention relates to such a wind turbine securable to such a floatable transportation and installation structure.
Finally, the invention relates to a method for transportation and installation of an essentially fully assembled and erected floating wind turbine.
In detail, the present invention relates to a transportation and installatio method and structure for an offshore wind turbine and in particular to floating offshore wind turbines with tension leg platform (TLP) type support structures.
Recently, the offshore wind industry lias grown at a rapid rate due to the higher wind speeds found at sea. However, due to the nature of the water and the weather conditions, the assembly and installation of offshore wind turbines has proved to be difficult and expensive, In order to reduce the cost and simplify the installation, some offshore wind turbines are being essentiall fully assembled onshore, transported to the offshore site and then connected to the pre-instailed offshore foundation, These pre- installed foundations would be constructions which are built into the seabed such as a monopile, jacket, tripod or suction caisson foundations.
Specialist vessels are required to transport the pre-assembled wind turbines and to upend them at the offshore site. Offshore cranes or other specialist lifting devices are then required to lift the wind turbine and lower it onto the pre-instailed foundation. The need for specialist vessels, lifting devices and offshore cranes adds significantl to the overall expense of an offshore wind farm. The largest expense is the cost of the pre-installed offshore foundations and their installation.
For this reason, the offshore wind turbine industry is now moving towards floating turbines which can be developed to be essentially fully assembled onshore and transported upright to the si e in order to be anchored- This is an improvement .on the high costs and lengthy installation of an offshore foundation. The key feature of a floating wind turbine is the support structure. The main floating wind turbine support structures can be categorized into three groups: spar 'buby, semi-submersible and TLP,
All three groups deal with th e problem of stabilizing the floating wind turbine against the horizontal, vertical and rotational move ents to which it is subjected after installation.
A semi-submersible is a partially submerged structure that is stabilized by the buoyancy of watertight containers that are ully submerged in the water. However , this means that semi-submersibles rely on a large water-plane area to stabilize the structure against the changing loads such as those resultin from the operation of the wind turbine, Therefore the dimensions of the semi-submersibles are very large.
A spar buo structure for a floating turbine is stabilized by ballasting. The spar relies on a ballasted deep-draft hull to stabilize the floating wind turbine. This requires deep water depths of over 100m. The structures are also very heavy and costly with the possibility of reduction in 'weight being highly unlikely. Due to the length of th spar structure, onshore assembly of the full turbine and support structure is probabl not possible which increases the cost further due to the offshore cranes, lifting devices or specialist transport vessels required.
With regard to a TLP structure, vertical motions are eliminated by the tension-leg mooring system in which the tendons are anchored to the sea bed. This stability provided by the tendons, allows the platform size to be significantly reduced audit is therefore lighter and less expensive. In addition the structure can be fully submerged in order to reduce wave loads,
The most versatile and cost-effective of the support structures mentioned before is the TLP structure. The complete TLP system is such that the support structure is smaller and much less expensive than a semi- subroergible and a spar buoy. However, the biggest problem involved is in th e cost and complexity of transportation and installation of the TLP structure wind turbine due to its instable nature outside of its installed form which means that without anchoring the floating wind turbine to the sea bed, wind and. water forces have a drastic impact on the buoyancy stability of the TLP based floating wind turbine.
Principally, there are two obvious solutions for the installation of a wind turbine with a TL support structure, known from the state of art:
The first solution is to transport and install the whole TLP structure, namely the support structure, the tendons, the anchors, the wind turbine and the tower, all separately. However, the cost and amount of time required for this solution are considerably large.
The second solution is to make the TLP support structure larger and more complex in order for it to be able to support a fully assembled wind turbine during transportation by towing it. to the installation site.
However, this defeats the purpose of a TLP structure and would be closer in design and function to a semi-submersible structure.
In addition to floating wind turbines mentioned above, there is a type of offshore foundation that is classed as a gravity base foundation which also offers some of the advantages such as onshore assembl and shorter installatio times a the site. This type of foundation generally does not require any drilling into the sea-bed or pre-installation and therefore the transportation and installation of wind turbines with gravity base foundations can essentially be compared to that of floating wind turbines. There are existing ..examples of the transportation and installation of support structures for floating wind turbines and essentially fully assembled offshore wind turbines, for example the "Blue H" (TLF), Com (gravity base foundation) and GBF (gravity base foundation), These structures are known to the skilled person, however, they have several disadvantages, e.g. ver time-consumin and labor-intensive installation, bulky and difficult to handle transportation means, large dimensions due to the level of support required of the structures, solely compatible with the support structure for which they are designed, very high installation costs, In addition, the known state of the art comprises installation or
transportation structures made up of several separate units that do not form a single, self-supporting and independent structure.
It is therefore an object of the invention to. provide a cost-effective means and method of transportation and installation for a .floating wind turbine and especially for a floating wind turbine with a TLP support structure.
The above object is reached by a floatable transportation and installation structure for transportation and installation of an essentiall fully assembled and erected floating wind turbine, a floatin wind turbine and by a method for transportation and installation of an essentially fully assembled and erected floating wind turbine according to the independent claims.
In detail, the object is reached by a floatable transportation and installation structure for transportation and installation of an essentially fully assembled and erected floating wind turbine, wherein said
transportation and installation structure comprises securing means for detachably and temporarily securing the floatable transportation and installation structure to the erected, floating wind turbine in such a way that the floating wind turbine is stabilized and can be moved by moving the transportation and installation structure. Farther, the above object is reached by a floating wind turbine comprising counter securing means connectable to securing means of a floatable transportation and installation structure as defined within this specification,
Finally > the above object is reached by a method for
transportatio and installation of an essentially folly assembled and erected floatin wind turbine, comprising: Securing the essentially fully assembled and erected floating wind■■turbine to a floatable transportation and installation structure in such a way that the erected floating wind turbine is stabilized and can be moved by moving the transportation and installation structure; transporting the floating wind turbine to a designated position by moving the floatable transportation and installation structure to said designated position; seeming the floating wind turbine to fixation m eans provided at the designated position; detaching the transportation and installation structure from the now fixed floating wind turbine and separating it from the wind turbine.
A key aspect of the invention is the use of a preferably reusable floatable transportation and installation structure which can be attached to a floating wind turbine in such a way that the wind turbine can be essentially fully assembled and, which is even more relevant, that the wind turbine can be moved in an erected state. This means that the wind turbine can be assembled onshore by use of provided onshore cranes an d additional necessary equipment, wherein no offshore equipment for liftin or moving the wind turbine is necessary except for tugboats or similar standard moving equipment, In this regard essentially fully assembled therefore means that the floating wind turbine is assembled in such a way that offshore installation can be done without use of any expensive offshore equipment for lifting and moving except for tugboats or similar standard moving and lifting equipment. Preferably, the floatable transportation and installation structure is secured to the erected floating wind turbine in a manner that it can be moved along a horizontal axis to a designated position offshore, where for example the floating wind turbine has to be installed. Furthermore, it is possible that the floatable transportation and .installation structure also allows vertical xaoyement of the .floating wind turbine,, which is explained further along in the description. This vertical movement helps, for example, when attaching the 'floating wind turbine and its floating support structure to the tendons of a TLP support structure.
