WO2005021961A1 - A wind turbine for use offshore - Google Patents

A wind turbine for use offshore Download PDF

Info

Publication number
WO2005021961A1
WO2005021961A1 PCT/NO2004/000251 NO2004000251W WO2005021961A1 WO 2005021961 A1 WO2005021961 A1 WO 2005021961A1 NO 2004000251 W NO2004000251 W NO 2004000251W WO 2005021961 A1 WO2005021961 A1 WO 2005021961A1
Authority
WO
WIPO (PCT)
Prior art keywords
wind turbine
float
waves
wind
tower
Prior art date
Application number
PCT/NO2004/000251
Other languages
French (fr)
Inventor
Finn Gunnar Nielsen
Original Assignee
Norsk Hydro Asa
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 Norsk Hydro Asa filed Critical Norsk Hydro Asa
Priority to EP04775035.1A priority Critical patent/EP1680596B1/en
Priority to KR1020067004011A priority patent/KR101109810B1/en
Priority to US10/569,282 priority patent/US7456515B2/en
Priority to ES04775035T priority patent/ES2413008T3/en
Priority to CN2004800274114A priority patent/CN1856643B/en
Priority to CA2536475A priority patent/CA2536475C/en
Priority to JP2006524595A priority patent/JP4713476B2/en
Publication of WO2005021961A1 publication Critical patent/WO2005021961A1/en
Priority to NO20060883A priority patent/NO333187B1/en

