This application claims the benefit of Spanish Patent Application No. P201100577 filed on May 24, 2011, the contents of which are incorporated herein by reference.
The invention relates to wind turbine control methods and systems and in particular to wind turbine control methods and systems for low height sites at cold climate conditions.
As wind turbine control systems are initially designed for standardized environmental conditions they can be improved to cope with non-standard conditions related for instance to wind speed and turbulence intensity in connection with a variety of objectives such as increasing the power production or avoiding excessive loads.
It is known in this respect to take into account other meteorological variables in the operation of wind turbines such as the air pressure or the air temperature as disclosed, for instance, in US 2009/0295160 and US 2010/00320761.
However there are not known wind turbine control systems addressed specifically to sites combining low temperature with low height which are susceptible of having higher air density than usual and where therefore certain increase on wind turbine loading can be expected.
As there are a great number of wind turbines installed in such type of sites and a great number of potential sites of said type for wind turbines it is desirable to have wind turbine control methods and systems solving the loading problems raised in them because, on the one hand, those known method and systems having means for controlling wind turbine loads are not generally well adapted to said type of sites and, on the other hand, are not easily applicable to already installed wind turbines without load measuring devices.
The present invention is therefore addressed to the attention of said demand.
It is an object of the present invention to provide wind turbine control methods and systems adapted to the needs of wind turbine sites combining low temperature with low height.
In one aspect this and another objects is met by a method for the operation of a variable-speed wind turbine having pitch and torque control means that include additional steps for providing to the torque control means, in case of an environmental situation where the air density ρ is greater than a predetermined value ρref, a reduced nominal generator speed Ωnr, instead of the rated nominal generator speed Ωn, which is determined dynamically as a function of at least the air pressure Pr, the temperature T and the wind speed V for decreasing the wind turbine loading.
In embodiments of the present invention, the determination of said reduced nominal generator speed Ωnr comprises steps of: calculating dynamically the air density ρ; obtaining a reduction parameter P depending on the value of the air density ρ; obtaining a reduction factor F as a function of said reduction parameter P and of the wind speed V; applying said reduction factor F to the nominal generator speed Ωn. Therefore the reduced nominal generator speed Ωnr is made dependant of the air density ρ and of the wind speed V in a way that takes into account its combined influence on the wind turbine loading.
In embodiments of the present invention the wind speed V is measured at the wind turbine and the temperature T and the air pressure Pr can be measured at the wind turbine and/or outside the wind turbine (for example in the wind park to which the wind turbine belongs). As the air pressure Pr is only dependant of the height its value can also be stored as a data at the storing means of the wind turbine control system. Having available more than one source for the values of the temperature T and the air pressure Pr prevents failures in any of them. Therefore the implementation of the additional regulation according to the present invention is done using signals easily available at the wind turbine which allows a simple and robust implementation of said additional regulation.
In embodiments of the present invention said predetermined value ρref is 1,225 kg/m3. The additional regulation according to the invention is therefore implemented when the air density reaches a value that overloads a significant proportion of wind turbine models.
In embodiments of the present invention the reduced nominal generator speed Ωnr is comprised between the 70-99.9% of the rated nominal generator speed Ωn. The additional regulation according to the invention provides therefore the load reduction needed in the above-mentioned environmental condition with a reasonable reduction of the nominal generator speed.
In another aspect, the above mentioned objects are met by a wind turbine control system connected to measuring devices of at least the generator speed Ω, the pitch angle θ, the temperature T and the wind speed V, and to at least to pitch and torque control actuators, the control system being arranged for performing a regulation of the wind turbine according to a predetermined Power vs. Generator speed curve with a nominal generator speed Ωn; the control system being also arranged for performing an additional regulation when the air density ρ is greater than a predetermined value ρref according to a Power vs. Generator speed curve with a reduced nominal generator speed Ωnr, which is determined dynamically as a function of at least the air pressure Pr, the temperature T and the wind speed V, for decreasing the wind turbine loading.
In embodiments of the present invention the arrangement for performing said additional regulation comprises a module for obtaining said reduced nominal generator speed Ωnr, the module comprising: a first sub-module for calculating dynamically the air density ρ as a function of the pressure Pr and the temperature T; and a second sub-module for obtaining the reduced nominal generator speed Ωnr applying a reduction factor F to the nominal generator speed Ωn, said reduction factor F being calculated as a function of a reduction parameter P, depending on the value of the air density ρ, and of the wind speed V. Therefore the additional regulation can be easily implemented in the wind turbine control system.
In embodiments of the present invention, the wind turbine control system is also connected to a measuring device of the air pressure Pr. On the other side the measuring devices of the air pressure Pr and the temperature T can be placed at the wind turbine or outside the wind turbine (for example in the wind park to which the wind turbine belongs). Therefore the wind turbine control system has redundant means for providing the inputs to the additional regulation.
A wind turbine comprising the above-mentioned control system is also covered by the scope of the present invention.
Other features and advantages of the present invention will be understood from the following detailed description of illustrative and by no means limiting embodiments of its object in relation with the enclosed drawings.
A typical wind turbine 11 comprises a tower 13 supporting a nacelle 21 housing a generator 19 for converting the rotational energy of the wind turbine rotor into electrical energy. The wind turbine rotor comprises a rotor hub 15 and, typically, three blades 17. The rotor hub 15 is connected either directly or through a gearbox to the generator 19 of the wind turbine for transferring the torque generated by the rotor 15 to the generator 19 and increase the shaft speed in order to achieve a suitable rotational speed of the generator rotor.
