Electric generator cooling method
11005340 · 2021-05-11
Assignee
Inventors
Cpc classification
F03D17/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H02K11/30
ELECTRICITY
F05B2220/7068
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H02K7/1838
ELECTRICITY
F03D9/25
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D80/60
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H02K9/08
ELECTRICITY
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
F03D17/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D9/25
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H02K9/08
ELECTRICITY
F03D80/60
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H02K11/30
ELECTRICITY
Abstract
Provided is a method for cooling an electric generator including the steps of: monitoring the temperature of the end winding and of the magnet through said first and second temperature sensors, if the temperatures of the end winding and/or of the magnet rises and reaches a first upper limit, operating the plurality of cooling fans for providing a first cooling power to the electric generator, if, while the first cooling power is provided, the temperature of the magnet reaches the second maximum acceptable temperature and the temperature of the end winding is lower than the first maximum acceptable temperature, operating the plurality of cooling fans for providing a second cooling power to the electric generator, the second cooling power being lower than the first cooling power.
Claims
1. A method for cooling an electric generator comprising a stator including a plurality of windings and at least an end winding associated to a first temperature sensor, the end winding being operatable up to a first maximum acceptable temperature, a rotor including at least a magnet associated to a second temperature sensor, the magnet being operatable up to a second maximum acceptable temperature, one or more cooling fans, which in their active state generate air flows through the electric generator, for cooling the end winding and the magnet, wherein the method includes the steps of: monitoring the temperatures of the end winding and of the magnet through said first and second temperature sensors, if the temperature of the end winding and/or of the magnet rises and reaches a first upper limit, operating the plurality of cooling fans for providing a first cooling power to the electric generator, if, while the first cooling power is provided, the temperature of the magnet reaches the second maximum acceptable temperature and the temperature of the end winding is lower than the first maximum acceptable temperature, operating the plurality of cooling fans for providing a second cooling power to the electric generator, the second cooling power being lower than the first cooling power.
2. The method as claimed in claim 1, comprising the further step of: if, while the first cooling power is provided, the temperatures of the end winding and/or of the magnet continue to rise and are both lower than the first and second maximum acceptable temperatures, respectively, operating the plurality of cooling fans for providing a third cooling power to the electric generator, the third cooling power being higher than the first cooling power.
3. The method as claimed in claim 1, comprising the further step of: if the temperature of the end winding reaches the first maximum acceptable temperature, derating the electric generator.
4. The method as claimed in claim 1, wherein the plurality of cooling fans are operated for generating the first cooling power, the second cooling power and the third cooling power, by switching on/off a portion of the plurality of cooling fans.
5. The method as claimed in claim 1, wherein the plurality of cooling fans are operated for generating the first cooling power, the second cooling power and the third cooling power, by varying the speed of the plurality of cooling fans.
6. A control unit for an electric generator including a software program or product for executing the method of claim 1, when the software program or product is run on the control unit.
Description
BRIEF DESCRIPTION
(1) Some of the embodiments will be described in detail, with references to the following Figures, wherein like designations denote like members, wherein:
(2)
(3)
DETAILED DESCRIPTION
(4)
(5) The electric generator 1 is included in a wind turbine (not represented as a whole).
(6) The stator 2 extends along and around a rotational axis x of the wind turbine. With respect to the rotational axis x, the stator 2 extends:
(7) axially between a first axial end 12 and a second axial end 13;
(8) radially between an inner circumferential surface 14 and an outer circumferential surface 15.
(9) Close to the outer circumferential surface 15, the stator 2 includes a plurality of windings 17, connected, at the axial ends 12, 13, by a plurality of end windings 18.
(10) The rotor 3 surrounds the stator 2 and includes a plurality of permanent magnets 19, separated from the outer circumferential surface 15 of the stator 2 by a rotor stator gap 5. A bearing 10 is mounted between the rotor 3 and the stator 2 for allowing the rotation of the rotor around the rotational axis x.
(11) In their active state the cooling fans 41, 42 cause air flows F1, F2 through a rotor stator gap 5 between said rotor 3 and said stator 2 and through stator gaps 6 between axially adjacent segments 7 of said stator 2, wherein the air flows F1, F2 are directed through the stator gaps 6 in the same direction. In their active state, the cooling fans 41, 42 generate air flows F1, F2 through the electric generator 1 for cooling the end windings 18 and the permanent magnets 19.
(12) The electric generator 1 further includes at least a first temperature sensor 51 associated to the end windings 18 and a second temperature sensor 52 associated to the permanent magnets 19. The first and the second temperature sensor 51, 52 are connected to a control unit 53 of the electric generator 1, which operates the cooling fans 41, 42 for cooling the end windings 18 and the permanent magnets 19 preventing them to reach a first maximum acceptable temperature T1 and a second maximum acceptable temperature T2, respectively.