Temporarily connecting the floatable transportation and installation structure to the floatin wind turbine allows reusability of the transportation and installation structure reducing installation costs tremendously. In theory, any securing means known from the state of the art may be used, . however the present invention preferably utilizes temporar connecting or securing means which, are easily disconnected or detached when required. Therefore the invention presumes to exclude connecting means such as welding o similar securing means which are known in the state of the art and for which detaching the wind turbine from the floatable transportation and installation structure, would be significantly more complex.
In detail, the structure preferably provides a reusable, towable, semi-submersible transportation and installation structure which comprises a pre-asserabled single unit that is easily attached to and detached from the floating wind turbine and/or TLP support structure or similar parts.
Furthermore, as all necessary installation and moving means can be provided by the reusable floatable transportation and installatio structure, the cost of the floating wind turbines can be reduced. An example of this case is that no separate ballasting o moving means are required i addi ion to the transportation and installation structure as detailed in the present invention. ?
Preferably, the floatable transportation and installation stracture is a passive structure comprising no active traction means, and especiall no motor, however, preferably comprising' connection means for being connected to at leas one active traction means and especially a tugboat, This reduces the cost, of the actual floatable transportation and installation structure and only requires standard and relatively inexpensive active traction, means such as a tugboat. The use of a tugboat is the most
advantageous especially as it is most likely already present during the installation and construction of an offshore wind farm. The multi-purpose use of existing support means such as tugboats would further reduce costs,
Preferably, the floatable transportation and installation structure comprises ballastable and de-ballastable means configured in such a way that the floating depth of the floatable transportation and installation structure is adaptable by ballasting and. de-ballasting the respective means, and especially by taking in sea water and ejecting sea water respectively. Preferably, the ballasting or de-ballasting can be carried out in a situation where the floatable transportation and installation structure is secured to the floating wind turbine a d or in a situation where it is separated From the floating wind turbine.
The transportation and installation structure can preferably be lowered b ballasting resulting in the lowering of the floating wind turbine - and its support structure together with the floatable transportation and installation frame. Conversely, the floatable transportatio and installation structure is de-ballastable resulting in the lifting of the floatable
transportation and installation stracture, thereb preferabl also lifting the attached floatable wind turbine.
In the case of the aforementioned TLP structure, it is therefore possible to ballast the floatable transportation and installation structure, to lower it in the water and to also lower the attached floating wind . urbine, and then attach anchored tendons and catenary mooring lines or similar TLP fixation means to the lowered floating wind turbine or the floating support structure of the floating wind turbine respectively. After attaching the floating wind turbine to these TLP fixation means, it is then possible to detach the floatable transportation and installation structure from the now fixed floating wind turbine, de-ballast the floating transportation and installation structure in order to lift it, thereby separating it from the fixed floating wind turbine.
In other words, the floatable transportation and installation structure is ballastahle and de-ballastable to submerge and especially preferably fully submerge the floating support structure of the wind turbine. These h h astable and de-ball astable floating means could also be useful when towing the attached transportation and installation structure and floating wind turbine through rough sea and stormy weathers, in order to adapt the damping and the stabilization of the (non-fixed) arrangement or to adapt the hydraulic resistance dur g transport.
After separating the wind turbine, no fixed to the seabed or a corresponding fixture, the floatable transportatio and installation
structure can be de-ballasted, thereby reducing its loating depth inter alia resulting in reduced transportation costs due to reduced hydraulic
resistance.
It is therefore preferred that the floatable transportation and installation structure can be ballasted in such a wa that the wind turbine and especially their floating support structure is lowered in the water so that th floating wind turbine and the floating support structure
respectively can be anchored to the sea bed.
Furthermore, it is preferred that the floatable transportation and installation structure is de-ballast able in such a way that its floating depth can be adjusted in order to separate it from the fixed floating wind turbine and/o to reduce the hydraulic resistance durin transportation and especially during towing by a tugboat. Preferably, the floatable transportation and installation structure comprises an. accommodation area where the floating wind turbine can be accommodated in such a way that the floatable transportation and installation structure is at least partially enclosing the floating wind turbine. This accommodation area preferably provides fixation points for fixation of the wind turbine to the floatable transportation and installation structure whereby the fixation is simple and efficient. Furthermore, such an accommodation area ensures secure support of the erected floating wind turbine and its floating support structure respectively, even under rough weather conditions, with minimal risk of damage to the wind turbine tower.
Preferably, the accommodation area and the floatable
transportation and installation structure respectively are built in such a way that especially a tower of the floating wind turbine is at least partially enclosed. Such a tower can fo example be a tower carrying at a top end a nacelle of a horizontal axis wind turbine. However, it can also be a tower- element or similar element carrying a vertical axis wind turbine
arrangement.
Preferably, the floatable transportation and installation structure comprises at least one opening-closing structure or similar gate structure for reversibl essentially fully enclosing the accommodation are around the floating wind turbine. Such a gate structure can for example be a gate which can be opened and closed protecting the floating wind turbine inside the accommodation area and preferably allowing the separation of the floating wind turbine to and from the floatable transportat on and installation structure by providing an opening in the structure. This is particularl efficient when detaching the floating wind turbine at the offshore site.
Preferably, said gate structure applies to at least one sidewall of the transportation and installation structure, whereby the floatable transportation and installation structure can be placed around the essentially fully assembled upright wind turbine fo transportation and removed from around said wind turbine after installation without haying to lift said turbine or unassembled the transportation and installation structure. Generally, the floatable transportation and installation structure is built in such a way that attaching, detaching and separating the floating wind turbine to. and from the floatable transportation and installation structure is possible without any lifting means for lifting the wind turbine. This means that the wind turbine can be built and installed in a very effective and economical way and espec ally without any baliastable means needed to be incorporated into the floating wind turbine support structure, The b liastable means would therefore only be provided as part of the floatable transportation and installation structure.
Preferably, the floatable transportation and installation structure is built in such a way that it is positionable and/or securable, at least partially, on a fop part of the floating support structure. By placing the transportation and installation structure on top of the floating support structure and around the wind turbine base respectively, the transportation and installation structure does not need to be engineered to support the whole arrangement to be transported and efficient use is made of the buoyancy of the existing floating support structure.
Generally it is of advantage that the buoyant or floating support structure of the wind turbine does not need to be made baliastable and its buoyancy is utilized efficiently. Flexibility, ballasting and/or other expensive features with regard to manufacturing and technology can all be put on the reusable transportation and installation structure in order to reduce the costs of the floating wind turbine and its anchors. The overall cost of wind farms would then be reduced due to the repeated usage of the floatabl e transportation and installation structure,
Preferably, the floatable transportation and installation structure comprises a frame structure and especially a lattice structure. In keeping with the invention thus far, this frame or lattice structure preferably also has an enciosable accommodation, area for attaching the floating wind turbine. By providing a frame-like
transportation and installation structure, the use of excess material and weight are reduced resulting in a very cost-effective easy to assemble and easy to handle floatable transportation and installation structure. This is especially the ease when the frame structure, is a made up of tubular elements.
Preferably, the floatable transportation and installation structure and especially the frame structure comprise hollow chambers and especially tubular elements comprising the ballastable and de-ballastable floating means. Hollow parts of the transportation and installation structure and especially of the frame, or separate stabilizing units, can be made
ballastable to weigh the structure down and stabilize the wind turbine during transportation. It could also m ke the anchoring of the floatin wind turbine easier, as mentioned before, by lowering the entire structure in order to connect the tendons or the catenar mooring lines of the TLP or similar fixation means. The structure is preferably lowered to a distance so that the tendons and/or the mooring lines slack and therefore can easily be connected.
