Wind power generator and stator iron core therof, and stator iron core module
10541579 ยท 2020-01-21
Assignee
Inventors
Cpc classification
H02K2213/12
ELECTRICITY
H02P25/22
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
H02K29/03
ELECTRICITY
H02K2201/06
ELECTRICITY
International classification
H02K7/18
ELECTRICITY
Abstract
A wind power generator and stator iron core thereof, and stator iron core module; the iron core module (4) has an overall dimension consistent with a principle of the number of slots per pole per phase q=1; the iron core module (4) is provided with two three-phase winding units therein, an electrical angle formed by the two three-phase winding units is 30 degrees. The method of arranging winding in the stator iron core module (4) is changed to effectively reduce fifth and seventh winding harmonic magnetomotive forces.
Claims
1. An iron core module of a stator of a wind power generator, wherein an overall dimension of the iron core module conforms to a principle that the number q of slots per pole per phase is one, two three-phase winding units are arranged in the iron core module, and an electrical angle difference between the two three-phase winding units is 30 degrees: and wherein the iron core module comprises a plurality of tooth slots for accommodating coils, each of the coils is sleeved in two of the plurality of tooth slots, the plurality of tooth slots comprise first tooth slots each being configured to accommodate one coil side and a second tooth slot configured to accommodate two coil sides; the number of the second tooth slot is one, the second tooth slot is arranged in a middle position of the plurality of tooth slots, and the number of the first tooth slots on a left side of the second tooth slot is equal to the number of the first tooth slots on a right side of the second tooth slot; two three-phase winding units having the same number of coils are arranged in the iron core module, the number of coils in each of the two three-phase winding units is an integer multiple of 3; and the two three-phase winding units are arranged on the left side and the right side of the second tooth slot as a center, respectively, and the adjacent coils of the two three-phase winding units each have one coil side arranged in the second tooth slot.
2. The iron core module according to claim 1, wherein a first included angle between center lines of teeth on the left side and the right side of the first tooth slot which is not located at an end is equal to a standard included angle; a second included angle between center lines of teeth on the left side and the right side of the second tooth slot is equal to 1.5 times of the standard included angle; the sum of third included angles corresponding to the first tooth slots at two ends is 2.5 times of the standard included angle, each of the third included angles is an angle between a side edge of the iron core module and a center line of a tooth on a side of the first tooth slot at one end, which side is close to the middle of the iron core module; and the standard included angle is an included angle between center lines of adjacent teeth of the iron core module having uniformly arranged tooth slots and designed according to the principle that the number q of slots per pole per phase is one.
3. The iron core module according to claim 2, wherein the standard included angle is 0.833 degrees.
4. The iron core module according to claim 1, wherein the wire connection of a winding in each of the two three-phase winding units is star connection.
5. The iron core module according to claim 1, wherein the number of the plurality of tooth slots contained in the iron core module is 6n-1, the number of coils in each of the two three-phase winding units is 3n/2, where a value of n is selected from 2, 4, 6, 8, 10, 12, 14, 16, 18.
6. A stator iron core for a wind power generator, wherein the stator iron core has a split structure, and is formed by combining a plurality of the iron core modules according to claim 1.
7. A wind power generator, comprising a rotor and a stator which comprises the stator iron core according to claim 6.
8. The wind power generator according to claim 7, wherein the rotor has a split structure and is formed by combining a plurality of rotor modules.
9. The wind power generator according to claim 7, wherein a magnetic pole of the rotor is an oblique magnetic pole.
10. The wind power generator according to claim 9, wherein in a cross section of the oblique magnetic pole parallel to an axis of the wind power generator, an angle corresponding to an arc length staggered between an upper side and a lower side of the oblique magnetic pole is a standard included angle, and the standard included angle is an included angle between center lines of adjacent teeth of the iron core module having uniformly arranged tooth slots and designed according to the principle that the number q of slots per pole per phase is one.
