WIND TURBINE
20220195995 · 2022-06-23
Inventors
Cpc classification
F05B2220/706
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D80/80
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2260/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D80/60
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D80/88
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02E10/72
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
Abstract
Thus provided is a wind turbine. The wind turbine has a nacelle with a first end and a second end, at least one air inlet and one nacelle housing with a nacelle interior. A first heat source in the form of an electric generator is provided, wherein the generator generates electrical energy and a first heat loss. A second heat source in the form of at least one electrical device is provided for converting the electrical energy generated by the generator in the nacelle interior, wherein the electrical devices generate a second heat loss, and are arranged in the nacelle housing. A cooling system with a liquid cooling system and an air cooling system for the first and second heat source is provided. An air treatment unit is provided in the nacelle interior, which has a droplet separator and a recirculating chiller. The droplet separator is designed to free the air flowing in through the air inlet of liquid droplets. The air cooling system has a fan or a fan set in the form of multiple fans in a single housing in the nacelle interior. The fan or the fan set generates an air flow in the direction of air flow within the nacelle, which flows around the recirculating chiller. The liquid cooling system has a coolant, and is coupled at least with the second heat source, and designed to cool the second heat source. The liquid cooling system is coupled with the recirculating chiller, which serves as a heat exchanger, wherein the air flow cools the recirculating chiller in the direction of air flow, which in turn cools the coolant. The air flow flows around the first and second heat source, and thus cools the first and second heat source.
Claims
1. A wind turbine, comprising: a nacelle having a first end, a second end, at least one air inlet, a nacelle housing, and a nacelle interior, a first heat source comprising an electric generator, wherein the electric generator generates electrical energy and a first heat loss, a second heat source comprising an electrical device configured to convert electrical energy generated by the generator in the nacelle interior, wherein the electrical device generates a second heat loss, wherein the electrical device is arranged in the nacelle housing, a cooling system with a liquid cooling system and an air cooling system configured to cool the first and second heat source, and an air treatment unit in the nacelle interior, wherein the air treatment unit has a droplet separator and a recirculating chiller, wherein the droplet separator is configured to remove liquid droplets from air flowing in through the air inlet, wherein the air cooling system has a fan or a fan set comprising a plurality fans in a single housing in the nacelle interior, wherein the fan or the fan set generates an air flow in a direction of air flow within the nacelle interior, wherein the air flow flows around the recirculating chiller, wherein the liquid cooling system has a coolant and is coupled to the second heat source and configured to cool the second heat source, wherein the liquid cooling system is coupled with the recirculating chiller, which serves as a heat exchanger, wherein the air flow cools the recirculating chiller in the direction of air flow, thereby cooling the coolant, and wherein the air flow flows around the first and second heat sources thereby cooling the first and second heat sources.
2. The wind turbine according to claim 1, wherein the air treatment unit has an air filter in the direction of air flow behind the recirculating chiller, wherein the air filter is configured to filter solids from air at least partially freed of water and liquid droplets by the droplet separator.
3. The wind turbine according to claim 1, wherein the nacelle housing has a nacelle floor that is a collecting tray, and a plurality of cassette elements.
4. The wind turbine according to claim 1, wherein the wind turbine has a generator and a seal between the nacelle housing and the generator.
5. The wind turbine according to claim 1, wherein the recirculating chiller is a first recirculating chiller, the wind turbine comprising a second recirculating chiller external to the nacelle housing, wherein the second recirculating chiller is cooled with the liquid cooling system, wherein coolant flows through the second recirculating chiller.
6. A method for cooling first and second heat sources in a wind turbine nacelle, wherein the nacelle has a first end, a second end, at least one air inlet, and a nacelle housing with a nacelle interior, wherein the first heat source is an electric generator in the nacelle, wherein the generator generates electrical energy and first heat loss, wherein the second heat source is at least one electrical device for converting the electrical energy generated by the generator in the nacelle interior, wherein the at least one electrical device generates second heat loss and is arranged in the nacelle housing, wherein a cooling system with a liquid cooling system and an air cooling system for the first and second heat sources is provided in the nacelle housing, wherein an air treatment unit is provided in the nacelle interior and has a droplet separator and a recirculating chiller, wherein the droplet separator is configured to free the air flowing through the air inlet of liquid droplets, wherein the air cooling system has a fan or a fan set comprising a plurality of fans in a single housing in the nacelle interior, the method comprising: generating an air flow in a direction of air flow within the nacelle through the fan or the fan set, wherein the air flow flows around the recirculating chiller, and cooling the second heat source via the liquid cooling system, wherein the liquid cooling system has a coolant coupled with the second heat source, wherein the liquid cooling system is coupled with the recirculating chiller, wherein the recirculating chiller serves as a heat exchanger, wherein the air flow in the direction of air flow cools the recirculating chiller thereby cooling the coolant, and wherein the air flow flows around the first and second heat sources and cools the first and second heat sources.
Description
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWINGS
[0024] Advantages and exemplary embodiments of the disclosure will be explained in more detail below with reference to the drawing.
[0025]
[0026]
[0027]
[0028]
[0029]
[0030]
DETAILED DESCRIPTION
[0031]
[0032]
[0033] According to one aspect of the disclosure, the air inlet 210 can be provided laterally and in the downwind area of the nacelle. The air can flow from the air inlet 210 in the direction of air flow through the droplet separator 600, the recirculating chiller 700 and optionally the air filter 800.
[0034] Located within the nacelle is at least part (for example the stator) of an electric generator 300. One part of the generator 300 can be located in the spinner 250. This electric generator generates heat loss, and constitutes a first heat source or a first heat generator. At least one first electrical device 400 is provided between the electric generator 300 and the recirculating chiller 700. The at least one electrical device 400 generates heat loss, and constitutes a second heat source or a second heat generator. The electrical device 400 can be configured as a power electronics device, a rectifier, an inverter, a converter and/or as a transformer.