Of course, th ese hollow chambers or floating means could also be separate hollow chambers or floating means which can be attached to the floatable transportation, and installation structure if necessary. In this case, respective attaching means are provided, for example bolt connections or similar. These hollow chambers or floating means would be watertight and be ballastable andde-ballastable individually.
As mentioned before, the frame could itself comprise the gate structure for openin and closing the accommodat on area, Also, it is possible to provide a floatable transportation and installatio structure and especially a frame structure with at least one open side in order to reduce the need for gates and extra handling of the same. Alternatively, the sides of the frame or floatable transportation and installation structure respectively may be opened using hydraulics or simila mechanisms which do not require the gate to be manually opened by divers, which are an expensive addition to current offshore installation methods. With regard to the opening and closing of the gate structure, all relevant techniques and especially drive mechanisms are usable.
After installation, the floatable transportation and installation structure and especially the frame can be, as mentioned before, de-ballasted, detached and especially unbolted from the floating wind turbine and the gate, if -provided, can be opened in order to remove the frame from around the wind turbine and especially tow the structure back to shore with no need for offshore cranes and minimal need, -if any, for divers.
Preferably, the floatable transportation and installation structure is reusable for transportation and installation of multiple floating wind turbines. This has been mentioned before. Furthermore, it is possible to provide adapter means so that the floatable transportation and installation structure can be used for the transportation and installatio of different kinds of floating wind turbines, wherein the adapter means are used to make the fixation means of the transportation and installation structure compatible with counter fixation means of the floating wind turbine to be transported and installed,
Generally, these fixation and counter fixation means can be chosen by a person skilled in the art from known techniques and methods, Here, bolt connections, hydraulic clamping, screw connections or similar connections are all applicable, as well as welding or other such methods.
The connection between the transportation and installation structure and the wind turbine is intended to be as simple as possible to connect and disconnect in terms of the time and labor required. The floatable transportation and installation structure could be attached to the 18 floating wind turbine and a TLP buoyancy support structure respectivel by bolt connection plates. The connection pieces could then be retrofitted onto different suppor structures in order for the floatable transportation and installation structure to be used for more than one type of floating wind turbine and support structure respectively.
As mentioned before, the floatable transportation and installation structure therefore preferably comprises adapter means for securing different kinds of floating wind turbines to it for transportation and installation.
Preferably, the floatable transportation and installation structure is built as a modular structure comprising multiple parts and especiall frame-like partss having designs and dimensions such that they are attachable with each other and can be combined in various arrangements whereby the floatable transportation and installation structure can foe adapted for transportation and installation of different kinds of floating wind turbines, in this case, especially with regard to a frame structure and a lattice structure, different kinds of tubular elements, having different size and especially length can be used and attached together to build the floatable transportation and installation structure.
In other words, the proposed structure could be made more versatile especially by having a frame and tubular structure respectivel which would be suited to a modula design. The frames would usually be built specifically for the transport and installation of at least one special kind of fl oating wind turbine - after the have been used for the installation of one wind farm they would probably be saved for the next installation of exactl the same wind turbine or scrapped/recycled for other purposes.
ff the frames are mOduiar, they are adaptable to different wind turbines and TLP or similar suppor structures respectively. The horizontal and vertical length of such tubular steel and similar frame structures would for example easily be connected with connecting pieces whilst diagonal length would be made flexible by hinged connections to the horkon tal/vertical I engt .
Floating turbines require fixation means which allow them to be positioned in a. specific location. As mentioned previously, the TLP structure includes fixation means by which the floating wind turbine can be fixed at an offshore site. These TLP fixation means include tendons, tendon anchoring mea s,, catenary mooring lines, catenary mooring line anchorin means etc. Therefore, the floatable transportation and installation structure preferably comprises attachment means for some or the entire fixation means to be temporarily fixed to said structure during
transportation. In other words, the floatable transportation, and installation structure and/or the floating wind turbine comprise fixing means so that they can at least partly carry their own fixation means to the position where they are fixed to the sea bed. This provides an all-in-one installation system which is cheap and fast to install.
As mentioned before, the invention also relates to a floating wind turbine comprising counter securing means eonneetable to securing means of a floatable transportation and installation structure as mentioned before, in this regard all features disclosed in this specification are applicable to the floating wind turbine also.
The floating wind turbine preferably further comprises a floating support structure and at least one wind turbine arrangement attached to the floating support structure, wherein the floating support structure is not comprising ballasting and de-ballasting means and is especially not ballastable and de-ballastable by taking and/or ejecting water or similar ballast, means. Although transporting a floating turbine with a TLP support structure and installing and anchoring it at the designated site is complex and laborious, by use of the aforementioned floatable transportation and installation structure, easy transport and installation is possible, resulting in a very economical productio of wind turbines. Preferably- the floating wind turbine comprises attachment means for at least temporarily attaching some or all of the fixation means, by which the floating wind turbine can be fixed at an installation position offshore, during transportation to this position. When said floating support structure of the floating wind turbine comprises at least parts of a tension le platform type foundation further comprising tendons connected to tendon anchoring means and/or catenary mooring lines connected to mooring lines anchoring means, the floating wind turbine and especially the floating support structure preferably comprises attachment means of at least part of the anchoring means to be temporarily fixed to said wind turbine during transportation. As mentioned before with regard to the floatable transportation and installatio structure, such a floating wind turbine comprises attachment means to temporarily attach TLP or other fixation means, namely anchoring means, tendons or catenary mooring lines, etc., to attach them to the floating wind turbine during transport. Such an arrangement can therefore easily provide all necessar parts for fixation of the floating wind turbine to the sea bed.
Of course, these attachment means could also be provided for the attachment and transportation of other fixation means for the fixation of other floating wind turbines known from the state of the art.
As mentioned before, the invention also relates to a method for transportation and installation of an essentially fully assembled and erected floating wind turbine especially a floating wind turbine as- mentioned before comprising the following steps: securing the essentiall fully assembled and erected floating wind turbine to a floatable transportation and installation structure in such a way that the erected floating wind turbine is stabilized and can be moved by moving the transportation and installation structure; moving the floating wind turbine to a designated, position by moving the floatable transportation and installation structure to said desi nated position; securing the floating wind turbine to fixations means provided at the given position; detaching the transportation and installation structure from the now fixed floating wind turbine and separating it from the wind turbine.
Of course all other features mentioned in this .specification can be transferred to the method and are therefore included.
Preferably, the method for transportation and installation further comprises: ballasting the floatable transportation and installation structure in such a wa that the secured floating wind turbine is lowered further into the water; securing the lowered floating wind turbine to fixation means; separatin the lowered floatable transportation and installatio structure from the fixed floating wind turbine; and de-ballasting the floatable transportat on and installation structure in such a way that it is lifted in the water.