Links

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
    • 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
    • F03D1/00Wind motors with rotation axis substantially parallel to the air flow entering the rotor 
    • 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
    • B63B35/44Floating 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
    • E02B2017/0091Offshore structures for wind turbines
    • 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
    • Y02EREDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
    • Y02E10/00Energy generation through renewable energy sources
    • Y02E10/30Energy from the sea, e.g. using wave energy or salinity gradient
    • 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 concerns a method and a device in connection with the use of a wind turbine offshore, comprising a wind turbine connected via a shaft to a generator, which is rotationally mounted on a tower, and a foundation underneath in the form of a float or buoyancy element on which the tower is mounted.
  • Wind turbines are increasingly being installed offshore, partly on account of space requirements and also to achieve optimally constant, exploitable wind conditions (higher mean speed, lower turbulence, thinner interface than on land). At present, they are mainly installed in shallow water where they can easily be placed on a foundation that stands on the sea-bed. Such installations require that sufficient shallow water areas are available. Along most of the coasts of the world and particularly along the coast of Norway, the water is generally too deep to allow wind turbines to be installed on the sea bed. The installation of wind turbines in shallow water can also cause problems for the vessels that are to carry out the installation. Most installation vessels will have a draught that is too great to allow them to operate in depths up to 10 m. For these reasons, the use of floating supporting structures is a relevant solution. To make this financially interesting, each turbine must have a high capacity, for example in the order of 5 MW. With such a large output and by exploiting the wind properties offshore, it is expected that floating supporting structures will be able to compete on energy price with land-based installations.
  • the prior art concepts for floating supporting structures are usually based on a single floating structure (for example a vertical column) that is anchored to the sea bed by means of vertical stays (tethers)
  • Other hull concepts are based on the technology for semi-submersible platforms. These have been specially developed to have favourable (small) motions in waves.
  • a common feature of most of these prior art wind turbine concepts is that the aim is to restrict the motion of the platform as much as possible.
  • they are designed so that they can withstand extreme sea conditions. The stricter the requirements made for the motion, the greater the forces experienced in an extreme situation. The combinations of these requirements are therefore expensive and contribute to prior art sea-based wind turbine solutions generally being unprofitable to date.
  • the present invention represents a method and a device in connection with an offshore-based wind turbine solution in which the mounting is simple and inexpensive, but which, at the same time, will be able to extract wave energy in addition to the wind energy
  • the method and the device in accordance with the present invention are characterised in that the float is anchored with mooring lines or stays (tethers) or is hinged to the sea bed, and, as a consequence of the effect of the waves on the float, the motion of the wind turbine will act as a damping mechanism for the motion and thus extract energy from the waves.
  • the wind turbine By exploiting the motion of the platform in the waves, the wind turbine will be able to produce more energy. This energy is thus extracted from the waves. The wind turbine will thus act as a damping mechanism for the motion and thus extract energy that would otherwise have been wasted. Both the pitch and sway motions will contribute in this process.
  • the amount of energy extracted from the waves dependents on how the blades of the wind turbine are controlled in relation to the instantaneous relative velocity of the wind , i.e. the pitch control of the wind turbine blades. If the pitch is kept constant, the thrust and power coefficients are approximately constant. On the other hand, if the pitch is controlled such that the thrust and power coefficients increase with increasing relative wind velocity, then the energy absorption from the waves will increase.
  • the maximum energy will be extracted from the waves if the system oscillates in resonance with the waves.
  • the radiation damping is equal to the linearized damping form the wind turbine, the maximum theoretical energy absorption is achieved.
  • the radiation damping is the damping that causes the creation of out-going waves in water when a structure is moving
  • the radiation damping is influenced by the geometrical design of the float or buoyancy element. It is mainly a function of the radius of the float. At a given frequency, the radiation damping in pitching (at head sea) is proportional to the fourth power of the radius of the float. The damping of the turbine is dependent on the average wind velocity, the radius of the turbine and the thrust coefficient.
  • the resonance period in pitching can be adjusted, for example by pumping ballast into and out of a tank. This will make it possible to adjust the centre of gravity of the platform and / or the tension in the tether, The tether tensionwill affect the resonance period for the system.
  • Fig. 1 shows a simple schematic diagram of a prior art wind turbine placed on the sea bed.
  • Fig. 2 shows a simple schematic diagram of a prior art, floating wind turbine moored to the sea bed.
  • Fig. 3 shows a simple schematic diagram of a wind turbine in accordance with the present invention, which is free to move in sway and pitch motion.
  • Figs. 4 - 7 show various curves associated with the output of the wind turbine, with and without the effect of waves, based on theoretical calculations.
  • a wind turbine 1 comprises, in rough outline as shown in Figures 1 - 3, a wind turbine 2 connected via a shaft (not shown) to a generator 3, which is rotationally mounted on a tower 4, and a supporting structure 5, 6, on which the tower is mounted.
  • Fig. 1 shows a traditional wind turbine in which the tower 4 is mounted on a fixed structure 5 on the sea bed
  • Fig. 2 shows a similar traditional wind turbine in which the tower is mounted on an immersed float or buoyancy device 6 that is anchored to the sea bed via mooring lines 7 and is consequently has very small motions .
  • the present invention is based on the theory that if the foundation is allowed to have positive buoyancy and relatively high motion in the horizontal plane is accepted, the mooring can be made simpler and the structure probably less costly, while it also offers the potential for increased energy production. In particular, such a solution will be able to produce greater output in situations with a moderate wind. If it is assumed that the waves generally come in the same direction as the wind, the wind turbine will move forwards and backwards due to the motion of the foundation (float) as shown in Fig. 3. This will result in a periodic motion of the wind turbine, alternately with and against the wind. As the power output of the turbine is roughly proportional to the cube of the relative speed between the wind turbine and the air. (This is valid for turbines with fixed pitch, however, the exponent will vary for turbines with variable pitch. This may either increased or reduce energy extraction from the waves, depending upon the regulation strategy), This will result in additional energy production. This additional energy is taken from the waves.
  • r (rho) is the density of the water
  • g is the acceleration of gravity
  • ⁇ A (Zeta) is the wave amplitude (regular mono-chromatic waves)
  • w (omega) is the wave frequency, assumed to be equal to the natural frequency of the pitch in this example
  • B ⁇ is the wave radiation damping in connection with resonance for the pitch motion
  • 5 (r) is the damping of the pitch motion on account of the wind force on the turbine
  • B ⁇ d is the additional damping on account of, for example, the wind force on the tower and viscous forces in the water.
  • C p and C ⁇ are respectively the power coefficient and thrust coefficient for the wind turbine.
  • the damping due to the wind force on the turbine is given by:
  • the turbines wind power coefficient C p has a theoretical maximum value of 16/27.
  • the corresponding value of the C ⁇ coefficient is 8/9.
  • p a is the density of the air
  • R is the diameter of the rotor
  • (z a - z r ) is the distance from the centre of the rotor to the centre of the pitch motion
  • U w is the wind speed onto the rotor.
  • Figure 4 shows a typical output curve for a land-based wind turbine of moderate size (600 kW). As the figure shows, this turbine only achieves maximum output at a wind speed of approximately 15 m/s and above. Offshore-based turbines will usually be designed for higher wind speeds. By utilizingthe system's dynamic properties actively, it will be possible to extract more energy at wind velocities of less than approximately 15 m/s.
  • Figure 5 shows a specific example of how much additional output can be achieved from a turbine at various wind speeds.
  • the broken curve shows the output achieved by exploiting both wind and waves.
  • the solid line shows the output when just wind is exploited.
  • a foundation with a radius of approximately 7 m and a draught of 120 m is used.
  • the rotor of the turbine has a radius of 40 m. This is equivalent to an offshore turbine with an output in the order of 5 MW.
  • the system has a pitch natural period of approximately 10 seconds.
  • the wave amplitude is proportional to the wind speed (0.5 metres wave amplitude at 5 m/s wind speed, increasing to 2 metres wave amplitude at 20 m/s wind speed) and that the system oscillates in resonance at approximately 10 seconds.
  • Figure 6 shows the relative increase in output from exploiting both wind and waves in relation to just wind (the black lines). At 6 m/s more than 25% extra power output is achieved when exploiting the wave energy in addition to the wind, compared to exploiting the wind alone.
  • the solid lines show how much of the wave power is extracted in relation to the theoretical maximum. For other details, please see the attachment.. In this example constant (fixed) thrust and power coefficients are used. By using pitch control the power will increase. A positive bi-effect of extracting energy from the waves is that the motions of the system are reduced.
  • Fig. 7 is shown the angle of response in pitching per meter wave amplitude for the system described above. The wave frequency is varied from 0.02Hz to 0.25Hz. A constant wind velocity of 15 m/sec is used.
  • the solid black line shows the response in waves without the interactionwith the wind, while the broken line shows the response when the interaction is included.

Abstract

A procedure and a device in connection with the use of a wind turbine offshore, comprising a wind turbine (2) connected via a shaft (not shown) to a generator (3), which is rotationally mounted on a tower (4), and a foundation underneath in the form of a float (6) on which the tower (4) is mounted. The float (6) is designed to be anchored so that it can move freely in the vertical plane via a mooring in the form of mooring lines, hinge or tether (7), whereby, as a consequence of the effect of the waves on the float, the motion of the wind turbine (2) will act as a damping mechanism on the motion and thus extract energy from the waves. The wind turbine's resonance period is adjusted by adjusting the platform's centre of gravity and/or the tension in the anchor (7) with which the wind turbine is attached to the sea bed.