[0035] Therefore, two heat sources are present in the heat sources, specifically the first heat source 300 and the second heat source 400, 500. These two heat sources each generate a heat loss, which can become so large that the first and/or second heat source 300, 400, 500 must be cooled.
[0036] In order to cool the first and/or second heat source, the wind turbine has a cooling system 1000. This cooling system is configured as a hybrid cooling system, and has a liquid cooling system 1100 and an air cooling system 1200. The air cooling system 1200 has a fan or a fan set 910, 920, 930, 940. The fan or the fan set 910-940 can be present at least at four positions within the nacelle of the wind turbine, and generates an air flow with a direction of air flow L opposite the direction of wind flow W. The direction of air flow L thus extends from the downwind end 201 of the nacelle to the upwind end 202 of the nacelle 200. As a consequence, the direction of flow is opposite to the direction of wind flow outside of the nacelle. The air flow hence passes by the recirculating chiller 700, the at least one electrical device 400 and the generator 300. The nacelle further has at least one air outlet 220 in the area of the first end 202 of the nacelle 200. The nacelle 200 has a housing 203, which encloses a nacelle interior 230.
[0037] According to the disclosure, the air flow within the furnace is generated by the fan or the one fan set. A liquid cooling system 1100 is provided within the nacelle 200. The liquid cooling system 1100 has cooling lines 1110, which are coupled with the electrical devices 400, so as to cool the latter. As a consequence, a cooling liquid 1111 flows through the cooling lines 1110 and cools the electrical devices 400. The coolant heated as a result then flows through the recirculating chiller 700 and via another line 1110 back to the cooling system 1100. The recirculating chiller 700 thus serves as a heat exchanger, and is intended to cool the coolant 1111 located in the lines 1110. This is done by the air flow.
[0038] According to one aspect of the present disclosure, the generator can optionally be at least partially coupled with the liquid cooling system, so that the generator is at least partially cooled by the coolant 1111 in the cooling system 1100.
[0039] According to one aspect of the present disclosure, a cooling system is thus provided for a wind turbine, wherein the cooling system is a hybrid cooling system, which has liquid cooling and air cooling. The air cooling is provided by a fan or a fan set comprising a plurality of fans. Therefore, the fan or fan set is not arranged at several positions within the nacelle, but rather only has one position. An air fan comprises a fan unit, wherein several fans are provided within a housing. As a consequence, the fan can be configured as an individual fan or as a fan set within a shared housing.
[0040] The droplet separator 600 enables a mechanical separating process based in particular on centrifugal forces, so as to separate water particles or liquid particles from the inflowing air. Liquid particles with small droplet sizes (<20 μm (microns)) can here not be removed from the inflowing air. The separated liquid particles or those removed by the droplet separator can evaporate on the recirculating chiller 70 as the result of heating. Solids (salt, sand, etc.) present in the liquid can here be crystalized. As a consequence, the recirculating chiller 700 enables a thermal separation process.
[0041] The solids crystalized out of the liquid can be filtered out by the ensuing air filter.
[0042] Therefore, the air becomes preconditioned (liquid particles are removed by means of the droplet separator and solids are removed by the air filter) in the air flow before the air hits the electrical devices.
[0043]
[0044] As a consequence, the combination of a droplet separator, the recirculating chiller and the air filter makes it possible to air cool the generator via triple air treatment.
[0045] The nacelle essentially has the at least one air inlet and the at least one air outlet. This makes it possible to ensure that the air within the nacelle is essentially free of water particles and moisture, and also essentially free of other particles in the air. The air treatment required for this purpose can then be used to both cool the generator and to cool the electrical device within the nacelle.
[0046] The cooling system can provide an increase in air quality via a pre-dried and desalted air. A penetration of coarse moisture, for example snow or fog, can further be prevented. In addition, the number of required components can be reduced.
[0047] If the fan is not provided on the second end of the nacelle as per usual, but rather within the nacelle, this can contribute to a significant reduction in sound emission.
[0048]
[0049]
[0050] The configuration of the first and second end 51, 53 can ensure that the cassette elements or cladding cassettes abut each other so tightly that the nacelle housing also has enough of a seal. This is advantageous in particular to prevent the air flow L generated by the fans from being able to leak out via the connecting points of the cassette elements 50. In addition, this also makes it possible to prevent unpurified outside air from being able to penetrate into the nacelle interior.
[0051]
[0052] The bellows seal 60 has a first and second end 61, 62. The middle of the first end 61 has a hollow space 64, and can be compressed on contact, as shown on
[0053] The two aforementioned measures (configuring the nacelle housing with cassette elements and sealing the transition between the generator housing and nacelle) can result in the nacelle and the transition from the nacelle to the generator having enough tightness, so that the treated air flow can flow through the nacelle to the generator. In addition, untreated outside air is prevented from being able to get inside of the nacelle.
[0054] According to another aspect of the present disclosure, the fan can be operated in such a way that an excess pressure prevails in the nacelle interior, so as to prevent untreated outside air from being able to get inside.
[0055] The nacelle floor 203a designed as a collecting tray is advantageous, because it can be used to reliably collect exiting liquid, for example the coolant. As a result, coolant can be prevented from exiting during a leak and running out of the nacelle. This also enables compliance with stricter environmental requirements.
[0056] The various embodiments described above can be combined to provide further embodiments. These and other changes can be made to the embodiments in light of the above-detailed description. In general, in the following claims, the terms used should not be construed to limit the claims to the specific embodiments disclosed in the specification and the claims, but should be construed to include all possible embodiments along with the full scope of equivalents to which such claims are entitled. Accordingly, the claims are not limited by the disclosure.