In a special embodiment the method for transportation and installation of the floating wind turbine comprises the steps that the transportation and installation structure and especially a frame is placed around the wind turbine and. especially around a tower of a wind turbine and preferably on top of the floating support structure of the same, using a gate or opening. The transportation and installation structure is then fixed to or onto the floating support structure with pre-existing fixing means, the floatable transportation and installation structure is connected to a tugboat or a similar transportation vessel and towed to the designated position, wherein the frame is supporting the wind turbine and preferably also the TLP support structures or similar fixation structures, e.g. anchoring means, connection lines or any other fixation means. The floatable transportation and installation structure is weighted further by ballasting, lowering the wind turbine so that the floating support structure is especially full submerged, the submerged support structure respectively is attached to the fixation means and especially the TLP structure arranged before, wherein the frame is the detached from the floating support structure, its ballasting is removed so that the frame rises and is then towed back, to the harbor or onshore assembly area for farther use.
The method preferabl also comprises the steps of detaching fixation means and especially TLP fixations means for fixation of the floating wind turbine offshore at the designated position from the floatable transportation and installation structure and/or the floating wind turbine and arranging them in such a way that they can be connected to the floating wind turbine for fixation of the same at the designated position.
Further specifications of the invention are disclosed by the sub claims.
The aforementioned features and other features and advantages of the invention will be more fully understood from the following detailed descriptio of certain embodiments of the invention, taken together with the accompanying drawings, which are meant to illustrate and not to limit the invention. The figures are schematically disclosing;
Pig, 1 a side view of one embodiment of a floating wind turbine comprisin a TLP support structure;
Pig. 2 top view of the floating wind turbine according to Figs. 3 - 9 one embodiment of a method for' transporting and installation of an offshore wind turbine according to the invention;
Figs. 10 - 17 another embodiment of a method for transporting and installation of an offshore wind turbine according to the invention;
Figs. 18 and 19 a top view of an embodiment of a floatable transportation and installation structure according to the invention;
Fig. 20 a to vie of an embodiment of a floatable transportation and installation structure according to the invention;
Fig, 21 a top view of an embodiment of a floatable transportation and installation structure according to the invention; Pigs. 22 and 23 a top view of an embodiment of a floatable transportation and installation structure according to the invention; and
Figs..24 - 26 views of an embodiment of a floatable
transportation and installation structure according to the invention.
In the following for similar parts the same reference signs are used, wherein indices are provided,, if necessary.
Figs. 1 and 2 are schematically depicting one embodiment of a floating wind turbine 1 anchored to the sea bed 23 by fixation means 28 provided as a TLP support structure,
The wind turbine 1 is a wind turbine known by the state of the art, namely a horizontal axis wind turbine comprising a tower.22, where a nacelle 26 is attached to. The nacelle comprises rotor blades 27 which are turned b wind for generating energy.
The arrangemen of tower 22, nacelle 26 and blades 27 are referred to as a wind turbine arrangement 21, This wind turbine
arrangement is essenti lly fully assembled in a harbor as no additional lifting means and especially offshore cranes are necessar to bring the wind turbine 1 in a ready- to-operate state.
The wind turbine arrangement 21 and especiall the tower 22 are attached to a floating support structure 24 providing buoyant forces to keep the wind turbine arrangement 21 in a sufficient operatio high above sea level 19 and water 20 respectively.
As known such a floatin wind turbine 1 is subjected to different movements and forces respectively due to weather and sea condition. The resulting movements are depicted in fig. 1 as well indicated by respectively arrows X, Y and Z for surge, sway and heave movement, and R, P and Y for rotational movements, namely roll, pitch and y aw respectively .
To carry the resulting loads, the provided fixation means 28 and especially the her used TLP support structure provides catenar mooring lines 34 anchored to mooring anchoring means 44 and tendons 82 anchored to tendon anchoring means 42, Both, the tendon anchoring means and the mooring anchoring means are concrete volumes lowered to the sea bed 23. As the floating wind turbine 1 is enforcing a buoyancy force FA against this fixation means 28, the floating wind turbine 1 is secured at a position even under strong weathers.
Figs. 3 - 9 are disclosing one method and arrangement for transportation and installati on of a wind turbine, for example a wind turbine .1 as shown before.
As described before, the floating wind turbine 1 comprises a tower 22, a nacelle 26, where rotor blades 27 are attached to. These parts constitute the wind turbine arrangement 21 which is attached to a floating support structure 24, Like shown in fig. 1 the floating support structure 24 provides buoyant forces FA to keep the floatin wind turbine 1 in a floating position.
However, as this floating wind turbine 1 is built to be fixed to the sea bed 23 by fixation means and especially by a TIP structure (see fig, 1), during transportation and especially in a non-fixed state it is unstable and therefore it normally cannot be transported in an erected and folly assembled way as shown in fig. 3 without any aid means,
According to the invention, therefore a floatable transportation and installation structure 2 is provided the essentially fully assembled and erected floating wind turbine 1 is attached to by use of securing means 4 provided at the floatable transportation and installation structure and counter securing means 36 provided at the wind turbine 1,
The floatable transportation and installation structure 2 is attached to the floating wind turbine 1 in such a way that the floating wind turbine 1 is stabilized and can be moved by moving the transportation and installation structure 2, Fo this movement, a tugboat 38 is provided which is connected to the arrangement of floatable transportatio and installation structure 2 and attached to floating wind turbin 1 b pulling means 39 and especially ropes or chains. As the floatable transportation and installation structure 2 provides additional buoyanc force, the erected and essentially fully assembled floating wind turbine 1 can be transported even under bad weather conditions n a safe and secure manner.
Like shown in figs. 3 and 4, the tugboat 38 pulls the arrangement of floatable, transportation and installation structure 2 and Boating wind turbine 1 to pre-arranged fixation means 28f which are built as a TLF support structure in this embodiment.
The fixation means 28 here comprise tendon anchoring means 42 and mooring anchoring means 44 lowered on the sea bed 28. Attached to the anchoring means 42 and 44 are tendons 82 and mooring lines 34
respectively. The tendons 82 and mooring lines 34 are held essentially e.g. at sea level or a required installation level by temporary buoyant means 46. In this embodiment the fixation means 28 has been arranged at the installation position of the floating wind turbine 1 b another tugboat (not shown) before the wind turbine 1 has been pulled to their installation position shown in fig. 4,
As can be seen in fig. 3. and 4, the arrangement, of floatable transportation and instaliation structure 2 and floating wind turbine 1 has been pulled b the tugboat 88 to the future installation position of the wind turbine .1. The floatable transportation and installation structure is thereby positioned on the top part 25 of the floating support structure 24 of the floating wind turbine .1 and secured to the tower 22 and/or the floating support structure 24, dependent on the provided securing means and counter securing means 4, 36.
Of course it is possible to attach the fl oatable support structure also to other parts of a floating wind turbine, especially when the turbine is a vertical axis turbine etc.
According to the combined buoyanc of the floatable
transportation and installation structure 2 and the floating support structure 24, the floatable transportation and installation structure comprises in fig, 3 and 4 floating depth d%.
As shown in fig. 5, after reaching the position where the floating wind turbine I has to be installed, the floating wind turbine I is going to be fixed to the fixation means 28 and especiall to the tendons 32 and catenary mooring lines 34, For this the floatable transportation and installation structure 2 is ballasted by, according to this embodiment, pumping ballas and especially water 20 into ballasting and de-ballasting floatin means 6. These ballasting means 6 are here provided as hollow chambers 14 and especially hollow tubes arranged within the frame structure 12 of the floatable transportation and installation structure 2. Preferably the floatable transportation and installation structure 2 and especially the "baliastable floating means 6 comprise valves or similar apertures for taking and, for de-ballasting purpose, especially for ejecting water.
