Electrical machine with hybrid tooth design
11362550 · 2022-06-14
Assignee
Inventors
Cpc classification
H02K2213/12
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
H02K1/18
ELECTRICITY
Abstract
Provided is a stator segment for the stator or the rotor of an electrical machine including a segment body circumferentially extending about a longitudinal axis of the stator segment between two circumferential ends. The segment body includes: a plurality of teeth protruding according to a radial direction orthogonal to the longitudinal axis, each tooth circumferentially extending between two respective side faces, the teeth being circumferentially distributed between two end teeth of the teeth, the teeth including at least one intermediate tooth circumferentially included between the end teeth, a plurality of slots, the plurality of slots including a plurality of intermediate slots circumferentially included between the two end slots, wherein side faces of the two end teeth are inclined with or parallel to each other and the side faces of the at least one intermediate tooth are respectively parallel to each other or inclined with respect to each other.
Claims
1. A stator segment for a stator or a rotor of an electrical machine including a plurality of segments, wherein each segment includes a segment body circumferentially extending about a rotational axis of the stator or the rotor between two circumferential ends, the segment body comprising: a plurality of teeth protruding according to a radial direction orthogonal to the rotational axis, each tooth circumferentially extending between two respective side faces, the plurality of teeth being circumferentially distributed between two end teeth of the plurality of teeth, the plurality of teeth comprising at least one intermediate tooth circumferentially comprised between the two end teeth; and a plurality of slots, circumferentially interposed between the plurality of teeth of the stator, the plurality of slots being circumferentially distributed between two end slots, each end slot being circumferentially comprised between a respective end tooth and a respective circumferential end, the plurality of slots comprising a plurality of intermediate slots circumferentially comprised between the two end slots; wherein each segment comprises a coil winding arranged in the segment body, the coil winding including at least two side coils respectively housed in the end slots; wherein the plurality of segments are circumferentially joined together at two respective circumferential ends in such a way that a required segment tolerance circumferential gap is interposed between two circumferentially adjacent segments to reduce a torque and power harmonics induced by an addition of the required segment tolerance circumferential gap; wherein side faces of the two end teeth are inclined with respect to each other and the side faces of each intermediate tooth are parallel to each other or the two side faces of the two end teeth are parallel to each other and the side faces of each intermediate tooth are inclined with respect to each other.
2. The segment as claimed in claim 1, wherein the side faces of the two end teeth are radially oriented or parallel to each other and the side faces of each intermediate tooth are respectively parallel to each other or radially oriented.
3. The segment as claimed in claim 1, wherein the coil winding is a double-layer winding including two coils in each of the intermediate slots.
4. The segment as claimed in claim 1, wherein the coil winding is a coil concentrated winding or a double-layer coil distributed winding.
5. A wind turbine including an electrical generator including the stator or rotor as claimed in claim 1.
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)
(5)
DETAILED DESCRIPTION
(6) The illustrations in the drawings are schematic. It is noted that in different figures, similar or identical elements are provided with the same reference signs.
(7)
(8) The wind turbine 1 further comprises a wind rotor 5 having two, three or more blades 4 (in the perspective of
(9) The blades 4 extend radially with respect to the rotational axis Y.
(10) The wind turbine 1 comprises a concentrated winding electrical generator 10.
(11) The wind rotor 5 is rotationally coupled with the electrical generator 10 by means of a rotatable main shaft 9.
(12) According to other possible embodiments of the present invention (not represented in the attached figures), the wind rotor 5 is rotationally coupled directly with the electrical generator 10 (direct-drive generator configuration).
(13) A schematically depicted bearing assembly 8 is provided in order to hold in place the rotor 5. The rotatable main shaft 9 extends along the rotational axis Y. The permanent magnet electrical generator 10 includes a stator 11 and a rotor 12. The rotor 12 is radially external to the stator 11 and is rotatable with respect to the stator 11 about the rotational axis Y. According to other embodiments of the present invention (not shown) the rotor is radially internal to the stator 11.