11. The wind power generator according to claim 10, wherein the standard included angle is 0.833 degrees.
12. The wind power generator according to claim 11, wherein the magnetic pole of the rotor is a surface-mounted magnetic pole, and an axial sectional shape of the magnetic pole allows a non-uniform air gap to be formed between the magnetic pole and an outer circumference of the stator iron core.
13. The wind power generator according to claim 12, wherein in a cross section of the magnetic pole perpendicular to the axis of the wind power generator, an edge of the magnetic pole on a side towards the stator is arc shaped, and a ratio of a maximum air gap to a minimum air gap formed between the edge of the magnetic pole and the outer circumference of the stator iron core is 1.5:1.
14. The wind power generator according to claim 13, wherein in the cross section of the magnetic pole perpendicular to the axis of the wind power generator, an included angle between a bottom edge of the magnetic pole close to a rotor support and a side edge of the magnetic pole ranges from 70 degrees to 75 degrees.
15. The iron core module according to claim 2, wherein the number of the plurality of tooth slots contained in the iron core module is 6n-1, the number of coils in each of the two three-phase winding units is 3n/2, where a value of n is selected from 2, 4, 6, 8, 10, 12, 14, 16, 18.
16. The iron core module according to claim 3, wherein the number of the plurality of tooth slots contained in the iron core module is 6n-1, the number of coils in each of the two three-phase winding units is 3n/2, where a value of n is selected from 2, 4, 6, 8, 10, 12, 14, 16, 18.
17. The iron core module according to claim 4, wherein the number of the plurality of tooth slots contained in the iron core module is 6n-1, the number of coils in each of the two three-phase winding units is 3n/2, where a value of n is selected from 2, 4, 6, 8, 10, 12, 14, 16, 18.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
REFERENCE NUMERALS
(7) TABLE-US-00001 1 rotor support, 2, 3 magnetic pole, 4 iron core module, 41 first tooth slot, 42 second tooth slot, 5-10 winding coil.
DETAILED DESCRIPTION
(8) The embodiments of the present application are described in detail hereinafter with reference to the drawings.
(9) First Embodiment
(10) As shown in
(11) Further, the iron core module 4 may have multiple tooth slots for accommodating coils, and each of the coils can be sleeved in two tooth slots. The tooth slots may include first tooth slots 41 each being configured to accommodate one coil side and a second tooth slot 42 configured to accommodate two coil sides. The number of the second tooth slot 42 can be one and the second tooth slot 42 is arranged in a middle position of the tooth slots, and the number of the first tooth slots 41 on a left side of the second tooth slot 42 may be equal to the number of the first tooth slots 41 on a right side of the second tooth slot 42. Two three-phase winding units having the same number of coils can be provided in the iron core module 4, the number of coils in each of the three-phase winding units can be an integer multiple of 3 (specifically, each three-phase winding unit is regarded as a set of three-phase winding, each phase winding can include a plurality of coils, but each three-phase winding contains the same number of coils, therefore, the total number of coils should be an integer multiple of 3). The two three-phase winding units can be provided on the left side and the right side of the second tooth slot 42 as the center, and one coil side of each of adjacent coils of the two three-phase winding units can be arranged in the second tooth slot 42.
(12) The iron core module of the stator according to the embodiment of the present application will be described in detail with reference to
(13) In
(14) The iron core module 4 described above is a part of the iron core, and an entire stator iron core is formed after a certain number of the iron core modules 4 according to the embodiment are assembled. Each iron core module 4 is in a shape of an arc as a whole. According to the standard design principle that the number q of slot per pole per phase is one, in the iron core modules of the same iron core, the tooth slots have the same dimension and are arranged uniformly, included angles between centers of the adjacent teeth are the same and are defined as a standard included angle (the included angle here is obtained taking the center of the stator as a center of circle). On the premise of the standard design, an alternative solution is that 432 tooth slots are arranged along a whole circumference, a corresponding standard included angle of is equal to 360 degrees/432=0.833 degrees.