According to fig, 5, by taking water the transportation and installation structure 2 is lowered to the floating depth ds > di thereby also lowerin the attached floating wind turbine I and their floating support structure 24, As art indicatory value, the floating depth cfe of a floating wind turbine 1 according to this embodiment is about 10 to 25 m and especially 15 t 20 m in this state of the installation process.
As can also be seen in fig. 5, according to the lowered floating depth of the floating support structure 24, the fixation means 28 and especially the tendons 32 and catenary mooring lines 34 can be easily attached to the floating support platform. For this reason the floating support structure 24 is lowered to such a depth that the fixation means and especially here the tendons 32 and the catenar mooring lines 34 can be attached without heavy normal forces acting on the tendons and the m ooring lines respectively, and especially lowered until at least parts of the fixation means 28 are slack. According to fig. 6, after the floating wind' turbine 1 and the floating support structure 24 respectively have bee attached to the fixation means 28 and the mooring lines 34 and the tendons 32 respectively, the floatable transportatio and installation structure 2 is detached from the floating wind turbine 1. For detaching the before mentioned■securing' means and counter securing means 4, 36 are loosened and the de-ba!!astable floating means 6 are de-ballasted, here by ejecting water. With regard to the fixation means 4; 36 it is also possible that the securing means 4; 36 are parts of a weldin or .-Similar connection, to be separated in this stage of the installation process e.g. by use of separating means like cutting or welding means etc.
As a result the floatable transportation and installation structure 2 lifts away from the now fixed floating support structure 24 of the wind turbine 1. whereby the floating wind turbine rises within the limit of a slacking fixation means 28 bringing them into tension resulting in a secure fixation of the wind turbine 1 within the water 20, he floatable
transportation and installation structure reaches a new floating depth da < ds
Figs. 7 - 9 are now di sclosing removal of the detached floatable transportation and installatio structure 2 according to fig. 6.
In the here disclosed embodiment the floatable transportation and installation structure 2 comprises a gate structure 10, here an openable gate, preferable controllable by an electronic control station (not disclosed). For example, the activation means 11 for opening and closing the gate 10 could be hydraulic, electrical or any other activation means as the}? are known, from the state of the art. Of course the activation means could also me manually controlled like snap bars, bolt connections etc.
In Fig, 7 the gate structure 10 is show in a closed state enclosing an accommodation area 8, the wind turbine 1, and here as a special embodiment the tower 22 is accommodated and especially protected against environmental forces. After opening the gate 10 (see fig. 8) the detached floatable transportation and installation structure 2 can be pulled away from the fixed floati ng wind turbine 1 without any need of li fting of the wind turbine and especially without any need of additional lifting means like cranes etc.
As shown in fig. 9, the tugboat 38 is again connected to the floatable transportation and installation structure 2. its gate structure 10 is closed and the tugboat pulls the floatable transportation and installation structure preferably to a new side of operation and especially to an onshore place where a new wind turbine to be installed' offshore is waiting for transportation. The installation and especially the fixation of the floating wind turbine 1 is finished.
Figs. 10 - 17 are disclosing a second embodiment and especially a second method of transportation and installation wind turbine 1. The basic arrangement of a floatable transportation and installation structure 2 attached to a floatable wind turbine 1 and especially on top 25 of a floating support structure 24 of this wind turbine 1 is identical to the before mentioned embodiment. Therefore, to the before passages is referred for the sake of clarity,
However, the disclosed arrangement and method respectively differs from the before mentioned in that at least parts of the fixation system 28 are now attached to the arrangement of floatable transportation and installation structure 2 and or the wind turbine 1 by provided
attachment means 29 during transport by the tugboat 38,
In this special embodiment tendon anchoring means 42 and mooring anchoring means 44 are attached to the floating support structure 24 of the floating wind turbine 1 during transport. Furthermore* it is possible to also attach the respective tendons 32 and catenary mooring lines 34 which are, however, not shown here in detail. Furthermore, it is of course possible to attach any other parts of the fixation means 28 during transport. After receiving the -designated installation positions (see fig. II and 12), the fixation means 28 are arranged so that the floating wind turbine 1 can be attached to. For example the anchoring means 44, 42 are lowered to the sea bed 23 and attached to mooring lines 34 and tendons 32. Again, temporarily buoyant means 46 are used, at least partly here, which of course could also have been connected to the floatable transportation and installation structure 2 or the floating wind turbine 1 during transport. Also, it is of course possible to transport these means on the tugboat etc.
As shown in fig, 12, in this embodiment the tendon anchoring mean 42 is lowered to the sea bed 23 by winches 33 arranged at the floatable transportation and installation structure 2. Of course, the winches could also be provided at the floating support structure 24,
As shown in fig, 13 after lowering the tendon anchoring means 42 to the sea bed 23, the floatable transportation and installation structure 2 is ballasted by taking water 20 into the hal!astafole floating means 8 and especially the hollow chambers 14 of the frame structure 12. The result is an increased floating depth d¾. In detail, the floating support structure 2 is lowered a bit below normal installation depth.
After lowering the anchoring means tendons 32 and catenary mooring lines 34 ar connected to the floating suppor structure 24.
As described before with regards to the first embodiment described and now again shown in figs. .14 - 17, the floatable transportation and installation structure 2 is detached from the floating wind turbine 1, the de-ballastabie floating means 6 are emptied, here e.g. by ejecting water 20, so that the floatable transportation and installation structure 2 lifts u to a floating depth ds (see fig. 14).
Preferably the detaching operation comprises the following steps; ballast water is pumped ou of the floatable transportation and installation structure 2 and especially out of the de-ballastabie floating means 6 until the floating wind turbine 1 reaches final installation position. Successively, the floatable transportation and installation structure 2 is detached from the floating wind turbine 1, wherein especially the securing and counter securing means 4, .36 are opened. "Finally^ extra ballast water is ejected from the cfo-baliasta e floating means β until the floatable transportation and installation structure 2 reaches required transportation depth- A ter that the floatable transportation and installation structure 2 is pulled away, as shown in figs, 15— 17, by performing identical steps as explained before in figs. 3 - 9,
Again, one side of the floatable transportation and installation structure 2 and here i this special embodiment a gate 10 is opened by use of hydraulic cylinders. As mentioned, also other activation means could be used. After opening the gate structure 10, the tugboat 38 pulls the floatable transport ion and installation structure.2 away from the floatin turbine 1. The gate structure 10 is being closed and the fl atable transportation and installation structure 2 is been towed back to port or another operation position.
Figs. 18 and 19 are disclosing another embodiment of a floatabie transportation and installation structure 2 also comprising a frame structure 12 and having a gate structure 10 on one side of the structure 2. Hydraulic, electrical or any other activation means 1.1 are used for opening and closing the gate structure 10. Of course the means 11 could also be provided as supporting means, as hydraulic dampers, wherein the gate- parts 10 are opened and closed manually,
Similar embodiments are disclosed by figs. 20 and 21, again constituted as a frame and lattice structure respectivel comprising three- angular form. Again, the floatable transportation and installation structure 2 comprises an accommodation area 8 for accommodating the .'floating wind turbine 1, wherein both embodiments comprising a gate structure 10 open and clog able by a hydraulic or other activator means 11, With the one embodiment disclosed in fig. 20, the activator means 11 is arranged on the outside of the accommodation area.8, wherein wit the embodiment according to fig. 21 it is arranged within the accommodation area.
