The present invention relates to a fault-tolerant fire protection system for wind turbines. In particular, the present invention relates to a fault-tolerant fire, smoke and over/leak current protection system.
Protection systems in wind turbines of today typically involve tripping of a circuit breaker. Such tripping of the circuit breaker may be divided into two groups—namely:
A system suitable for active tripping applies a trip solenoid in a switch gear. The trip solenoid requires energy in order to trip. During normal working conditions energy is supplied to the trip solenoid from the associated power supply grid. If the power supply grid fails or somehow collapses, the system needs an alternative energy source in order to trip the switch gear. This alternative energy source has not proved to be reliable. In conclusion, these systems can have dormant faults resulting in loss of protection and consequently turbine fire.
This system applies a trip solenoid that has to be energized in order to keep the switch gear connected. This system is generally safe, but any single fault, even a 1 second interruption of the power supply, will trip the switch gear. Inspection of the wind turbine is required before the wind turbine is started again.
It may be seen as an object of embodiments of the present invention to provide a fault-tolerant fire protection system which is capable of maintaining the wind turbine in production even if a single fault occurs.
The above-mentioned object is complied with by providing, in a first aspect, a redundant fire protection system for a wind turbine adapted to feed power into an associated power supply grid, the redundant fire protection system comprising
Thus, according to the present invention selected wind turbine components are each monitored by a plurality of detectors. To increase the reliability of the fire protection system additional groups of fire protection related detectors may be provided.
The fire protection system according to the present invention offers the following benefits:
The fire protection control unit may comprise a first control module and a second control module. The first and the second control modules may be operatively connected to the first and second groups of fire protection related detectors, respectively.
The fire protection control unit may be operatively connected to a controllable switch gear arrangement. In this way, the fire protection control unit is capable of activating the controllable switch gear arrangement so as to disconnect the wind turbine from the associated power supply grid if demands so require. Such demands may include detected over currents, arcs, smoke or even fire in the wind turbine.
The fire protection control unit may be arranged to monitor the state of the controllable switch gear arrangement, and it may be arranged to prevent reconnection in case the wind turbine has been disconnected from the associated power supply grid and in case the switch gear monitoring indicates that it is not safe to reconnect. Such indications could include low SF6 gas pressure in case of gas insulated switch gear, grounding switch connected, or loss of arc protection.
Optionally, a fire suppression system capable of dispersing water, powder, foam, inert gasses or a combination thereof may be provided. In terms of implementation, the protection control unit may be operatively connected to a controllable fire suppression arrangement. In this way, the fire protection control unit is capable of activating suitable fire suppression agents if a fire is detected. The fire suppression arrangement may be activated upon detection of arcs, smoke or even fire in the wind turbine.
The first and second groups of fire protection related detectors may comprise one or more fire detectors, one or more smoke detectors, one or more arc detectors and/or one or more current detectors. Other types of detectors may be applicable as well.
The power supply network may have a redundant architecture comprising a first and a second power supply path. If one power supply path breaks downs power may be provided via the other power supply path. Similarly, the data communication network may have a redundant architecture comprising a first and a second communication path in order to increase the reliability of the system.
The redundant fire protection system may further comprise a redundant current detection arrangement being operatively connected to the fire protection control unit. Redundancy may be implemented by providing a first and a second current sensor. The first current sensor may be operatively connected to the first control module, whereas the second current sensor may be operatively connected to the second control module. Both the first and the second control module may be capable of tripping the switch gear so as to disconnect the wind turbine from the associated power supply grid if a current sensor signal so demands.
The redundant fire protection system may further comprise means for manually tripping the wind turbine.
In a second aspect, the present invention relates to a wind turbine comprising a redundant fire protection system according to the first aspect.
In a third aspect, the present invention relates to a method for protecting a wind turbine adapted to feed power into an associated power supply grid, the method comprising the steps of
Thus, the predetermined protection act may be performed in response to a signal from more than one detector (Double-knock). The predetermined protection act may involve activation the fire protection. Alternatively or in combination therewith, the predetermined protection act may comprise the step of tripping a switch gear so as to disconnect the wind turbine from an associated power supply grid until normal working conditions is re-established.
The present invention will now be explained in further details with reference to
In general, the present invention relates to a redundant fire protection system for wind turbines. According to the present invention a plurality of different types of detectors monitor selected components of a wind turbine. For example, a pair of independent smoke detectors monitors the gear box of a wind turbine. If smoke is detected by just one of the smoke detectors an alarm signal is communicated to a fire protection control unit which is capable of for example tripping the wind turbine by disconnecting it from an associated power supply grid. The fire protection control unit is capable of initiating other protection schemes as well.
As depicted in
Moreover, two independent groups of smoke detectors 5, 7 and two independent groups of arc detectors 4, 8 are operative connected to the controller 19, 19′ via a redundant data communication and power supply network 1, 1′ and via fire safety input/output data units 2, 3. In
The system depicted in
Optionally, the system depicted in
Thus, the system depicted in
Tripping of the switch gear typically occurs if smoke, fire, over currents or leak currents are detected. Over current and leak current protection is provided by monitoring the power line from the high voltage transformer 17. The switch gear can also be tripped manually by activating a manual trip button 6.
The combined data communication networks and the power supply networks 1, 1′ interconnecting the control modules 19, 19′ and the input/output units 2, 3 are arranged in a redundant manner by having at least two parallel data communication networks and at least two power supply networks. Thus, if one of the data communication networks fails, the other communication network takes over. Similarly, if one of the power supply networks fails, the other power supply network takes over.
Obviously, it lies within the scope of the present invention that additional and/or other types of fire protection related detectors may be included in the system. Also, additional data communication paths, control modules and/or power supply lines may be provided in order to increase the reliability of the system.
Number | Date | Country | Kind |
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PA 2011 70145 | Mar 2011 | DK | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/DK2012/050078 | 3/16/2012 | WO | 00 | 12/4/2013 |