Wind turbine with a nacelle including a water draining device
10605234 ยท 2020-03-31
Assignee
Inventors
Cpc classification
F05B2260/602
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2260/64
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H02K7/1838
ELECTRICITY
F03D80/80
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D9/25
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2260/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D80/60
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2240/14
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
F03D80/80
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D9/25
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A wind turbine with nacelle includes an electrical generator, a cooling circuit including at least two cooling fans for channeling a fluid cooling medium from the electrical generator to an outer wall of the nacelle and a draining device for channeling drainage water from the cooling fans to an outer wall of the nacelle. The draining device includes at least a first draining portion connecting the cooling fans to an inside of the nacelle and at least a second draining portion for receiving drainage water from the first respective draining pipe and channeling the drainage water to the outer wall of the nacelle.
Claims
1. A wind turbine with a nacelle comprising: an electrical generator, a cooling circuit including at least two cooling fans for channeling a fluid cooling medium from the electrical generator to an outside of the nacelle, a draining device for channeling drainage water from the cooling fans to an outer wall of the nacelle, wherein the draining device includes at least a first draining portion connecting the cooling fans to an inside of the nacelle and at least a second draining portion for receiving drainage water from the first draining portion and channeling the drainage water to the outer wall of the nacelle, wherein the draining device comprises at least a water collector interposed between the first draining portion and the second draining portion.
2. The wind turbine of claim 1, wherein the first draining portion comprises for each cooling fan a first respective draining pipe connecting the respective cooling fan to an inside of the nacelle and the second draining portion comprises a second respective draining pipe for receiving drainage water from the first respective draining pipe and channeling the drainage water to the outer wall of the nacelle.
3. The wind turbine of claim 2, wherein a respective water collector is provided between the first respective draining pipe and the second respective draining pipe.
4. The wind turbine of claim 1, wherein the cooling circuit comprises at least an inlet fan for channeling the fluid cooling medium from an outside of the nacelle to an inside of the nacelle.
5. The wind turbine of claim 4, wherein the inlet fan and the cooling fans are operated in order to provide a positive differential pressure in the inside of the nacelle with respect to the outside of the nacelle.
6. The wind turbine of claim 1, wherein the cooling circuit includes a first inlet portion for channeling the fluid cooling medium to the electrical generator.
7. The wind turbine of claim 6, wherein first inlet portion comprises an air treatment unit for cleaning the fluid cooling medium entering the nacelle.
8. The wind turbine of claim 6, wherein the cooling circuit includes a second outlet portion for letting the fluid medium from the electrical generator exit the nacelle, the second outlet portion comprising a duct connecting a respective outlet hole in a stator assembly of the electrical generator to a respective outlet opening, the respective cooling fan being provided between the respective outlet hole and the respective outlet opening.
Description
BRIEF DESCRIPTION
(1) Some of the embodiments will be described in detail, with reference to the following figures, wherein like designations denote like members, wherein:
(2)
(3)
(4)
DETAILED DESCRIPTION
(5) The illustrations in the drawings are schematic. It is noted that in different figures, similar or identical elements or features are provided with the same reference signs or with reference signs, which are different from the corresponding reference signs only within the first digit. In order to avoid unnecessary repetitions elements or features which have already been elucidated with respect to a previously described embodiment are not elucidated again at a later position of the description.
(6)
(7) On a front end of the body 8 of the nacelle 10, a hub 9 having three blades (not represented in the attached drawings) is provided.
(8) The hub 9 is rigidly coupled to a rotatable shaft 6. A schematically depicted bearing assembly 7 is provided in the nacelle 10 in order to support the rotation of the rotatable shaft 6 and of the hub 9 coupled thereto, with respect to the body 8 of the nacelle 10.
(9) The nacelle 10 comprises an electric generator 11, located at the front end of the nacelle 10 between the hub 9 and the body 8 of the nacelle 10. In accordance with the basic principles of electrical engineering the electric generator 11 comprises a stator assembly 20 and a rotor assembly 30.
(10) The rotor assembly 30 is rigidly coupled to the rotatable shaft 6 and rotates solidly with it around the bearing assembly 7. The stator assembly 20 is instead rigidly fixed to the body 8 of the nacelle 10. Around a circumferentially border of the stator assembly 20 an air gap 31 is provided between the stator assembly 20 and the rotor assembly 30. In operation the temperature in the air gap 31 rises. Such temperature has to be controlled beyond a limit to assure to keep the efficiency of the generator within acceptable values.
