IP Library Granted Patent US 9,972,993
Granted Patent B2
US 9,972,993 · App. 15/033,724 · Granted May 15, 2018

System and method for controlling wind power generation systems

Inventors: Rajni Kant Burra (Bangalore, IN); Victor Robert Abate (Schenctady, NY); David Cole Magnuson (Greenville, SC); Keith Longtin (Schenectady, NY)
Assignee: GENERAL ELECTRIC COMPANY
H02H7/067F03D9/255H02J3/38H02J3/386H02P9/006H02P9/007H02P9/107Y02E10/726Y02E10/763
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Quick Facts
Patent No.
US 9,972,993
App. No.
15/033,724
Granted
May 15, 2018
Kind
B2
Abstract

An electrical system for controlling a wind turbine is provided. The electrical system includes a first resistive element, a storage element and a controller. The first resistive element and the storage element are coupled to a DC link of the wind turbine. The controller is used for switching between the first resistive element and the storage element in response to a grid side fault condition to minimize mechanical loads induced by the grid side fault condition.

Claims (22)

1. An electrical system for controlling a wind turbine comprising a rotor and a stator, comprising:

a rotor side converter;

a line side converter;

a DC link coupling the rotor side converter and the line side converter;

a first resistive element and a storage element coupled by a first switch to the DC link;

second resistive elements which are connected in parallel with a second switch and are coupled between windings of the stator and a point of common coupling with an output of the line side converter; and

a controller configured for:

estimating a peak electromagnetic torque in the wind turbine;

when the estimated peak electromagnetic torque is not greater than a threshold value, setting the second switch so as to bypass the second resistive elements and couple windings of the stator to the point of common coupling, and setting the first switch for using at least one of the first resistive element or the storage element for controlling steady state oscillations of the wind turbine; and

when the estimated peak electromagnetic torque is greater than the threshold value, setting at least one of the following actions: setting the second switch so as to enable the second resistive elements to absorb electromagnetic torque from the stator, or setting the first switch for using at least one of the first resistive element or the storage element for absorbing electromagnetic torque from the rotor.

2. The electrical system of claim 1 , further comprising a DC chopper coupled to the first resistive element, the storage element, and the DC link.

3. The electrical system of claim 1 , wherein the first resistive element comprises a resistor and the storage element comprises a battery.

4. A wind turbine comprising the electrical system recited in claim 1 .

5. The wind turbine of claim 4 , further comprising a DC chopper coupled to the first resistive element, the storage element and the DC link.

6. The wind turbine of claim 4 , wherein the first resistive element comprises a resistor and the storage element comprises a battery.

7. A method for controlling a wind turbine comprising a rotor, a stator, a rotor side converter, a line side converter, a DC link coupling the rotor side converter and the line side converter, a first resistive element and a storage element coupled by a first switch to the DC link, and second resistive elements which are connected in parallel with a second switch and are coupled between windings of the stator and a point of common coupling with an output of the line side converter, the method comprising:

estimating a peak electromagnetic torque in the wind turbine;

when the estimated peak electromagnetic torque is not greater than a threshold value, setting the second switch so as to bypass the second resistive elements and couple windings of the stator to the point of common coupling, and setting the first switch for using at least one of the first resistive element or the storage element for controlling steady state oscillations of the wind turbine; and

when the estimated peak electromagnetic torque is greater than the threshold value, setting at least one of the following actions: setting the second switch so as to enable the second resistive elements to absorb electromagnetic torque from the stator, or setting the first switch for using at least one of the first resistive element or the storage element for absorbing electromagnetic torque from the rotor.

8. The method of claim 7 , further comprising, prior to estimating the peak electromagnetic torque, detecting a grid side fault condition.

9. The method of claim 8 , wherein detecting the grid side fault condition comprises obtaining a rotor speed and computing a rate of change of rotor speed.

10. The method of claim 9 , further comprising comparing the rate of change of rotor speed with a predetermined threshold and classifying between the grid side fault condition and a wind gust event based on the comparison.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 17, 2023
From: GENERAL ELECTRIC COMPANY
To: GE INFRASTRUCTURE TECHNOLOGY LLC
Reel/Frame 065727/0001 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 24, 2017
From: BURRA, RAJNI KANT; ABATE, VICTOR ROBERT; MAGNUSON, DAVID COLE; LONGTIN, KEITH
To: GENERAL ELECTRIC COMPANY
Reel/Frame 041717/0380 →
Continuity (1)
Related Publication 20160285252A1 · Sep 29, 2016