Description

A wind turbine for use offshore
The present invention concerns a method and a device in connection with the use of a wind turbine offshore, comprising a wind turbine connected via a shaft to a generator, which is rotationally mounted on a tower, and a foundation underneath in the form of a float or buoyancy element on which the tower is mounted.
Wind turbines are increasingly being installed offshore, partly on account of space requirements and also to achieve optimally constant, exploitable wind conditions (higher mean speed, lower turbulence, thinner interface than on land). At present, they are mainly installed in shallow water where they can easily be placed on a foundation that stands on the sea-bed. Such installations require that sufficient shallow water areas are available. Along most of the coasts of the world and particularly along the coast of Norway, the water is generally too deep to allow wind turbines to be installed on the sea bed. The installation of wind turbines in shallow water can also cause problems for the vessels that are to carry out the installation. Most installation vessels will have a draught that is too great to allow them to operate in depths up to 10 m. For these reasons, the use of floating supporting structures is a relevant solution. To make this financially interesting, each turbine must have a high capacity, for example in the order of 5 MW. With such a large output and by exploiting the wind properties offshore, it is expected that floating supporting structures will be able to compete on energy price with land-based installations.
The prior art concepts for floating supporting structures are usually based on a single floating structure (for example a vertical column) that is anchored to the sea bed by means of vertical stays (tethers) Other hull concepts are based on the technology for semi-submersible platforms. These have been specially developed to have favourable (small) motions in waves. A common feature of most of these prior art wind turbine concepts is that the aim is to restrict the motion of the platform as much as possible. Moreover, they are designed so that they can withstand extreme sea conditions. The stricter the requirements made for the motion, the greater the forces experienced in an extreme situation. The combinations of these requirements are therefore expensive and contribute to prior art sea-based wind turbine solutions generally being unprofitable to date.
The present invention represents a method and a device in connection with an offshore-based wind turbine solution in which the mounting is simple and inexpensive, but which, at the same time, will be able to extract wave energy in addition to the wind energy
The method and the device in accordance with the present invention are characterised in that the float is anchored with mooring lines or stays (tethers) or is hinged to the sea bed, and, as a consequence of the effect of the waves on the float, the motion of the wind turbine will act as a damping mechanism for the motion and thus extract energy from the waves.
By exploiting the motion of the platform in the waves, the wind turbine will be able to produce more energy. This energy is thus extracted from the waves. The wind turbine will thus act as a damping mechanism for the motion and thus extract energy that would otherwise have been wasted. Both the pitch and sway motions will contribute in this process.
How much energy that can be extracted form the waves is dependent on several factors such as the design of the float (hull) or buoyancy element, mooring charecteristics and mass distribution, i.e. the dynamic properties of the float. Further, the amount of energy extracted from the waves dependents on how the blades of the wind turbine are controlled in relation to the instantaneous relative velocity of the wind , i.e. the pitch control of the wind turbine blades. If the pitch is kept constant, the thrust and power coefficients are approximately constant.. On the other hand, if the pitch is controlled such that the thrust and power coefficients increase with increasing relative wind velocity, then the energy absorption from the waves will increase.
The maximum energy will be extracted from the waves if the system oscillates in resonance with the waves. By designing the system such that the radiation damping is equal to the linearized damping form the wind turbine, the maximum theoretical energy absorption is achieved. (The radiation damping is the damping that causes the creation of out-going waves in water when a structure is moving)
The radiation damping is influenced by the geometrical design of the float or buoyancy element. It is mainly a function of the radius of the float. At a given frequency, the radiation damping in pitching (at head sea) is proportional to the fourth power of the radius of the float. The damping of the turbine is dependent on the average wind velocity, the radius of the turbine and the thrust coefficient.
However, energy can also be extracted from the waves when the float is oscillating at non-resonant frequencies The resonance period in pitching can be adjusted, for example by pumping ballast into and out of a tank. This will make it possible to adjust the centre of gravity of the platform and / or the tension in the tether, The tether tensionwill affect the resonance period for the system.
At low wind velocities in particular, when the turbine's rated power production is not achieved by the wind alone, the interaction with waves will induce additional energy production. At high wind speeds (and correspondingly high waves), it will be possible to adjust the system's natural period to avoid resonance and thus reduce motion. This will also make it possible to reduce the maximum loads on the system.
The present invention will be described in further detail in the following using examples and with reference to the figures, where:
Fig. 1 shows a simple schematic diagram of a prior art wind turbine placed on the sea bed.
Fig. 2 shows a simple schematic diagram of a prior art, floating wind turbine moored to the sea bed.
Fig. 3 shows a simple schematic diagram of a wind turbine in accordance with the present invention, which is free to move in sway and pitch motion.
Figs. 4 - 7 show various curves associated with the output of the wind turbine, with and without the effect of waves, based on theoretical calculations.
A wind turbine 1 comprises, in rough outline as shown in Figures 1 - 3, a wind turbine 2 connected via a shaft (not shown) to a generator 3, which is rotationally mounted on a tower 4, and a supporting structure 5, 6, on which the tower is mounted. Fig. 1 shows a traditional wind turbine in which the tower 4 is mounted on a fixed structure 5 on the sea bed, while Fig. 2 shows a similar traditional wind turbine in which the tower is mounted on an immersed float or buoyancy device 6 that is anchored to the sea bed via mooring lines 7 and is consequently has very small motions .
As indicated above, the present invention is based on the theory that if the foundation is allowed to have positive buoyancy and relatively high motion in the horizontal plane is accepted, the mooring can be made simpler and the structure probably less costly, while it also offers the potential for increased energy production. In particular, such a solution will be able to produce greater output in situations with a moderate wind. If it is assumed that the waves generally come in the same direction as the wind, the wind turbine will move forwards and backwards due to the motion of the foundation (float) as shown in Fig. 3. This will result in a periodic motion of the wind turbine, alternately with and against the wind. As the power output of the turbine is roughly proportional to the cube of the relative speed between the wind turbine and the air. (This is valid for turbines with fixed pitch, however, the exponent will vary for turbines with variable pitch. This may either increased or reduce energy extraction from the waves, depending upon the regulation strategy), This will result in additional energy production. This additional energy is taken from the waves.
The theoretical basis of the idea shows how the interaction between the wind and waves provides both increased energy production and reduced wave induced movements relative to the movements without such interaction. Maximum power form the waves is achieved when the resonance is exploited and when the damping due to wave diffraction is "tuned" to the damping due to the wind turbine. However, it should be added that resonance is not a requirement for the principle to work.
It seems inappropriate to go into the fundamental theoretical assessments and calculations with regard to the present invention. In the following, therefore, examples illustrating the present invention will just be shown.
To explain the present invention in further detail, it is easiest to assume a floating wind turbine in which the float or foundation consists of a vertical cylinder with a constant diameter as shown in Fig. 3. By adjusting the buoyancy, the weight and the position of the centre of gravity, it is possible to make the system move in resonance in virtually pure rotational motion (pitch) around a point between the water line and the sea bed. In theory, it is possible to show how much energy it is possible to extract from the waves and that it is optimal to have damping on account of the turbine effect that is equal to the damping from waves (this applies when there is resonance). The stay in the drawing shown in the figure may, in moderate depths of water, be replaced by a hinged connection between the platform and the sea bed. Alternatively, more conventional chain line anchoring may be used. The maximum mean output that can then be extracted from the waves at resonance is given by:
Figure imgf000008_0001
Where r (rho) is the density of the water, g is the acceleration of gravity, ζA (Zeta) is the wave amplitude (regular mono-chromatic waves), w (omega) is the wave frequency, assumed to be equal to the natural frequency of the pitch in this example, B^ is the wave radiation damping in connection with resonance for the pitch motion, 5,(r) is the damping of the pitch motion on account of the wind force on the turbine and B^d is the additional damping on account of, for example, the wind force on the tower and viscous forces in the water. Cp and Cτ are respectively the power coefficient and thrust coefficient for the wind turbine. The damping due to the wind force on the turbine is given by:
B^ = C o πR2(za -zr)2Uw
The turbines wind power coefficient Cp has a theoretical maximum value of 16/27. The corresponding value of the Cτ coefficient is 8/9. pa is the density of the air, R is the diameter of the rotor, (za - zr) is the distance from the centre of the rotor to the centre of the pitch motion and Uw is the wind speed onto the rotor. The maximum theoretical effect from the waves is achieved if B^ = 0 and B = 5r (r) . This maximum effect is given by: > rg% ex.wa _. 3 x — w
Figure 4 shows a typical output curve for a land-based wind turbine of moderate size (600 kW). As the figure shows, this turbine only achieves maximum output at a wind speed of approximately 15 m/s and above. Offshore-based turbines will usually be designed for higher wind speeds. By utilizingthe system's dynamic properties actively, it will be possible to extract more energy at wind velocities of less than approximately 15 m/s.
Figure 5 shows a specific example of how much additional output can be achieved from a turbine at various wind speeds. The broken curve shows the output achieved by exploiting both wind and waves. The solid line shows the output when just wind is exploited. In this example, a foundation with a radius of approximately 7 m and a draught of 120 m is used. The rotor of the turbine has a radius of 40 m. This is equivalent to an offshore turbine with an output in the order of 5 MW. The system has a pitch natural period of approximately 10 seconds. In the example, it is assumed that the wave amplitude is proportional to the wind speed (0.5 metres wave amplitude at 5 m/s wind speed, increasing to 2 metres wave amplitude at 20 m/s wind speed) and that the system oscillates in resonance at approximately 10 seconds.
Figure 6 shows the relative increase in output from exploiting both wind and waves in relation to just wind (the black lines). At 6 m/s more than 25% extra power output is achieved when exploiting the wave energy in addition to the wind, compared to exploiting the wind alone., The solid lines show how much of the wave power is extracted in relation to the theoretical maximum. For other details, please see the attachment.. In this example constant (fixed) thrust and power coefficients are used. By using pitch control the power will increase. A positive bi-effect of extracting energy from the waves is that the motions of the system are reduced. In Fig. 7 is shown the angle of response in pitching per meter wave amplitude for the system described above. The wave frequency is varied from 0.02Hz to 0.25Hz. A constant wind velocity of 15 m/sec is used. The solid black line shows the response in waves without the interactionwith the wind, while the broken line shows the response when the interaction is included.
It should be noted that the present invention as it is defined in the claims is not limited to the solution described above and shown in Fig. 3. The principle will also function for other geometries of the float than a vertical cylinder.

