This invention relates to the static tests performed to wind turbine blades for certification and other purposes and in particular to the systems used for measuring strain in said tests.
Current wind turbine blade certification requires performing several static tests on the blade to confirm the blade capability to withstand the expected loads, particularly static strength tests to check the blade behaviour under extreme design loads, fatigue tests to check the blade's ability to withstand the operating loads for its design life and other tests in order to characterize physical properties of the blade such as weight, centre of gravity or natural modes and frequencies.
These tests are usually carried out in a test bench in which the blade is bolted to a rigid structure and then static or dynamic loads are applied to the blade by means of different methods.
Current test systems rely on a set of strain gauges to determine the strain distribution along blades. With the increasing size of blades, the amount of necessary gauges is rapidly growing, which implies larger efforts to adequately estimate the aforementioned distribution. With two to four electrical wires per gauge, cabling volume, complexity and vulnerability to electro-magnetic interference become significant and disturbing. Additionally, the discrete nature of this kind of measurements implies loss of information in case of non-linear behaviour in the area between two strain gauges.
This invention is intended to the solution of said problems.
It is an object of the present invention to provide a wind turbine blades strain measuring system in static tests having a high strain resolution.
It is another object of the present invention to provide a wind turbine blades strain measuring system in static tests having a high spatial resolution.
It is another object of the present invention to provide a wind turbine blades strain measuring system in static tests that facilitates the detection and evaluation of local and global non-linear behaviour such as stress concentrations, buckling or buckling shapes.
It is another object of the present invention to provide a wind turbine blades strain measuring system in static tests that can be installed fastly and easily.
These and other objects are met by providing a strain measuring system of wind turbine blades during the performance of static tests comprising an equipment for measuring the strain at multiple locations in mono-mode optical fibres using Rayleigh scattered light, said mono-mode optical fibres being attached to the blade subjected to said tests for obtaining high spatial resolution measurements of the blade strain during said tests. It is important to note that within the meaning of this invention, a static test of a wind turbine blade shall be understood as any test carried out applying a load to a wind turbine blade attached to a rigid structure in a test bench.
In preferred embodiments, the optical fibres are placed whether in a longitudinal direction or in a non-longitudinal direction or in a non-linear shape in given blade sections. Hereby, the system allows obtaining the strain measurements in different locations along the blade for a better adaptation to different requirements.
In a preferred embodiment suitable for certification purposes, the system comprises four optical fibres placed, respectively, along the blade leading edge, the blade trailing edge, the blade upper cap and the blade lower cap. Hereby it is achieved an improved system for obtaining the strain measurements needed in the static tests required for certification purposes.
In another preferred embodiments the optical fibres are bonded to the outer skin of the blade, into grooves in the outer skin of the blade or embedded between two structural laminates of the blade. Hereby, the system allows obtaining the strain measurements in different locations in the transversal section of the blade for a better adaptation to different requirements.
Other features and advantages of the present invention will be understood from the following detailed description in relation with the enclosed drawings.
a, 5b, 5c, 5d and 5e show schematic views of the optical fibre installed in the blade in different positions.
A typical wind turbine blade may have a length between 20 and 60 meters or more and it is constructed with composite materials such as glass-reinforced plastics (GRP). There are so many factors that can damage a wind turbine blade such as fatigue, wind gusts, lightning strikes, aerodynamic interaction between wind turbines, some of them causing unpredictable loads on the blade, that it is very important to have good blade strain measurement systems to be used in static tests not only for certification purposes but also to provide valuable information regarding the behavior of a blade subjected to predetermined loads, particularly the deflections and strains of a cantilevered blade.
Following
a) A plurality of mono-mode optical fibres 5, 5′, 5″′ attached to the blade 11 which is subjected to said tests.
b) An equipment for measuring the strain in said fibres 5, 5′, 5″ through changes in their optical behaviour in the course of said tests, including:
b1) An Optical Backscattering Reflectometry (OBR) interrogator 23 to acquire optical signals from the fibres 5, 5′, 5″ and convert them to strain data.
b2) An interface device 25 to connect said fibres 5, 5′, 5″ to said OBR interrogator 23.
b3) An Acquisition System 27, typically a dedicated computer, for receiving and processing the strain data provided by the OBR interrogator 23.
Said equipment makes use of a known technology for effecting high-spatial resolution distributed strain measurement in optical fibres using Rayleigh scattered light and particularly in an unaltered, commercial grade, mono-mode optical fibre at multiple locations by measuring the local shift in the Rayleigh spectral shift. Specifically, said technology effects a comparison of the spectrum before and after loading the fibre using a complex cross-correlation of the spectra corresponding to load and zero-load conditions. This technology currently allows achieving a strain resolution in the range of ±1με and a spatial resolution of at least 0.5 mm. Further information about this technology can be found in U.S. Pat. No. 6,545,760.
As shown in
The system can also include, as shown in
In an embodiment of the present invention, illustrated in
Specific tests may require specific installations. For instance buckling estimation procedures are based upon the processing of strain data coming from fibres installed on top of blade trailing edge panels. For other purposes, as has been already mentioned, optical fibres running across the blade's longitudinal axis, running angled with regards to the blade's longitudinal axis, or combinations of some of the above-mentioned configurations may be needed.
In an embodiment of the present invention illustrated in
In the embodiments of the present invention illustrated in
In the embodiment of the present invention illustrated in
In the embodiment of the present invention illustrated in
The commercially-produced, standard optical fibre used as strain sensor in the present invention may have different coatings (acrylated, polyamide, . . . ) depending particularly of how it is attached to blade.
In comparison with current strain measuring systems in static tests based on strain gauges, the system according, particularly, to the embodiments illustrated in
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.
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/ES2009/000052 | 1/30/2009 | WO | 00 | 7/29/2011 |
Publishing Document | Publishing Date | Country | Kind |
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WO2010/086466 | 8/5/2010 | WO | A |
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Shimizu, K., et al., “Measurement of Rayleigh backscattering in single-mode fibers based on coherent OFDR employing a DFB laser diode”, Phonics Technology Letters, IEEE, vol. 3, No. 11, abstract. |
Number | Date | Country | |
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20110292372 A1 | Dec 2011 | US |