(13) The first maximum acceptable temperature T1 has a value comprised between 40° C. and 100° C. The second maximum acceptable temperature T2 has a value comprised between 120° C. and 180° C.
(14) According to other possible embodiments the first maximum acceptable temperature T1 and the second maximum acceptable temperature T2 have different values, but the first maximum acceptable temperature T1 is normally greater than the second maximum acceptable temperature T2.
(15) The control unit 53 of the electric generator 1 operates the cooling fans 41, 42 according to the method 100, as represented in the block diagram of
(16) In a second step 120 of the method 100 it is checked if the temperatures of the end windings 18 and/or of the permanent magnets 19 rise reaches a first upper temperature limit L1. The first upper temperature limit L1 may be a limit which is set for the temperature of the end windings 18 or for the temperature of the permanent magnets 19.
(17) If the first upper temperature limit L1 is not reached, the method 100 continues performing again the first step 110, i.e. monitoring the temperatures of the end windings 18 and of the permanent magnets 19.
(18) If the first upper temperature limit L1 is instead reached, the method 100 continues performing a third step 130, in which the control unit 53 operates the plurality of cooling fans 41, 42 for generating the air flows F1, F2 and providing a first cooling power W1 to the electric generator 1, in particular to the end windings 18 and the permanent magnets 19.
(19) In a fourth step 140 of the method 100 it is checked if, while the first cooling power W1 is provided, the temperature of the permanent magnets 19 reaches the second maximum acceptable temperature T2 while, at the same time, the temperature of the end windings 18 is lower than the first maximum acceptable temperature T1.
(20) If the conditions at the previous fourth step 140 of the method are verified, the method 100 continues with a fifth step 150 in which the control unit 53 operates the plurality of cooling fans 41, 42 for modifying the air flows F1, F2 for providing a second cooling power W2 to the electric generator 1, to the end windings 18 and the permanent magnets 19. The second cooling power W2 is set to be lower than the first cooling power W1, to allow the end windings 18 to be cooled down without raising the temperature of the permanent magnets 19. In a possible embodiment of the present t invention, during the fifth step 150, the temperature of the air flows F1, F2 is comprised between the first maximum acceptable temperature T1 and the second maximum acceptable temperature T2. This condition max be reached, for example, when the ambient temperature around the electric generator 1 is high.
(21) If the conditions at the previous fourth step 140 of the method are not verified, the method 100 continues with a sixth step 150 in which it is checked if, while the first cooling power W1 is provided, the temperatures of the end windings 18 and/or of the magnet 18 continue to rise while remaining both lower than the first and second maximum acceptable temperatures T1, T2, respectively.
(22) If this condition is verified, the method 100 continues with a seventh step 170 in which the control unit 53 operates the plurality of cooling fans 41, 42 for modifying the air flows F1, F2 for providing a third cooling power W3 to the electric generator 1, to the end windings 18 and the permanent magnets 19. The third cooling power W3 is set to be greater than the first cooling power W1, to allow both the end windings 18 and the permanent magnets 19 to be cooled down.
(23) If the conditions at the previous sixth step 160 of the method 100 are not verified, the method 100 continues performing again the third step 130, i.e. continuing to provide the first cooling power W1.
(24) In an eighth step 180 of the method 100, which follows the fifth or the seventh step 170, it is checked if the temperatures of the end windings 18 reach the first maximum acceptable temperature T1. If such condition is reached, the cooling provided by the cooling fans 41, 42 is no more effective and the method has to continue with a final ninth step 190 in which the electric generator 1 is derated, i.e. the electrical power produced by the electric generator 1 has to be reduced, in order to allow both the end windings 18 and the permanent magnets 19 to be cooled down.
(25) If the condition at the previous ninth step 190 of the method 100 is not verified, the method 100 continues performing again the seventh step 170, i.e. continuing to provide the third cooling power W3.
(26) According to two possible embodiments of the present invention, the control unit 53 may operate the cooling fans 41, 42 to generate the first cooling power W1, the second cooling power W2 and the third cooling power W3, in two different ways, respectively, depending on the type of the electric generator 1:
(27) if the electric generator 1 is of the large drive (LD) type, the plurality of cooling fans are operated by switching on/off a portion of them. Therefore, for generating the first cooling power W1 only a respective first portion of the cooling fans are switched on, for generating the second cooling power W2 part of such first portion of the cooling fans are switched off and, for generating the third cooling power W3 all the cooling fans are switched on;
(28) if the electric generator 1 is of the small drive (SD) type (for example, like the one of the attached
(29) Although the invention has been illustrated and described in greater detail with reference to the preferred exemplary embodiment, the invention is not limited to the examples disclosed, and further variations can be inferred by a person skilled in the art, without departing from the scope of protection of the invention.
(30) 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.