IP Library › Granted Patent US 11,988,192
Granted Patent B2
US 11,988,192 · App. 17/599,215 · Granted May 21, 2024

Wind turbine with sea level wave characteristic determination

Inventors: Eirik Nagel (Flensburg, DE); John Nieuwenhuizen (Horsens, DK)
Assignee: Siemens Gamesa Renewable Energy A/S
F03D13/25F03D17/00G01S13/9064G01S13/956H01Q1/34H01Q13/20B63B2035/446F05B2240/95F05B2270/30
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Quick Facts
Patent No.
US 11,988,192
App. No.
17/599,215
Granted
May 21, 2024
Kind
B2
Abstract

A wind turbine which is configured to be disposed in or above a sea floor is provided. The wind turbine includes a tower configured to protrude from a sea level and having a transmitter configured to transmit an electromagnetic wave to be reflected on the sea level and a receiver configured to receive the reflected electromagnetic wave, wherein at least one of the transmitter and the receiver includes a leaky feeder; and a processing unit being in communication with the receiver and configured to analyse the reflected electromagnetic wave such that a wave characteristic of the sea level is determined.

Claims (36)

1. A wind turbine which is configured to be disposed in or above a sea floor, the wind turbine comprising:

a tower configured to protrude from a sea level and having a transmitter configured to transmit an electromagnetic wave to be reflected on the sea level and a receiver configured to receive the reflected electromagnetic wave, wherein at least one of the transmitter and the receiver includes a leaky feeder; and

a processing unit being in communication with the receiver and configured to analyse the reflected electromagnetic wave such that a wave characteristic of the sea level is determined,

wherein the processing unit is configured to use the Bragg's law 2d·cos θ=n·λ in determining the wave characteristic, wherein

d is a distance between two wave peaks of the sea level,

θ is a scattering angle of the reflected electromagnetic wave with respect to a horizontal (H),

λ is a wavelength of the electromagnetic wave, and

n is a positive integer.

2. The wind turbine according to claim 1 , wherein

the leaky feeder is shaped as an arc extending around a circumference of the tower.

3. The wind turbine according to claim 1 , wherein

the transmitter comprises a first leaky feeder and the receiver comprises a second leaky feeder.

4. The wind turbine according to claim 1 , wherein

the processing unit is configured to determine at least one of a wind speed, a wind direction, a wind forecast and a ship approximation condition from the determined wave characteristic of the sea level, wherein the ship approximation condition is a condition that allows a ship to approximate or dock at the wind turbine.

5. The wind turbine according claim 4 , wherein

the processing unit is configured to determine the ship approximation condition from the determined wave characteristic of the sea level and from a load of the ship.

6. The wind turbine according to claim 1 , wherein

the processing unit is configured to determine a target distance between the wind turbine and a ship from the determined wave characteristic of the sea level.

7. A method of determining a wave characteristic of a sea level, the method comprising the following steps:

providing a tower of a wind turbine, which protrudes from a sea level, with a transmitter configured to transmit an electromagnetic wave to be reflected on the sea level and a receiver configured to receive the reflected electromagnetic wave, wherein at least one of the transmitter and the receiver comprises a leaky feeder;

analysing the reflected electromagnetic wave; and

determining a wave characteristic of the sea level based on the analysed, reflected electromagnetic wave,

wherein the wave characteristic is determined by use of the Bragg's law 2d·cos θ=n·λ in determining the wave characteristic, wherein

d is a distance between two wave peaks of the sea level,

θ is a scattering angle of the reflected electromagnetic wave with respect to a horizontal (H),

λ is a wavelength of the electromagnetic wave, and

n is a positive integer.

8. The method according to claim 7 , further comprising a step of:

determining at least one of a wind speed, a wind direction, a wind forecast and a ship approximation condition from the determined wave characteristic of the sea level, wherein the ship approximation condition is a condition that allows a ship to approximate or dock at the wind turbine.

9. The method according to claim 8 , wherein

the ship approximation condition is determined from the determined wave characteristic of the sea level and from a load of the ship.

10. The method according to claim 7 , further comprising a step of:

determining a target distance between the wind turbine and the ship from the determined wave characteristic of the sea level.

11. The method according to claim 7 , wherein signals for the wave characteristics are directly measured by radar to obtain a 360° image around the wind turbine and/or its support structure.

12. The method according to claim 11 , wherein the radar is one of synthetic aperture radar, SAR, and inverse synthetic-aperture radar, ISAR, algorithms.

13. The method according to claim 7 , wherein a software defined radar, SDR, is used.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 16, 2022
From: NAGEL, EIRIK; NIEUWENHUIZEN, JOHN
To: SIEMENS GAMESA RENEWABLE ENERGY A/S
Reel/Frame 059027/0570 →
Priority Claims (1)
EP 19166600 · Apr 1, 2019 · regional
Continuity (1)
Related Publication 20220178350A1 · Jun 9, 2022