The frame structure 12 could preferably generally be built i such a way that by use of different parts 16, 17, 10 and especially frame-like parts different sizes and/or geometries of the floatable transportation an d installation structure 2 can be provided. In such a way, different floating wind turbines 1 can be accommodated in the accommodating area and transported. Of course, it is possible for example to reduce the length of gate structure 10 or to provide adapted parts 16 and 17 for adapting the size and the kind of the floatable transportation and installatio structure 2,
Figs. 22 and 23 are disclosing another embodiment of a floatable transportation and installation structure similar to the embodiment of figs, 20 and 21. Here, the gate structure 10 is activated b an activation mean 11 provided as a yaw motor, a hydraulic motor etc.
By use of these different embodiments of the fl oatable transportation and installation structure and especially by building it. as a modular structure comprising multiple parts 16, 17 and especially frame- like parts 12 j being at least partially attachable with each other for adapting the floatable transportation and installation structure 2 for transportation and installatio of different kind of floating wind turbines, a. very effective and multi-purpose arrangement is provided.
Wherein the before mentioned embodiments are more focusing on the frame structure 12 of the floatable transportation and installation structure 2, figs. 24 ~ 26 are disclosing an embodiment of a floatable transportation and install atio structure 2, wherein especially the securing means 4 and counter securing means 36 are depicted.
Fig. 23 discloses a side view of a tower 2 of a floating wind turbine (not shown) attached to the floatable transportation and installation structure 2. 'The tower 22 comprises counte securing means 86 where securing means 4 of the floatable transportation and installation structure 2 can be attached to.
As ca be seen in fig. 25, the embodiment of the floatable transportation and installation structure is further specified by the fact that a gate structure 10 for enclosing and openin an accommodation area 8 is part of the securing means 4 too, activated by activator means IL
Preferably it is possible to provide a frame structures 48 of the securing means 4 as adapter means 30 so that they can be adapted to different nd of floating wind turbines and here especially towers 22,
Needless to say that also other adapter means especi ally fo connecting the floatable transportation and installation structure 2 to a floating wind turbine 1 and especially to their floatin support stracture 24 can be used.
'Reference signs
1 wind turbine
2 floatable transportation and installation struetur
4 securing means
6 bal!astable and de-ball astable floating means g accommodation area
1 gate structure
11 activation mean
12 lattice structure, frame stracture
14 hollo chambers
16 part
17 part
19 sea level
20 water
21 wind turbine arrangement 22 tower
23 sea bed
2:4 floating support structure
25 to part of floatin support structure 26 nacelle
27 rotor blades
28 fixation -means
29 attachment means
30 adapter means
32 tendon
33 winch
34 mooring line
36 counter securing means
38 tugboat
39 pulling means
42 tendon anchoring means
44 mooring anchoring means
46 tern porar buoyant means
48 frame structure
di floating depth
d2 floating depth
cfe floatin depth
FA buoyancy force
X surge
Y sway
Z heave
R roll
P pitch.
Y yaw

Claims

Claims
1. A floatable transportation and installation structure (2) for transportation and installation of an essentially fully assembled and erected floating wind turbine (1), wherein, said transportation and installation structure (2) comprises:
securing means (4) for especially detachably and temporarily securing the floatable transportation and instaiiation structure (2) to the erected floating wind turbine f 1) in. such a way that the floating wind turbine (1) is stabilized and can be moved b moving the transportatio and installation structure (2),
and an accommodation area (8) where the floating* wind turbine (1) can be accommodated in such a way that the floatable transportation and installation structure (2) is at least partiall enclosing the floating wind turbine { I),
characterized in that said transportation and installation structure (2) further comprises at least one opening-closing structure or similar gate structure (10) fo reversibly fully enclosing the accommodation area (8) around the secured floating wind turbine. (1).
2. A floatable transportation and installation structure accordin to claim 1. characterized in that it comprises hallastable and de-ballastable floating means (6) configured in such a way that the floating depth (d) of the floatable transportation and installation structure (2) is adaptable by ballasting and de-ballasting the floating means (6) respectively, and especially by taking water (20) and/or ejecting water respectively, in a situation where the floatable transportation and instaiiation structure (2) is secured to the floating wind turbine (!) and/or in a situation where it is separated from,
3. A floatable transportation and installation structure according to any of the precedin claims, characterized in that it is built in such a way that it is positionahle and or securabie at least partially on a top part (25) of the floating support structure (24),
4. A floatable transportation and installation structure according to any of the preceding claims, characterized in that it comprises a frame structure (12) and especially a lattice structure,
5. A floatable transportation and installation structure according to any of the preceding claims, characterized in that the floatable
transportation and installatio structure (2) and especially a frame structure (12) comprises hollow chambers (14) and especially tabular elements comprising the ballastabie and de-ball astable floating means (6X
6. A floatable transportatio and installation structure according to any of the preceding claims, eharaeterked in that it is reusable for transportation, and installation of multiple floating wind turbines,
7. A floatable transportation and installation structure accordin to any of the preceding claims, characterized in that it is build as a modular structure comprising multiple parts (18, 17) and especially frame-like parts, being at least partially attachable with each other for adapting the floatable transportation and installation structur (2) for transportation and installation of different kind of floating wind turbines (1).
8. A floatable transportation and installation structure accordin to an of the preceding claims, characterized in that it comprises adapter means (30) for securing different kind of floating wind turbines for transportation and installation.
9. A .floatable transportation and installation structure according to any of the preceding claims, ebaracterized in that it comprises attachment means (29) for at least temporarily attaching at least parts of fixation means (28 )t by which the floating wind turbine (1) can be fixed at an installation position offshore, during transportation to this position.
10. A floating wind turbine, comprising counter securing means (36) conneetable to securing means (4) of a floatable transportation and installation structure (2) according to an of the preceding cl aims.
11. A floating wind turbine according to claim 10, characterized in that
it comprises a floating support structure (24) and at least one wind turbine arrangement (21) attached to the floating support structure (24), wherein the floating support structure (24) is not comprising ballasting and de- ballasting rneans and is especially not ballastabie and de-haliastable by taking and/or ejecting water (20) or similar ballast means.
12. A floating wind turbine according to one of the claims 10 or 11, characterized in that it comprises attachment means (29) for at least temporarily attaching at least parts of fixation means (28), by which the floating wind turbine (1) can be fixed at an installation position offshore, during transportation to this position.
13. A method for transportation and installation of an almost fully assembled and erected floating wind turbine, comprising: seem ng the essentially fully assembled and erected floating wind turbine (1) to a floatable transportation and installation structure (2) at an accommodation area (8) of the floatable transportation and installation structure (2) in such a way that the erected floating wind turbine (1) is stabilized and can be moved by moving the transportation and installation structure (2) and wherein the floating wind turbine (1) is accommodated at the accommodation area (8) in such a way that the floatable transportation and installation structure (2) is at least partially enclosing the floating wind turbine and wherein the accommodation area (8) around the floating wind turbine is reversibly essentially fully enclosed by at least one opening- closing structure (10) or similar gate structure;
moving the floating wind turbine (1) to a designated position by moving the floatable transportation and installation structure (2) to said designated position;
securing the floating wind turbine (i) to fixations means (28) provided at the given position;
detaching the transportation and installation structure (2) from the now fixed floating wind turbine (1) and separating it from the wind turbine (1), wherein the opening-closing structure (10) or similar gate structure, which is essentially fully enclosing the accommodation area (8), is opened.