Claims

Claims
1. Method in connection with the use of wind turbines offshore, comprising a wind turbine (2) with blades connected via a shaft to a generator (3), which is rotationally mounted on a tower (4), and a foundation underneath in the form of a float) or hull (6) on which the tower (4) is mounted, characterised in that the float (6) floats freely and is moored via an anchor line, tether or link (7), whereby, as a consequence of the effect of the waves on the float, the motion of the wind turbine (2) will act as a damping mechanism on the motion and thus extract energy from the waves.
2. Method in accordance with claim 1 , characterised in that the wind turbine's resonance period is adjusted by adjusting the platform's centre of gravity and/or the tension in the tether (7) with which the floatis attached to the sea bed.
3. Method in accordance with claim 2, characterised in that the wind turbine's resonance period in pitch is adjusted by pumping ballast into and out of a tank in the float (6).
4. Method in accordance with claim 2, characterised in that the resonance period is changed by liquid or solid ballast being moved vertically in the float (6) or tower (4).
5. Method in accordance with the preceding claims 1 - 4 characterised in that the pitch of the blades of the wind turbine are controlled to achieve the proper damping effect which again cause energy extraction from the waves.
6. A device in connection with the use of a wind turbine offshore, comprising a wind turbine (2) connected via a shaft to a generator (3), which is rotationally mounted on a tower (4), and a foundation underneath in the form of a float (6) on which the tower (4) is mounted, characterised in that the float (6) is designed to be anchored so that it can move almost freely in the vertical plane, whereby, as a consequence of the effect of the waves on the float, the motion of the wind turbine (2) is designed to act as a damping mechanism on the motion and is thus able to extract energy from the waves.
7. A device in accordance with claim 6, characterised in that the wind turbine's resonance period is designed to be adjusted by adjusting the platform's centre of gravity and/or the tension in the tether (7) to which the float is anchored.
8. A device in accordance with claim 7, characterised in that the wind turbine's resonance period in pitch is designed to be adjusted by pumping ballast into and out of a tank in the float (6).
9. A device in accordance with claim 7, characterised in that the resonance period is changed by liquid or solid ballast being designed to be moved vertically in the float (6) or tower (4).
10. A device in accordance with claims 6-9 characterised in that the blades of the wind turbine is designed to be adjusted to control the blade pitch
PCT/NO2004/000251 2003-08-27 2004-08-20 A wind turbine for use offshore WO2005021961A1 (en)