The power output from a modern wind turbine is typically controlled by means of a control system for regulating the pitch angle of the rotor blades and the generator torque. The rotor rotational speed and power output of the wind turbine can hereby be initially controlled e.g. before a transfer to a utility grid through a converter.
The basic aim of the methods of operation of variable speed wind turbines is to achieve an operation at the ideal aerodynamic output for as much time as possible.
As it is known, the kinetic energy associated with the incoming wind depends on the area swept by the rotor blades, on the air density and on the cube of the wind speed and it is considered that wind turbines can extract up to 59% of this energy. Accordingly, the capacity of each wind turbine to approach this limit is represented by the so-called power coefficient Cp which is determined by its aerodynamic characteristics, particularly by its tip-speed ratio λ which is defined as the relationship between the tangential speed of the blade tip and the speed of the incident wind. If this ratio is kept at its optimal value, so that the rotor speed follows the wind speed, the maximum power coefficient Cp of the wind turbine is obtained, achieving an extremely efficient energy conversion.
The control strategy generally used in variable speed wind turbines is based on electrically adjusting the generator's torque to achieve the maximum output and this is carried out using a controller which receives signals indicating the speed of the generator and the power produced by the generator and which provides a torque reference signal to the converter to obtain the required power.
Accordingly, the wind turbine controller uses a curve which defines the desired functional relationship between power and generator speed to achieve ideal output.
For a better understanding of the present invention a brief description of a typical prior art Power vs. Generator speed 21 shown in
The Power vs. Generator speed curve 21 shown in
In ideal conditions, the resulting average power curve will be curve 22 in
For implementing said regulation a control unit receives input data such as wind speed V, generator speed Ω, pitch angle θ, power Pw from well known measuring devices and send output data θref, Trref to, respectively, the pitch actuator system for changing the angular position of the blades 17 and to a generator command unit for changing the reference for the power production.
According to the present invention the control system is also arranged for performing an additional regulation when the wind turbine is subjected to a “cold climate” situation according to a modified Power vs. Generator speed curve such as the curve 31 of
As indicated by arrow F the wind turbine may be controlled at a point in the zone 27 of the curve 21 when the additional regulation shall be initiated.
Within the meaning of this invention a “cold climate” situation is a combined condition of temperature and height at the wind turbine site that involves an air density ρ greater than a predetermined value ρref.
It is considered that a reference value of 1,225 kg/m3 covers the needs of a significant proportion of known wind turbine models. Table 1 illustrates several combinations of height and temperature where ρ>1,225 kg/m3.
As shown in
The output is the reduced nominal generator speed Ωnr to be applied in a “cold climate” situation.
Said control unit 31 comprises a module implementing a suitable algorithm for determining the reduced nominal generator speed Ωnr for decreasing the wind turbine loads to acceptable levels.
In a preferred embodiment said algorithm is implemented by means of the sub-modules shown in
In the first sub-module 43 shown in
In the second sub-module (blocks 45, 47, 49 shown in
In block 47 the reduction factor F is calculated using a dynamical interpolation table for applying in a progressive way the parameter P between two predetermined wind speeds, i.e. the greater the air density ρ is the greater is the subsequent reduction due to the wind speed.
In the environmental conditions defined in Table 1 and according to the simulations performed by the inventors for different wind turbine models the reduced nominal generator speed Ωnr needed for decreasing the wind turbine loading to the level of standard environmental conditions is comprised between the 70-99.9% of the rated nominal generator speed Ωn.
The main advantages of the “cold climate” regulation according to the present invention are the following:
Although the present invention has been fully described in connection with preferred embodiments, it is evident that modifications may be introduced within the scope thereof, not considering this as limited by these embodiments, but by the contents of the following claims.
Number | Date | Country | Kind |
---|---|---|---|
201100577 | May 2011 | ES | national |
Number | Name | Date | Kind |
---|---|---|---|
7023105 | Wobben | Apr 2006 | B2 |
7420289 | Wang et al. | Sep 2008 | B2 |
7883317 | Ormel et al. | Feb 2011 | B2 |
8120194 | Hoffmann et al. | Feb 2012 | B2 |
8478449 | Hernandez Mascarell | Jul 2013 | B2 |
8738192 | Uphues et al. | May 2014 | B2 |
20030185665 | Hansen | Oct 2003 | A1 |
20040108732 | Weitkamp | Jun 2004 | A1 |
20040135375 | Wobben | Jul 2004 | A1 |
20070183885 | Ormel et al. | Aug 2007 | A1 |
20080112807 | Uphues et al. | May 2008 | A1 |
20080118354 | Jeppesen et al. | May 2008 | A1 |
20080140263 | Wang et al. | Jun 2008 | A1 |
20080170941 | Ghosh et al. | Jul 2008 | A1 |
20090066089 | Arinaga et al. | Mar 2009 | A1 |
20090295160 | Wittekind et al. | Dec 2009 | A1 |
20100320761 | Schwarze et al. | Dec 2010 | A1 |
20110148112 | Ormel et al. | Jun 2011 | A1 |
20120205913 | Garcia Andujar et al. | Aug 2012 | A1 |
20120271593 | Uluyol et al. | Oct 2012 | A1 |
Number | Date | Country |
---|---|---|
2358140 | May 2011 | ES |
Entry |
---|
“Altitude air pressure calculator,” Kenneth Baillie, Apr. 2010, http://www.altitude.org/air—pressure.php. |
Number | Date | Country | |
---|---|---|---|
20120299298 A1 | Nov 2012 | US |