14. A method for transportation and installation according to claim
15, further comprising:
ballasting the floatable transportation and installation structure
(2) in such a wa that the attached floating wind turbine (1) is lowered further into the water (20);
securing the lowered floating wind turbine (1) to fixations means
(28); separating the lowered floatable transportation and installation structure. (2) from the fixed floating wind turbine (1); and
■de-ballasting the floatable transportation and installation structure (2) in such a way that it is lifted in the water (20).
15. A method for transportation and installation according to one of the claims 18 or 14, further comprising:
at least partly detaching and arranging fixation means (28), and especially TLP fixation means for fi xation of the floating wind turbine (1) at the designated offshore position, from the floatable transportation and installation structure (2) and/or the floating wind turbine in such a way that they can be connected to the floating wind turbine (1) for fixation of the floating wind turbine,
PCT/NL2013/050790 2012-11-06 2013-11-05 Floatable transportation and installation structure for transportation and installation of a floating wind turbine, a floating wind turbine and method for transportation and installation of the same WO2014073956A1 (en)

Priority Applications (7)

Application Number Priority Date Filing Date Title
DK13801867.6T DK2917097T3 (en) 2012-11-06 2013-11-05 EASY TRANSPORT AND INSTALLATION STRUCTURE FOR TRANSPORT AND INSTALLATION OF A LIQUID WIND TURBINE, A LIQUID WIND TURBINE AND METHOD FOR TRANSPORTING AND INSTALLING THE SAME
EP13801867.6A EP2917097B1 (en) 2012-11-06 2013-11-05 Floatable transportation and installation structure for transportation and installation of a floating wind turbine, a floating wind turbine and method for transportation and installation of the same
US14/440,624 US9523355B2 (en) 2012-11-06 2013-11-05 Floatable transportation and installation structure for transportation and installation of a floating wind turbine, a floating wind turbine and method for transportation and installation of the same
KR1020157015103A KR101753499B1 (en) 2012-11-06 2013-11-05 Floatable transportation and installation structure for transportation and installation of a floating wind turbine, a floating wind turbine and method for transportation and installation of the same
CN201380069507.6A CN105102317B (en) 2012-11-06 2013-11-05 Floatability transport and mounting structure, correlation technique and floatation type wind turbine
ES13801867.6T ES2620732T3 (en) 2012-11-06 2013-11-05 Installation and floating transport structure for installation and transport of a floating wind turbine, a floating wind turbine and a method for installation and transport of the same
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Cited By (8)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20180170490A1 (en) * 2015-06-26 2018-06-21 Single Buoy Moorings Inc. Floating wind turbine assembly, as well as a method for mooring such a floating wind turbine assembly
EP3392503A1 (en) * 2017-04-21 2018-10-24 Senvion GmbH System and process for loading/unloading a floating platform
CN113846665A (en) * 2021-10-15 2021-12-28 中国地质大学(武汉) Combined type offshore wind turbine foundation suitable for deepwater conditions and installation method thereof
WO2022098288A1 (en) * 2020-11-04 2022-05-12 Josok Ab Mooring system comprising buoys and anchors
WO2023156474A1 (en) * 2022-02-18 2023-08-24 Heerema Marine Contractors Nederland Se A method and system of installing a floating foundation, assembly of floating foundation and ballasting frame, and ballasting frame
NL2033898A (en) * 2022-02-18 2023-08-25 Heerema Marine Contractors Nl A method and system of installing a floating foundation, assembly of floating foundation and ballasting frame, and ballasting frame
NL2031010B1 (en) * 2022-02-18 2023-09-05 Heerema Marine Contractors Nl A method and system of installing a floating foundation, assembly of floating foundation and ballasting frame, and ballasting frame
US11858604B2 (en) 2020-09-16 2024-01-02 Ace E&T (Engineering & Technology) Method for installing offshore floating body for wind power generation

Families Citing this family (25)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE102013222081B4 (en) * 2013-10-30 2016-05-12 Gicon Windpower Ip Gmbh Floating in the open sea and connected by anchoring means anchoring structure for wind turbines, service stations or converter stations
DE102015121371B4 (en) * 2015-12-08 2018-11-15 Aerodyn Consulting Singapore Pte Ltd Offshore wind farm
ES2642177B1 (en) * 2016-05-13 2018-08-29 Esteyco Sap AUXILIARY FLOATING SYSTEM FOR THE INSTALLATION AND / OR TRANSPORTATION OF MARINE STRUCTURES AND PROCEDURE THAT INCLUDES SUCH SYSTEM.
US11173987B2 (en) * 2016-10-18 2021-11-16 Atkins Energy, Inc. Offshore floating structures
GB201617803D0 (en) 2016-10-21 2016-12-07 Seamach Ltd A floating ducted wind turbine and semi-submersible support platform
US10975541B2 (en) 2017-09-05 2021-04-13 Sofec, Inc. Offshore structure mating system and installation method
GB201719303D0 (en) * 2017-11-21 2018-01-03 Aep Group Ltd Tension leg buoy
KR101997165B1 (en) 2017-12-11 2019-07-08 한국건설기술연구원 Floating platform structure with three layered floating components, and construction method for the same
JP6969436B2 (en) * 2018-02-22 2021-11-24 株式会社Ihi How to install a water current generator
EP3849302B1 (en) * 2018-09-14 2022-06-22 Saulx Offshore Bottom-founded semi-submersible spar-type offshore fish farm and method of installing the same
NO346203B1 (en) * 2018-09-24 2022-04-19 Nat Oilwell Varco Norway As A method for installing an offshore wind turbine and a substructure for an offshore wind turbine
DK3899260T3 (en) * 2018-12-19 2024-01-08 Single Buoy Moorings FLOATING WIND TURBINE SUPPORT
TWI691646B (en) * 2018-12-20 2020-04-21 財團法人船舶暨海洋產業研發中心 Common undertaking platform for underwater base assembly and transportation
NO345344B1 (en) * 2019-05-21 2020-12-21 Ægir Harvest As Floating wind turbine platform
US10995734B2 (en) 2019-06-10 2021-05-04 Korea Electric Power Corporation. Vessel for transporting and installing offshore wind power generator
KR102200562B1 (en) * 2019-06-18 2021-01-08 울산대학교 산학협력단 Offshore transport method of floating wind power generator
KR102175782B1 (en) * 2019-07-19 2020-11-06 한국전력공사 Apparatus for supporting tower of offshore wind turbine, method for controlling thereof and vessel for transporting and installing of offshore wind turbine having thereof
CA3184473A1 (en) * 2020-05-22 2021-11-25 Sllp 134 Limited Disconnectable mooring system
US11867148B2 (en) 2021-02-15 2024-01-09 Trendsetter Vulcan Offshore, Inc. Delivery of a high volume of floating systems for wind turbines
