IP Library Granted Patent US 8,410,624
Granted Patent B2
US 8,410,624 · App. 12/855,471 · Granted Apr 2, 2013

Wind energy installation with variable rotation speed characteristic

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Quick Facts
Patent No.
US 8,410,624
App. No.
12/855,471
Granted
Apr 2, 2013
Kind
B2
Abstract

A wind energy installation including a wind rotor, a doubly-fed asynchronous generator driven by the wind rotor, a converter, and a controller configured to determine an operating torque for an operating rotation-speed, the operating torque not exceeding a maximum torque. The installation also includes a frequency-adaptive torque limiter having a classifier—for an overfrequency or underfrequency, a torque shifter configured to reduce the maximum torque in the event of frequency discrepancies, and an inhibitor configured to block the torque shift at an underfrequency. The installation further includes a frequency-dependent rotation-speed limiter configured to interact with the classifier such that a lower limit rotation-speed is increased only at an overfrequency and an upper limit rotation-speed is reduced only at an underfrequency. Accordingly, the operating torque can be adapted with respect to the permissible limit values rather than over the entire operating range, thus minimizing yield losses when frequency discrepancies occur.

Claims (23)

1. A wind energy installation, comprising:

a wind rotor;

a doubly-fed asynchronous generator driven by the wind rotor;

a converter, the generator configured to interact with the converter;

a controller comprising a frequency-adaptive torque limiter and a frequency-dependent rotation-speed limiter, the controller configured to determine an operating torque for an operating rotation-speed, the operating torque not exceeding a maximum torque; and

signal lines connecting the controller with the rotor, the generator, and the converter such that the controller controls the rotor, the generator, and the converter,

the frequency-adaptive torque limiter having a classifier for an overfrequency or underfrequency, a torque shifter configured to reduce the maximum torque in the event of frequency discrepancies, and an inhibitor configured to block the torque shift at an underfrequency, and

the frequency-dependent rotation-speed limiter configured to interact with the classifier such that the frequency-dependent rotation-speed limiter increases a lower limit rotation-speed of the rotor via the signal lines only at an overfrequency and reduces an upper limit rotation-speed of the rotor via the signal lines only at an underfrequency.

2. The wind energy installation of claim 1 , further comprising a maximum torque element in the form of a characteristic element or a look-up table.

3. The wind energy installation of claim 1 , further comprising a rotation-speed modification element configured to generate a modified rotation-speed signal, which is changed by the frequency-discrepancy-dependent correction value from the actual operating rotation-speed, and which is applied to a rotation-speed-dependent maximum torque element configured to emit a maximum value for the rotation speed.

4. The wind energy installation of claim 3 , wherein the rotation-speed modification element is configured to interact with a frequency limiter, to whose input signals for a maximum permissible frequency a normal frequency and the actual frequency are applied.

5. The wind energy installation of claim 1 , wherein the classifier is designed such that the frequency-adaptive torque limiter is inactive when there is a discrepancy within a tolerance band.

6. A method for operating a wind energy installation having a wind rotor, a doubly-fed asynchronous generator driven by the wind rotor, a converter, a controller, and signal lines connecting the controller with the rotor, the generator, and the converter such that the controller controls the rotor, the generator, and the converter, wherein the generator is configured to interact with the converter, wherein an operating torque is determined in order to control the wind energy installation at an operating rotation-speed, the operating torque not exceeding a maximum torque, and wherein a grid frequency is determined, the method comprising:

determining a frequency discrepancy;

classifying the frequency discrepancy as an overfrequency or an underfrequency;

reducing a maximum torque as a function of the frequency discrepancy, with this reduction being suppressed at an underfrequency; and

limiting the rotation-speed as a function of the frequency discrepancy such that, when an over-frequency occurs, only the lower limit rotation-speed of the rotor is raised and, when an underfrequency occurs, only the upper limit rotation-speed of the rotor is reduced, the rotation-speed being raised and lowered, respectively, via the signal lines.

7. A method for operating a wind energy installation having a wind rotor, a doubly-fed asynchronous generator driven by the wind rotor, a converter, a controller, and signal lines connecting the controller with the rotor, the generator, and the converter such that the controller controls the rotor, the generator, and the converter, wherein the generator is configured to interact with the converter, wherein an operating torque is determined in order to control the wind energy installation at an operating rotation-speed, the operating torque not exceeding a maximum torque, and wherein a grid frequency is determined, the method comprising:

determining a frequency discrepancy;

classifying the frequency discrepancy as an overfrequency or an underfrequency;

reducing a maximum torque as a function of the frequency discrepancy, with this reduction being suppressed at an underfrequency; and

limiting the rotation-speed as a function of the frequency discrepancy such that, when an over-frequency occurs, only the lower limit rotation-speed of the rotor is raised and, when an underfrequency occurs, only the upper limit rotation-speed of the rotor is reduced, the rotation-speed being raised and lowered, respectively, via the signal lines,

wherein the frequency-adaptive torque limiter of claim 1 is used.

Assignments (8)
CHANGE OF ADDRESS Recorded Aug 31, 2023
From: SIEMENS GAMESA RENEWABLE ENERGY SERVICE GMBH
To: SIEMENS GAMESA RENEWABLE ENERGY SERVICE GMBH
Reel/Frame 064834/0873 →
CHANGE OF NAME Recorded Oct 20, 2022
From: SENVION DEUTSCHLAND GMBH
To: SIEMENS GAMESA RENEWABLE ENERGY SERVICE GMBH
Reel/Frame 064371/0624 →
CHANGE OF NAME Recorded Sep 16, 2022
From: SENVION GMBH
To: SENVION DEUTSCHLAND GMBH
Reel/Frame 061462/0567 →
CHANGE OF NAME Recorded Aug 3, 2022
From: SENVION AG
To: SENVION GMBH
Reel/Frame 061068/0001 →
CHANGE OF NAME Recorded Jul 18, 2022
From: SENVION SE
To: SENVION AG
Reel/Frame 060692/0328 →
CHANGE OF NAME Recorded Jan 23, 2015
From: REPOWER SYSTEMS SE
To: SENVION SE
Reel/Frame 034806/0074 →
CHANGE OF NAME Recorded Aug 20, 2013
From: REPOWER SYSTEMS AG
To: REPOWER SYSTEMS SE
Reel/Frame 031041/0935 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 25, 2010
From: KRUEGER, THOMAS
To: REPOWER SYSTEMS AG
Reel/Frame 025186/0375 →