Priority Applications (8)

Application Number Priority Date Filing Date Title
EP04775035.1A EP1680596B1 (en) 2003-08-27 2004-08-20 Offshore wind turbine
KR1020067004011A KR101109810B1 (en) 2003-08-27 2004-08-20 A wind turbine for use offshore
US10/569,282 US7456515B2 (en) 2003-08-27 2004-08-20 Wind turbine for use offshore
ES04775035T ES2413008T3 (en) 2003-08-27 2004-08-20 Offshore wind turbine
CN2004800274114A CN1856643B (en) 2003-08-27 2004-08-20 A wind turbine for use offshore
CA2536475A CA2536475C (en) 2003-08-27 2004-08-20 A wind turbine for use offshore
JP2006524595A JP4713476B2 (en) 2003-08-27 2004-08-20 Wind turbine used offshore
NO20060883A NO333187B1 (en) 2003-08-27 2006-02-22 Offshore wind mill

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
NO20033807A NO20033807D0 (en) 2003-08-27 2003-08-27 Wind turbine for offshore use
NO20033807 2003-08-27

Publications (1)

Publication Number Publication Date
WO2005021961A1 true WO2005021961A1 (en) 2005-03-10

Family

ID=28673139

Family Applications (1)

Application Number Title Priority Date Filing Date
PCT/NO2004/000251 WO2005021961A1 (en) 2003-08-27 2004-08-20 A wind turbine for use offshore

Country Status (10)

Country Link
US (1) US7456515B2 (en)
EP (1) EP1680596B1 (en)
JP (1) JP4713476B2 (en)
KR (1) KR101109810B1 (en)
CN (1) CN1856643B (en)
CA (1) CA2536475C (en)
ES (1) ES2413008T3 (en)
NO (2) NO20033807D0 (en)
PT (1) PT1680596E (en)
WO (1) WO2005021961A1 (en)

Cited By (14)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2008542630A (en) * 2005-06-06 2008-11-27 ノルスク・ヒドロ・アーエスアー Float wind turbine equipment
JP2009513881A (en) * 2005-11-01 2009-04-02 スタトイルハイドロ・アーエスアー A method for damping vibrations in towers of wind turbine installations.
WO2010021655A2 (en) * 2008-08-18 2010-02-25 Samuel Roznitsky Deep offshore floating wind turbine and method of deep offshore floating wind turbine assembly, transportation, installation and operation
WO2010122316A1 (en) * 2009-04-24 2010-10-28 Statoil Asa Extracting wave energy in a wind turbine installation
US8057127B2 (en) * 2009-12-14 2011-11-15 General Electric Company Systems and methods for assembling an offshore support system for use with a wind turbine
US8118538B2 (en) 2007-09-13 2012-02-21 Floating Windfarms Corporation Offshore vertical-axis wind turbine and associated systems and methods
EP2500911A2 (en) 2011-03-15 2012-09-19 Nexans Power umbilical cable
WO2013137744A1 (en) * 2012-03-13 2013-09-19 Ntnu Technology Transfer As Floating wind turbine with wave energy converter
EP2783975A1 (en) * 2013-03-28 2014-10-01 Alstom Renovables España, S.L. Floating offshore structures
US9777711B2 (en) 2010-11-25 2017-10-03 Alstom Renewable Technologies Method for reducing oscillations in offshore wind turbines
US10280901B2 (en) * 2014-12-17 2019-05-07 Hitachi, Ltd. Wind power generation system
WO2019106283A1 (en) 2017-11-29 2019-06-06 Saipem S.A. Floating support structure for offshore wind turbine and method for installing a wind turbine provided with such a support structure
CN109931226A (en) * 2017-12-15 2019-06-25 上海海事大学 A kind of vertical resistance-enlarging-type combined type marine windmill Bracing Systems
FR3139794A1 (en) 2022-09-21 2024-03-22 Saipem S.A. Floating support structure with multiple central columns for offshore wind turbine and method of assembling such a structure