(11) To achieve such scope, inside the body 8 of the nacelle 10 a cooling circuit 100 is provided for channeling a fluid cooling medium to the air gap 31 and channeling the same fluid cooling medium away from the air gap 31, after it has been heated in the air gap 31. In such a way the fluid cooling medium extracts heat from the air gap 31. According to a typical embodiment of the present invention, the fluid cooling medium is ambient air surrounding the nacelle 10.
(12) The cooling circuit 100 includes a first inlet portion 110 for channeling the fluid cooling medium to the air gap 31.
(13) The inlet portion 110 extends from an inlet opening 130 in an outer wall 134 of the body 8 of the nacelle 10. On the inlet opening 130 an air treatment unit 133 is provided for eliminating the dirt and mist content in the fluid cooling medium entering the body 8 of the nacelle 10 through the inlet opening 130. Dirt may include, for example, dust, salt, solid particles or other pollutants.
(14) Downstream the air treatment unit 133 an inlet fan 140 is provided for making the fluid cooling medium flow (arrows F1, F2, F3 in
(15) The fluid cooling medium proceeds according to an axial flow substantially parallel to the rotatable shaft 6. This flow is divided downstream into two sub-flows, one flowing directly to the air gap 31 (represented by the arrow F2 in
(16) According to other embodiments of the invention (not shown in the attached Figures), any other arrangement of the flow of the fluid cooling medium may be performed inside the body 8 of the nacelle 10, provided that the fluid cooling medium is efficiently channeled to the air gap 31.
(17) After being heated in the air gap 31, the fluid cooling medium enters the stator assembly 20 radially, i.e. according to a direction substantially orthogonal to the rotatable shaft 6.
(18) The cooling circuit 100 includes a second outlet portion 120 for channeling the heated fluid medium away from the air gap 31. The second outlet portion 120 comprises at least two outlet holes 125 (only one is represented in the schematic view of
(19) Downstream each of the outlet holes 125, the outlet portion 120 of the cooling circuit 100 comprises a duct 160 connecting the respective outlet hole 125 to a respective outlet opening 131, 132, for letting the heated fluid medium exit the nacelle 10.
(20) The outlet portion 120 of the cooling circuit 100 comprises at least two outlet cooling fans 141, 142 (only one is represented in the schematic view of
(21) At least two outlet cooling fans 141, 142 are required for providing redundancy to the cooling circuit 100: in case of one cooling fan 141, 142 failing, the other cooling fan 142, 141 would still run. The cooling fans 141, 142 are designed in such a way that in most operational conditions (low ambient temperature), each of the cooling fans 141, 142 is able to supply the cooling capacity necessary for full power production.
(22) As better shown in
(23) The outlet openings 131, 132 also are symmetrically arranged with respect to a longitudinal plane Z of the nacelle 10.
(24) The inlet fan 140 and the outlet cooling fans 141, 142 are operated in order to generate respective flow rates of the fluid cooling medium, which provide a positive differential pressure in the inside and of the nacelle 10 with respect to the outside of the nacelle 10. This allows protecting the inside of the nacelle 10 from the entering of dirty air from the external environment, in particular through bearings and/or sealing provided in the nacelle 10.
(25) The nacelle 10 further comprises a draining device 200 for channeling drainage water from the cooling fans 141, 142 to an outer wall 134 of the nacelle 10. The draining device 200 comprises, in general according to the different embodiments of the present invention, at least a first draining portion 201 connecting the cooling fans 141, 142 to an inside of the nacelle 10 and at least a second draining portion 202 for receiving drainage water from the first respective draining pipe 201 and channeling the drainage water to the outer wall 134 of the nacelle 10. According to the different embodiments of the present invention, the draining device 200 further comprises at least a water collector 203 interposed between the first draining portion 201 and the second draining portion 202.
(26) In the embodiment of the attached
(27) A respective water collector 203 is provided between the first respective draining pipe 201 and the second draining pipe 202. The water collector 203 receives the drainage water from the first draining pipe 201. The second draining pipe 202 connects the water collector 203 to the outer wall 134 of the nacelle 10, for letting the drainage water exiting the nacelle 10.
(28) With particular reference to
(29) Rainwater, typically during storms and high cross wind periods, may enter the cooling fan 141, 142. To prevent the drainage water to reach the generator 11 the draining device 200 is provided. From lowest part of the housing of each of the outlet fans 141, 142, the drainage water flows in the first draining pipe 201, then it is collected in the water collector 203 and finally reaches the external environment through the second draining pipe 202.
(30) When only one cooling fan 141, 142 is in operation (for example, as shown in