The following relates to a cooling apparatus for a slip ring unit of an electric generator. The following further relates to an operating method for a slip ring unit for providing a desired temperature distribution inside a slip ring unit of an electric generator. The following may be efficiently applied to an electric generator of a wind turbine.
An electric generator, such as an electric generator installed in a wind turbine, typically comprises a rotor which rotates relative to a stator. Electric generators are known, which has two different sets of windings: a stator winding and a rotor winding. A so-called Doubly Fed Induction Generator (DFIG) is for example an electric generator of such type. The rotor and stator windings may be electrically independent from one another and separately connected to the electrical equipment outside the machine, which may be for example used to transfer electrical power to a utility grid. Such electric generator may further include a slip ring, which is arranged on the rotor shaft, and which permits, by sliding contacts, to establish an electrical connection between the rotor windings and the external electrical equipment.
In the above defined technical field, it is known to implement simple ventilation operation strategies, which typically offers an ON/OFF operation mode. If the ventilation is activated the system provides full ventilation features, whereas if deactivated the system does not offer any kind of external ventilation. This may drive the system to non-optimal temperature conditions where the wear ratio of the sliding contacts might be increased. Higher wear ratios reduce the maintenance frequency intervals, implying eventually a higher associated maintenance cost. Additionally, such a ventilation concept may imply an extra consumption of electrical supply that is not required due to the low demanding operation requirements or due to ambient temperature conditions. Slip rings of the above type are for example disclosed in GB 2 461 533 A. A similar cooling system for a brushed electrical machine including a commutator is described in U.S. Pat. No. 9,112,394 B2.
Therefore, there scope of the present invention is to provide a slip ring and an operational method for a slip ring, which may overcome the drawbacks of the conventional art.
An aspect relates to a slip ring unit for an electric generator. The slip ring unit comprises a slip ring attachable to a rotor shaft of the electric generator, a plurality of sliding contacts arranged along a circumference of the slip ring, to provide an electrical connection with the slip ring, at least one temperature sensor for measuring a temperature inside the slip ring unit, a fan for providing a cooling flow in the slip ring unit, and a controller connected to the fan for controlling the cooling flow rate generated by the fan, the controller being connected to the at least one temperature sensor. The at least one temperature sensor is attached to at least a holder for supporting the sliding contacts. The control is configured in such a way that the cooling flow rate is generated depending on the temperature measured by the at least one temperature sensor.
An electric generator comprising the above-described slip ring unit may be advantageously integrated in a wind turbine. An electric generator comprising the above-described electrical connector may be a Doubly Fed Induction Generator (DFIG).
According to a further aspect of the present invention, an operating method for operating a slip ring unit for an electric generator it is provided. The slip ring unit comprises a slip ring attachable to a rotor shaft of the electric generator, and a plurality of sliding contacts arranged along a circumference of the slip ring, to provide an electrical connection with the slip ring.
In an embodiment, the method comprises measuring a temperature inside the slip ring unit, providing a cooling flow in the slip ring unit, and controlling the cooling flow rate depending on the temperature measured by the at least one temperature sensor.
From the use of a cooling ventilation concept where the generated cooling flow rate is variable, as above described it is expected an improvement in the efficiency of the system due to the minimization of the power consumption of the motor fan. A significant cost saving in operational expenditures associated to maintenance routines is achieved. In a slip ring system, the preventive maintenance cost are related to the cleaning of the system to remove the conductive dust that results from the operation of the brushes and slip rings, and that can provoke electrical failures if not cleaned properly during the maintenance intervals. The conductive dust generation depends on the ambient conditions as previously explained, these conditions are essentially humidity and temperature. The use of the above-described cooling technology allows the decrease of the frequency of these preventive maintenance routines due to the optimal performance conditions that are achieved and its consequently minimization of the brushes wear ratios.
The fan controller allows the electronic control of the air flow. The generated air flow rate may be regulated through the temperature reference that is measured. The management of the fan performance is autonomous since it is based on internal components temperature measurements. There is no need for external communication, for example with the controller of the wind turbine to regulate the fan performance. An additional benefit may be the bearings electro motor in the fan are not always rotating at full speed, thus implying an overall reduction in the number of rotation cycles. This allows to extend the expected lifetime of the motor bearings, reducing the associated maintenance cost for the replacement of the motor fan.
In an example, the controller may comprise an input for receiving a temperature signal from the at least one temperature sensor and an output for sending a controlling signal to the fan, the controlling signal being a function of the temperature signal. The controlling signal may be a voltage of an electric motor of the fan. The controlling signal may be proportional or linearly proportional to the temperature signal.
The function of the controlling signal may be previously set up according to the desired output values.
In an example, the operating method may further comprise measuring a rotor speed and a rotor current, calculating the thermal losses in the slip ring unit, calculating the required air flow in the slip ring unit depending on the thermal losses calculated in the previous step, calculating a plurality of temperatures in a respective plurality of points of the slip ring unit, determining at least one wear-ratio curve for the sliding contacts of the slip ring unit depending on the calculations performed in the previous step, and determining an expected lifetime of the sliding contacts by using the at least one wear-ratio curve and the temperature inside measured the slip ring unit.
The probability of system failures may be reduced due to the system temperature monitoring and the optimal performance conditions, to which the system is driven. Therefore, the cost associated with possible corrective maintenance tasks may be further minimized.
The aspects defined above and further aspects of the present invention are apparent from the examples of embodiments to be described hereinafter and are explained with reference to the examples of embodiment. The invention will be described in more detail hereinafter with reference to examples of embodiments but to which the invention is not limited.
Some of the embodiments will be described in detail, with reference to the following figures, wherein like designations denote like members, wherein:
The controlling signal Vout may be proportional to the temperature signal Ta. In an example, the controlling signal Vout may be linearly proportional to the temperature signal Ta. The controlling signal Vout may be a voltage signal to be applied to an electric motor of the fan. By varying the controlling signal Vout the speed of the motor of the fan 30 may be changed and consequently also the rate of the cooling flow F may be changed.
Although the present invention has been disclosed in the form of embodiments and variations thereon, it will be understood that numerous additional modifications and variations could be made thereto without departing from the scope of the invention.
For the sake of clarity, it is to be understood that the use of “a” or “an” throughout this application does not exclude a plurality, and “comprising” does not exclude other steps or elements.
Number | Date | Country | Kind |
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20383068.2 | Dec 2020 | EP | regional |
This application claims priority to PCT Application No. PCT/EP2021/083631, having a filing date of Nov. 30, 2021, which claims priority to European Application No. 20383068.2, having a filing date of Dec. 9, 2020, the entire contents both of which are hereby incorporated by reference.
Filing Document | Filing Date | Country | Kind |
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PCT/EP2021/083631 | 11/30/2021 | WO |