Families Citing this family (42)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP2327873A1 (en) * 2006-04-28 2011-06-01 Swanturbines Limited Tidal current turbine
NO326491B1 (en) * 2007-05-31 2008-12-15 Lycro Creative Dev As Device at tidal power plants
GB0710822D0 (en) * 2007-06-05 2007-07-18 Overberg Ltd Mooring system for tidal stream and ocean current turbines
US8336388B2 (en) 2007-10-05 2012-12-25 National Oilwell Varco, L.P. Methods and structures for monitoring offshore platform supports
CN101946088A (en) * 2008-01-14 2011-01-12 单点系泊公司 Wave energy absorber
ES2433590T3 (en) * 2008-12-18 2013-12-11 Single Buoy Moorings Inc. Detachable marine wind turbines with pre-installed mooring system
EP2221474A1 (en) * 2009-02-20 2010-08-25 XEMC Darwind B.V. Offshore wind park
US20110027100A1 (en) * 2009-07-30 2011-02-03 Daniel Francis Cummane Mobile wind power station
CN101988469B (en) * 2009-08-06 2013-01-16 徐轶群 Wind power generation device of gas filling body
CA2770886C (en) 2009-09-09 2014-07-08 National Oilwell Varco, L.P. Method and apparatus for wind turbine erection
US8801330B2 (en) 2009-09-10 2014-08-12 National Oilwell Varco, L.P. Windmill installation system and method for using same
WO2011084530A2 (en) * 2009-12-16 2011-07-14 Clear Path Energy, Llc Floating underwater support structure
US9270150B2 (en) 2009-12-16 2016-02-23 Clear Path Energy, Llc Axial gap rotating electrical machine
CN102152841B (en) * 2010-03-04 2014-09-03 王晋 Vertically installed Spar-type floater for offshore wind generator and construction methods
US8689721B2 (en) * 2010-03-04 2014-04-08 Jin Wang Vertically installed spar and construction methods
JP2011251675A (en) * 2010-06-04 2011-12-15 Osaka Prefecture Univ Swing reducing device
US8022566B2 (en) * 2010-06-23 2011-09-20 General Electric Company Methods and systems for operating a wind turbine
KR101257425B1 (en) * 2010-10-14 2013-04-23 재단법인 포항산업과학연구원 Floating offshore wind power generation plant
US8829705B2 (en) * 2011-01-06 2014-09-09 Samuel Roznitsky Hydrodynamic stabilization of a floating structure
KR101044753B1 (en) * 2011-04-04 2011-06-27 (주)대우건설 Apparatus for correcting inclination of offshore wind power generation facility using internal compartment
KR101046648B1 (en) * 2011-04-04 2011-07-05 (주)대우건설 Marine wind power generation facility for automatically controlling movements in ultimate loads
CN102392796B (en) * 2011-10-11 2013-07-03 苏州市思玛特电力科技有限公司 Offshore suspension type wind generating set based on active balance control
KR101331896B1 (en) * 2012-01-13 2013-11-21 한국기계연구원 Floating Wind Power Generation Apparatus and Method for Buoyancy Compensating thereof
WO2013135291A1 (en) 2012-03-15 2013-09-19 Ocean Electric Inc. An offshore floating wind turbine for electric power generation
CN102606408B (en) * 2012-03-30 2014-08-13 广东省电力设计研究院 Wind generation set at sea
IN2015DN01268A (en) * 2012-07-26 2015-07-03 Vestas Wind Sys As
CN102785759B (en) * 2012-08-21 2015-05-13 江苏科技大学 Forerake type floating fan mooring system
FR2999662A1 (en) * 2012-12-18 2014-06-20 Ifp Energies Now OFFSHORE WIND TURBINE ON FLAX HOLDER DESAX
GB201223088D0 (en) * 2012-12-20 2013-02-06 Statoil Asa Controlling motions of floating wind turbines
ES2637142T3 (en) * 2013-04-30 2017-10-11 Acs Servicios, Comunicaciones Y Energia S.L. Submersible structure of active support for towers of generators and substations or similar elements, in maritime installations
US9317043B2 (en) * 2013-12-19 2016-04-19 Google Inc. Path based power generation control for an aerial vehicle
US9308975B2 (en) * 2013-12-30 2016-04-12 Google Inc. Spar buoy platform
US10208734B2 (en) 2015-04-23 2019-02-19 Continuum Dynamics, Inc. Lift-driven wind turbine with force canceling blade configuration
US10344742B2 (en) * 2015-04-23 2019-07-09 Continuum Dynamics, Inc. Hybrid vertical/horizontal axis wind turbine for deep-water offshore installations
US9650840B2 (en) 2015-04-27 2017-05-16 National Oilwell Varco, L.P. Method and apparatus for erecting a drilling rig
CN106089559B (en) * 2016-06-17 2018-09-14 江苏科技大学 Ocean wave energy energy and wind energy integrative power generator
FR3054522B1 (en) * 2016-07-26 2019-04-05 IFP Energies Nouvelles FLOATING SUPPORT COMPRISING A FLOAT AND A DAMPING PLATE WITH VARIABLE SECTION WITH DEPTH
US10557458B2 (en) 2016-11-30 2020-02-11 Makani Technologies Llc Integrated tether and mooring with floating platform for energy kite
US10309374B2 (en) 2016-12-01 2019-06-04 Makani Technologies Llc Energy kite winching using buoyancy
US10518876B2 (en) 2016-12-21 2019-12-31 Makani Technologies Llc Offshore wind kite with seafloor mooring
US11384736B1 (en) 2019-08-08 2022-07-12 Piasecki Aircraft Corporation Floating offshore wind turbine system, apparatus and method
EP3957851A1 (en) * 2020-08-17 2022-02-23 Siemens Gamesa Renewable Energy A/S Controlling a floating wind turbine at critical frequencies

Citations (9)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE3107252A1 (en) 1981-02-26 1982-09-09 Erno Raumfahrttechnik Gmbh, 2800 Bremen Floating wind-power installation
JPS61263892A (en) * 1985-05-16 1986-11-21 Mitsubishi Heavy Ind Ltd Wind power ship
WO2001034977A1 (en) * 1999-11-11 2001-05-17 Rinta Jouppi Yrjoe Method and system for installing and transporting an offshore wind power station at sea
WO2002052150A1 (en) 2000-12-22 2002-07-04 Beheersmaatschappij P. Buitendijk B.V. Mast construction and erection method for offshore installation
WO2003004869A1 (en) 2001-07-06 2003-01-16 Vestas Wind Systems A/S Offshore wind turbine with floating foundation
GB2378679A (en) 2001-08-16 2003-02-19 Technologies Ltd Ocean Floating offshore wind turbine
US20030170123A1 (en) * 2002-03-07 2003-09-11 William E. Heronemus Vertical array wind turbine
WO2003076800A2 (en) * 2002-03-08 2003-09-18 Ocean Wind Energy Systems Offshore wind turbine
WO2003098038A1 (en) * 2002-05-22 2003-11-27 Sway As A device for a wind power station placed in deep water