(15) In the embodiment of the present application, the overall dimension of the iron core module conforms to the principle that the number q of slot per pole per phase is one, here the overall dimension refers to the overall size, arc length and the like of the iron core module, and the dimensions of some tooth slots and teeth are adjusted with reference to the above standard included angle . For each iron core module, it is necessary to maintain the overall arc length according to the standard design, i.e., the sum of the standard included angles according to the standard design. For example, referring to the structure in
(16) In the embodiment of the present application, the dimension and the arrangement of the tooth slots are improved on the basis of standard design. As a preferred structure, a first included angle between center lines of teeth on the left side and the right side of the first tooth slot 41 which is not located at an end may set to be equal to the standard included angle, and a second included angle between center lines of teeth on the left side and the right side of the second tooth slot 42 may set to be equal to 1.5 times of the standard included angle, and the sum of third included angles corresponding to the first tooth slots 41 (i.e., the first tooth slots located on the left side and the right side in
(17) Further, the number of the tooth slots and the number of the coils in the iron core module are not limited to the configuration shown in
(18) Second Embodiment
(19) This embodiment relates to a stator iron core including the iron core module according to the above embodiment and a wind power generator including the iron core.
(20) The stator iron core according to the embodiment of the present application is formed by assembling a certain number of the above iron core modules. Specifically, corresponding to the number of the tooth slots of the above iron core module, the number of iron core modules constituting the entire iron core may be 36, 18, 12 or 9 on the premise of adopting a design scheme that 432 tooth slots are arranged along the whole circumference. As shown in
(21) A wind power generator according to an embodiment of the present application is formed by assembling the rotor and the stator which includes the above stator iron core. Corresponding to the above stator iron core, the rotor can adopt the following structure.
(22) As shown in
(23) Preferably, the magnetic pole is a surface-mounted magnetic pole, and an axial sectional shape of the magnetic pole enables a non-uniform air gap to be formed between each magnetic pole and an outer circumference of the stator iron core. For example, as shown in
(24) The above structure of the magnetic pole of the rotor can better cooperate with arrangement manner of the tooth slots and the coils in the iron core module of the stator according to the above embodiment, thereby reducing the fifth and seventh harmonic magnetic fields.
(25) In conclusion, the wind power generator according to the embodiments of the present application includes a rotor and a stator, the rotor includes a rotor support and a magnetic pole, and the stator includes an iron core and a single-layer winding. The tooth slots of an iron core module in the permanent magnet generator according to the embodiment is improved on the basis of the design principle that the number q of slots per pole per phase is one. Thus a design of a single-layer winding structure having double Y shifted by an electrical angle of 30 degrees (i.e., a phase difference between the two three-phase winding units in start connection is 30 degrees) is realized by changing a mechanical angle of the tooth slot and the number of the tooth slots, thereby effectively reducing the fifth and seventh winding harmonic magnetomotive forces without increasing the main dimension and manufacturing cost of the coil, and further realizing the purpose of a splitting design for the stator. Since a rotor permanent magnet in the present application has a high utilization rate, a magnetic leakage factor of the permanent magnet can be reduced, a magnetic field of the air gap has good sinuousness, and tooth slot torque can be reduced effectively. Torque ripple of the generator under no load and load can be reduced, and back electromotive force wave under no load can be improved, thereby reducing the vibration and noise of the generator, prolonging the service life of the generator and improving the reliability of the generator. It should be noted that the solution of the embodiment of the present application is not limited to the design of the inner stator and outer rotor type, but may be a design of the inner rotor and outer stator type.
(26) The embodiments described hereinabove are only preferred embodiments of the present application, and should not be interpreted as limitation to the protection scope of the present application. Any modifications and replacements easily conceived by those skilled in the art within the technical scope of the present application are also deemed to fall into the scope of the present application defined by the claims.