CN113565694B (en) * 2021-07-13 2022-12-06 中国华能集团清洁能源技术研究院有限公司 Semi-submersible floating type fan, fan system and failure control method thereof
GB2623730A (en) * 2021-07-22 2024-04-24 Trendsetter Vulcan Offshore Inc Off-shore wind turbine system and method of installation
KR102564422B1 (en) * 2021-11-12 2023-08-09 한국해양과학기술원 detachable mooring system for offshore structures
CN114537604B (en) * 2022-01-13 2023-12-22 东北石油大学 Anchor-pulling type foundation platform of assembled FRP concrete combined rope pulling tower and construction method thereof
CN114455017A (en) * 2022-03-10 2022-05-10 中国电建集团华东勘测设计研究院有限公司 Floating body, floating type offshore transformer substation and installation method thereof
WO2023178075A2 (en) 2022-03-16 2023-09-21 Oil States Industries, Inc. Offshore column tension leg platform

Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2006038091A2 (en) * 2004-10-06 2006-04-13 Enertec Ag Construction of a submerged floating foundation
EP1666722A1 (en) * 2004-12-02 2006-06-07 Servicios de Ingenieria y Montaje, Alen, S.L. Fixing system for floating wind generators
GB2454585A (en) * 2007-11-09 2009-05-13 Freyssinet Method for the transport of a civil engineering structure in an aquatic medium
US20120183359A1 (en) * 2011-01-14 2012-07-19 The Glosten Associates, Inc. Installation method for water-submersible platforms and installation vessel
WO2012103796A1 (en) * 2011-01-31 2012-08-09 江苏道达海上风电工程科技有限公司 Vessel for transporting and installing wind turbine equipment and use of vessel

Family Cites Families (17)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2003066427A1 (en) * 2002-02-08 2003-08-14 Fred. Olsen Renewables Ltd. Vessel for installation of erect structures
GB2434823A (en) * 2006-02-06 2007-08-08 Engineering Business Ltd Transport and installation of offshore structures
US20100316450A1 (en) * 2007-12-21 2010-12-16 Vestas Wind Systems A/S Method for installing an offshore wind turbine and a barge system
FR2932771B1 (en) 2008-06-20 2010-06-04 Technip France STRUCTURE FOR TRANSPORTING AND INSTALLING AT SEA AT LEAST ONE WIND TURBINE OR HYDROLIENNE AND METHODS OF TRANSPORTING AND INSTALLING AT SEA AT LEAST ONE WINDMILL OR HYDROLIENNE.
JP5190329B2 (en) * 2008-11-11 2013-04-24 三井造船株式会社 Support floating body for tension mooring floating body, and towing method and installation method of tension mooring floating body using the same
US8613569B2 (en) * 2008-11-19 2013-12-24 Efficient Engineering, Llc Stationary positioned offshore windpower plant (OWP) and the methods and means for its assembling, transportation, installation and servicing
FR2948092B1 (en) * 2009-07-15 2015-01-23 Saipem Sa CATAMARAN-TYPE BOAT USEFUL FOR ASSEMBLY, TRANSPORT AND REMOVAL AT THE BOTTOM OF THE MARITIME WINDWATER SEA
CN105314069B (en) * 2009-09-04 2019-10-11 伊特雷科公司 Catamaran hull ship for offshore wind turbines installation
CN102079477A (en) * 2009-11-27 2011-06-01 三一电气有限责任公司 Fan holding and lifting device and mobile overwater operation platform
CN101927815B (en) * 2009-11-27 2012-10-17 华锐风电科技(集团)股份有限公司 Marine wind turbine generator system transporting and hoisting ship and transporting and hoisting method
DE102010009466A1 (en) * 2010-02-26 2011-09-01 Ed. Züblin Aktiengesellschaft Device for the transport and installation of a flat foundation comprehensive arrangement of an offshore wind turbine and method for transport and installation of such arrangement with flat foundation
WO2011110818A2 (en) * 2010-03-10 2011-09-15 W3G Marine Ltd Offshore structures and associated apparatus and methods
JP2011207446A (en) * 2010-03-30 2011-10-20 Mitsui Eng & Shipbuild Co Ltd Assistant floating body, method of towing floating body using the same, and method of installing floating body using the same
JP5565803B2 (en) 2010-06-30 2014-08-06 五洋建設株式会社 Installation method of tension mooring floating structure and ship for installation of tension mooring floating structure
JP5670128B2 (en) 2010-09-03 2015-02-18 清水建設株式会社 Floating structure for offshore facilities and construction method of offshore facilities
ES2444436T3 (en) * 2010-10-01 2014-02-25 Nordic Yards Holding Gmbh Ship and procedure to transport and place offshore structures
JP5838439B2 (en) 2011-03-25 2016-01-06 五洋建設株式会社 Installation method and removal method and structure of floating offshore wind turbine generator

Patent Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2006038091A2 (en) * 2004-10-06 2006-04-13 Enertec Ag Construction of a submerged floating foundation
EP1666722A1 (en) * 2004-12-02 2006-06-07 Servicios de Ingenieria y Montaje, Alen, S.L. Fixing system for floating wind generators
GB2454585A (en) * 2007-11-09 2009-05-13 Freyssinet Method for the transport of a civil engineering structure in an aquatic medium
US20120183359A1 (en) * 2011-01-14 2012-07-19 The Glosten Associates, Inc. Installation method for water-submersible platforms and installation vessel
WO2012103796A1 (en) * 2011-01-31 2012-08-09 江苏道达海上风电工程科技有限公司 Vessel for transporting and installing wind turbine equipment and use of vessel

Cited By (10)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20180170490A1 (en) * 2015-06-26 2018-06-21 Single Buoy Moorings Inc. Floating wind turbine assembly, as well as a method for mooring such a floating wind turbine assembly
US10661862B2 (en) * 2015-06-26 2020-05-26 Single Buoy Moorings Inc. Floating wind turbine assembly, as well as a method for mooring such a floating wind turbine assembly
EP3392503A1 (en) * 2017-04-21 2018-10-24 Senvion GmbH System and process for loading/unloading a floating platform
US11858604B2 (en) 2020-09-16 2024-01-02 Ace E&T (Engineering & Technology) Method for installing offshore floating body for wind power generation
WO2022098288A1 (en) * 2020-11-04 2022-05-12 Josok Ab Mooring system comprising buoys and anchors
CN113846665A (en) * 2021-10-15 2021-12-28 中国地质大学(武汉) Combined type offshore wind turbine foundation suitable for deepwater conditions and installation method thereof
CN113846665B (en) * 2021-10-15 2022-08-09 中国地质大学(武汉) Combined type offshore wind turbine foundation suitable for deepwater conditions and installation method thereof
WO2023156474A1 (en) * 2022-02-18 2023-08-24 Heerema Marine Contractors Nederland Se A method and system of installing a floating foundation, assembly of floating foundation and ballasting frame, and ballasting frame
NL2033898A (en) * 2022-02-18 2023-08-25 Heerema Marine Contractors Nl A method and system of installing a floating foundation, assembly of floating foundation and ballasting frame, and ballasting frame
NL2031010B1 (en) * 2022-02-18 2023-09-05 Heerema Marine Contractors Nl A method and system of installing a floating foundation, assembly of floating foundation and ballasting frame, and ballasting frame

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