Family Cites Families (8)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPS56106071A (en) * 1980-01-26 1981-08-24 Kiichi Taga Power generating system totally utilizing wave power, tidal power, tidal current power and wind force in combination with sea bottom pumping power station
SU1668717A1 (en) * 1989-04-28 1991-08-07 В.А.Васильев Wave-and-wind driven installation
DE19744174A1 (en) 1997-10-07 1999-04-08 Otto Gerd Albrecht Air flow converter for generating electrical energy without harmful substances on ocean
RU2173280C2 (en) * 1998-05-07 2001-09-10 Дальневосточная государственная морская академия им. адмирала Г.И.Невельского Floating windmill-electric generating plant
WO2002010589A1 (en) 2000-07-27 2002-02-07 Christoffer Hannevig Floating structure for mounting a wind turbine offshore
DE10113409A1 (en) * 2001-03-20 2002-10-02 Helmut Heuer Wind and wave power system, stands on 3 or more pillars floating in sea bed, and has flotation tubes encased in base parts consisting of at least 3 independent units with 3 flushing line connections
ES2182702B1 (en) * 2001-06-01 2004-06-01 Felipe Prats Jove FLOATING PLANT TO PRODUCE ELECTRICAL ENERGY FROM THE SEA, COMBINED BY SWELL AND WIND THAT CAN BE SUBMERGED AND RECOVERED BEFORE A TEMPORARY.
NO324756B1 (en) * 2003-04-28 2007-12-10 Sway As Liquid wind turbine with stiffening system

Patent Citations (9)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE3107252A1 (en) 1981-02-26 1982-09-09 Erno Raumfahrttechnik Gmbh, 2800 Bremen Floating wind-power installation
JPS61263892A (en) * 1985-05-16 1986-11-21 Mitsubishi Heavy Ind Ltd Wind power ship
WO2001034977A1 (en) * 1999-11-11 2001-05-17 Rinta Jouppi Yrjoe Method and system for installing and transporting an offshore wind power station at sea
WO2002052150A1 (en) 2000-12-22 2002-07-04 Beheersmaatschappij P. Buitendijk B.V. Mast construction and erection method for offshore installation
WO2003004869A1 (en) 2001-07-06 2003-01-16 Vestas Wind Systems A/S Offshore wind turbine with floating foundation
GB2378679A (en) 2001-08-16 2003-02-19 Technologies Ltd Ocean Floating offshore wind turbine
US20030170123A1 (en) * 2002-03-07 2003-09-11 William E. Heronemus Vertical array wind turbine
WO2003076800A2 (en) * 2002-03-08 2003-09-18 Ocean Wind Energy Systems Offshore wind turbine
WO2003098038A1 (en) * 2002-05-22 2003-11-27 Sway As A device for a wind power station placed in deep water

Non-Patent Citations (1)

* Cited by examiner, † Cited by third party
Title
PATENT ABSTRACTS OF JAPAN vol. 011, no. 123 (M - 581) 17 April 1987 (1987-04-17) *

Cited By (29)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2008542630A (en) * 2005-06-06 2008-11-27 ノルスク・ヒドロ・アーエスアー Float wind turbine equipment
KR101170589B1 (en) 2005-06-06 2012-08-01 노르스크 히드로 아에스아 Floating wind turbine installation
CN102943743A (en) * 2005-11-01 2013-02-27 海文德股份公司 Method for damping tower vibrations in a wind turbine installation
JP2009513881A (en) * 2005-11-01 2009-04-02 スタトイルハイドロ・アーエスアー A method for damping vibrations in towers of wind turbine installations.
CN102943743B (en) * 2005-11-01 2014-10-15 海文德股份公司 Method for damping tower vibrations in a wind turbine installation
US8186949B2 (en) 2005-11-01 2012-05-29 Statoilhydro Asa Method for damping tower vibrations in a wind turbine installation
US8118538B2 (en) 2007-09-13 2012-02-21 Floating Windfarms Corporation Offshore vertical-axis wind turbine and associated systems and methods
WO2010021655A2 (en) * 2008-08-18 2010-02-25 Samuel Roznitsky Deep offshore floating wind turbine and method of deep offshore floating wind turbine assembly, transportation, installation and operation
WO2010021655A3 (en) * 2008-08-18 2010-05-14 Samuel Roznitsky Deep offshore floating wind turbine and method of deep offshore floating wind turbine assembly, transportation, installation and operation
US8169099B2 (en) 2008-08-18 2012-05-01 Samuel Roznitsky Deep offshore floating wind turbine and method of deep offshore floating wind turbine assembly, transportation, installation and operation
WO2010122316A1 (en) * 2009-04-24 2010-10-28 Statoil Asa Extracting wave energy in a wind turbine installation
US9702344B2 (en) 2009-04-24 2017-07-11 Hywind As Control method for a floating wind turbine
US8057127B2 (en) * 2009-12-14 2011-11-15 General Electric Company Systems and methods for assembling an offshore support system for use with a wind turbine
US9777711B2 (en) 2010-11-25 2017-10-03 Alstom Renewable Technologies Method for reducing oscillations in offshore wind turbines
EP2500911A2 (en) 2011-03-15 2012-09-19 Nexans Power umbilical cable
WO2013137744A1 (en) * 2012-03-13 2013-09-19 Ntnu Technology Transfer As Floating wind turbine with wave energy converter
WO2014154744A1 (en) * 2013-03-28 2014-10-02 Alstom Renovables España, S.L. Floating offshore structures
EP2783975A1 (en) * 2013-03-28 2014-10-01 Alstom Renovables España, S.L. Floating offshore structures
US10392082B2 (en) 2013-03-28 2019-08-27 Ge Renewable Technologies Wind B.V. Floating offshore structures
US10280901B2 (en) * 2014-12-17 2019-05-07 Hitachi, Ltd. Wind power generation system
WO2019106283A1 (en) 2017-11-29 2019-06-06 Saipem S.A. Floating support structure for offshore wind turbine and method for installing a wind turbine provided with such a support structure
EP3854673A1 (en) 2017-11-29 2021-07-28 Saipem S.A Method for installing an offshore wind turbine provided with a floating support structure
EP3854672A1 (en) 2017-11-29 2021-07-28 Saipem S.A Method for installing an offshore wind turbine provided with a floating support structure
EP3854670A1 (en) 2017-11-29 2021-07-28 Saipem S.A Method for installing an offshore wind turbine provided with a floating support structure
EP3854671A1 (en) 2017-11-29 2021-07-28 Saipem S.A Method for installing an offshore wind turbine provided with a floating support structure
EP3854669A1 (en) 2017-11-29 2021-07-28 Saipem S.A Method for installing an offshore wind turbine provided with a floating support structure
CN109931226A (en) * 2017-12-15 2019-06-25 上海海事大学 A kind of vertical resistance-enlarging-type combined type marine windmill Bracing Systems
FR3139794A1 (en) 2022-09-21 2024-03-22 Saipem S.A. Floating support structure with multiple central columns for offshore wind turbine and method of assembling such a structure
WO2024062177A1 (en) 2022-09-21 2024-03-28 Saipem S.A. Floating support structure with multiple central columns for an offshore wind turbine and method for assembling such a structure