(14) According to other possible embodiments of the present invention (not represented in the attached figures), embodiments of the present invention can be applied to any electrical generator or motor which has concentrated winding topology, for example geared drive-trains or electrical machine of the synchronous or asynchronous types.
(15) According to other possible embodiments of the present invention (not represented in the attached figures), embodiments of the present invention can be applied to any electrical generator or motor which has a double-layer coil distributed winding.
(16)
(17) The stator 11 includes a plurality of circumferential segments 100, which are circumferentially joined together in such a way that a circumferential gap 110 is interposed between two circumferentially adjacent stator segments 100. The stator 11 has a toothed structure, as described in the following, for housing a coil winding 30 arranged in each of the stator segments 100.
(18) According to other possible embodiments of the present invention (not represented in the attached figures), embodiments of the present invention and the description which follows is applied to a rotor of an electrical machine.
(19) With reference to
(20) The segment body 22 includes a yoke 13, a plurality of teeth 15, 16 and a plurality of slots 17, 18.
(21) Each tooth 15, 16 protrudes from the yoke 13 according to a radial direction orthogonal to the longitudinal axis Y. The plurality of teeth 15, 16 is circumferentially distributed between two end teeth 15 of the plurality of teeth 15, 16. Each end tooth 15 circumferentially extends between two respective side faces 25. The plurality of teeth 15, 16 comprises at least one intermediate tooth 16 (two intermediate teeth 16 are shown in
(22) The plurality of slots 17, 18 are circumferentially interposed between the teeth 15, 16 and circumferentially distributed between two end slots 17. Each end slot 17 is circumferentially comprised between a respective end tooth 15 and a respective circumferential end 23 of the segment body 22. The plurality of slots 17, 18 comprise a plurality of intermediate slots 18 (two complete intermediate slot 18 are shown in
(23) The coil winding 30 is a double-layer winding including two side coils 41 respectively housed in the end slots 17 and two coils 42 in each of the intermediate slots 18. Each of the side coils 41 and of the coils 42 extends radially from the yoke towards the radial external end of the respective slot 17, 18, i.e. towards the circumferential air gap 19.
(24) According to possible embodiments of the present invention, the coil winding 30 may by a coil concentrated winding or a double-layer coil distributed winding.
(25) With reference to the embodiment of
(26) According to other embodiments of the present invention, the two side faces 25 of the two end teeth 15 are inclined with respect to each other.
(27) According to the embodiment of
(28) At the circumferentially end, instead a parallel slot design geometry is provided for the end slot 17, i.e. the side faces 25 of the end teeth 15 are parallel to the circumferential end 23 of the segment 100, thus offering an improved good slot fill factor, which is particularly advantageous for machines with large conductor sizes. The use of parallel slots further allows achieving a torque ripple reduction.
(29) With reference to the embodiment of
(30) According to other embodiments of the present invention, the two side faces 26 of each intermediate tooth 16 are inclined with respect to each other.
(31) According to the embodiment of
(32) At the circumferentially end, instead a parallel tooth design geometry is provided for the end teeth 15, thus reducing the copper fill factor, with a consequent reduction in end winding length afforded by utilizing an easier coil insertion procedure, i.e. the coil does not have to be deformed to pass over the wider tooth top, as it is the case in a parallel slot design geometry.
(33) In both embodiments, a mixture of tooth designs combines the advantages of both designs in order to reduce the torque and power harmonics induced by the addition of a required segment tolerance gap.
(34) Further, the dimension and shape of the gap can be efficiently controlled by efficiently combining the parallel slot design geometry with the parallel tooth design geometry, as described above.
(35) Although the present invention has been disclosed in the form of preferred embodiments and variations thereon, it will be understood that numerous additional modifications and variations could be made thereto without departing from the scope of the intention.
(36) 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. The mention of a “unit” or a “module” does not preclude the use of more than one unit or module.