Also Published As

Publication number Publication date
EP1680596A1 (en) 2006-07-19
CN1856643B (en) 2010-06-09
US7456515B2 (en) 2008-11-25
JP4713476B2 (en) 2011-06-29
NO333187B1 (en) 2013-03-25
ES2413008T3 (en) 2013-07-15
EP1680596B1 (en) 2013-04-17
KR20060120627A (en) 2006-11-27
CN1856643A (en) 2006-11-01
JP2007503548A (en) 2007-02-22
US20070040388A1 (en) 2007-02-22
CA2536475C (en) 2012-02-07
PT1680596E (en) 2013-06-24
CA2536475A1 (en) 2005-03-10
NO20033807D0 (en) 2003-08-27
NO20060883L (en) 2006-04-05
KR101109810B1 (en) 2012-02-24

Similar Documents

Publication Publication Date Title
US7456515B2 (en) Wind turbine for use offshore
AU2007322458B2 (en) Wave energy converter
EP1676029B1 (en) Power generation assemblies
US7541688B2 (en) Floating apparatus for deploying in marine current for gaining energy
CN102362068B (en) Offshore wind park
EP2376767B1 (en) System for producing energy through the action of waves
US10788010B2 (en) High capture efficiency wave energy converter with improved heave, surge and pitch stability
JP7130896B2 (en) floating platform
JP2002285951A (en) Floating type foundation structure for marine wind power generation
CN207089600U (en) Can be from the tension leg type offshore floating wind turbine foundation of floating installation
EP0767876B1 (en) Offshore wind-/wave-energy converter
EP3790793B1 (en) High capture efficiency wave energy converter with improved heave, surge and pitch stability
JP2002285952A (en) Floating type foundation structure for marine wind power generation
CN115539313A (en) Carry on semi-submerged formula hull of marine turbogenerator
AU751252B2 (en) Wave energy conversion method and apparatus
TW201943952A (en) Floating vertical-axis wind turbine with twin turbines and mechanical coupling

Legal Events

Date Code Title Description
WWE Wipo information: entry into national phase

Ref document number: 200480027411.4

Country of ref document: CN

AK Designated states

Kind code of ref document: A1

Designated state(s): AE AG AL AM AT AU AZ BA BB BG BR BW BY BZ CA CH CN CO CR CU CZ DE DK DM DZ EC EE EG ES FI GB GD GE GH GM HR HU ID IL IN IS JP KE KG KP KR KZ LC LK LR LS LT LU LV MA MD MG MK MN MW MX MZ NA NI NO NZ OM PG PH PL PT RO RU SC SD SE SG SK SL SY TJ TM TN TR TT TZ UA UG US UZ VC VN YU ZA ZM ZW

AL Designated countries for regional patents

Kind code of ref document: A1

Designated state(s): BW GH GM KE LS MW MZ NA SD SL SZ TZ UG ZM ZW AM AZ BY KG KZ MD RU TJ TM AT BE BG CH CY CZ DE DK EE ES FI FR GB GR HU IE IT LU MC NL PL PT RO SE SI SK TR BF BJ CF CG CI CM GA GN GQ GW ML MR NE SN TD TG

121 Ep: the epo has been informed by wipo that ep was designated in this application
DPEN Request for preliminary examination filed prior to expiration of 19th month from priority date (pct application filed from 20040101)
WWE Wipo information: entry into national phase

Ref document number: 2004775035

Country of ref document: EP

ENP Entry into the national phase

Ref document number: 2536475

Country of ref document: CA

WWE Wipo information: entry into national phase

Ref document number: 2006524595

Country of ref document: JP

Ref document number: 1020067004011

Country of ref document: KR

WWP Wipo information: published in national office

Ref document number: 2004775035

Country of ref document: EP

WWE Wipo information: entry into national phase

Ref document number: 2007040388

Country of ref document: US

Ref document number: 10569282

Country of ref document: US

WWP Wipo information: published in national office

Ref document number: 1020067004011

Country of ref document: KR

WWP Wipo information: published in national office

Ref document number: 10569282

Country of ref document: US