ELECTROMAGNETIC POLE FOR A ROTARY ELECTRIC MACHINE AND ROTOR AND ROTARY ELECTRIC MACHINE COMPRISING SUCH AN ELECTROMAGNETIC POLE
20230208234 · 2023-06-29
Assignee
Inventors
Cpc classification
H02K1/24
ELECTRICITY
H02K15/12
ELECTRICITY
H02K3/50
ELECTRICITY
International classification
Abstract
An electromagnetic pole for a rotary electric machine with an axis of rotation is disclosed. The electromagnetic pole has a tooth comprising a tooth core of magnetic material. The tooth core is a laminated tooth core comprising a plurality of steel plates stacked in the direction of the axis of rotation. The electromagnetic pole also has a coil with a wire wound around the tooth core and at least one outer layer of the wire and one under layer of the wire. First portions of the wire of the outer layer are secured with second portions of the wire of the under layer by an adhesive material covering at least partially one of the first portions of the wire. A rotor comprising such electromagnetic poles, an electric machine comprising such a rotor, and a method for producing such an electromagnetic pole are also disclosed.
Claims
1. An electromagnetic pole for a rotary electric machine with an axis of rotation comprising: a tooth comprising a tooth core comprising a magnetic material having a laminated tooth core comprising a plurality of steel plates stacked in the direction of the axis of rotation, a coil comprising a wire wound around the tooth core, the coil comprising at least one outer layer of the wire and one under layer of the wire, the outer layer of the wire comprising first portions of the wire being at the outermost part of the coil relative to the tooth core, the under layer of the wire comprising second portions of the wire adjacent to the first portions of the wire, each second portion of the wire adjacent to one of the first portions of the wire being closer to the tooth core than the said one of the first portion of the wire, wherein at least one of the first portions and/or at least one of the second portions adjacent to the said at least one first portion being covered at least partially with an adhesive material so that the said at least one first portion and the at least one of the second portions adjacent to the said at least one first portion are secured together.
2. The electromagnetic pole according to claim 1, wherein the adhesive material is a UV-curable adhesive.
3. The electromagnetic pole according to claim 1, wherein the adhesive material is a double-sided adhesive tape.
4. The electromagnetic pole according to claim 1, comprising other layers of the wire distinct from the outer layer of the wire and the under layer of the wire, at least two adjacent layers of wires of the under layer of the wire and the other layers of the wire being secured together in pairs with the adhesive material.
5. The electromagnetic pole according to claim 1, wherein the said at least one first portion of the outer layer and the at least one of the second portions of the under layer adjacent to the said at least one first portion are the only portions of the wire secured together.
6. A rotor for a rotary electric machine comprising at least two electromagetic poles according to claim 1; and a rotor core.
7. A rotor for a rotary electric machine according to claim 6, wherein the tooth core of each electromagnetic pole is integral with the rotor core.
8. A rotary electric machine comprising a rotor according to claim 6.
9. A method for producing an electromagnetic pole comprising: providing a tooth, the tooth comprising a tooth core comprising a magnetic material, in particular a laminated tooth core comprising a plurality of stacked steel plates; providing a wire; a first application wherein a first adhesive component is applied on a first portions of the wire; and after the first application, winding the in different layers around the tooth so that the first adhesive component is between each first portions of the wire and a second portion of the wire of an adjacent layer.
10. The method for producing an electromagnetic pole according to claim 9, further comprising a second application wherein a second adhesive component is applied on the second portions of the wire, the second application preceding the winding.
11. The method for producing an electromagnetic pole according to claim 10, wherein the first adhesive component and the second adhesive component being adhesive components of a two-component adhesive, comprising a two-component epoxy glue.
12. The method for producing an electromagnetic pole according to claim 10 wherein the first adhesive component or the second adhesive component is a glue and the other of the first adhesive component and the second adhesive component is an activator.
13. The method for producing an electromagnetic pole according to claim 9, further comprising heating the first adhesive component after the first portion of the wire is wound on the second portion of the wire during the winding.
14. The method for producing an electromagnetic pole according to claim 9, wherein the first adhesive component is a UV-curable adhesive, the method further comprising a UV illumination step after the first portion of the wire is wound on the second portion of the wire during the winding.
15. The method for producing an electromagnetic pole according to claim 9, wherein the winding includes guiding the wire with a needle.
16. A method for producing a rotor for a rotary electric machine, the rotor comprising a plurality of electromagnetic poles produced with the method for producing an electromagnetic pole according to claim 9.
Description
[0036] The invention will be better understood by reading the following description and examining the figures which accompany it. These figures are provided purely by way of illustration and in no way limit the invention:
[0037]
[0038]
[0039]
[0040]
[0041]
[0042] The elements which are identical, similar or analogous retain the same reference from one figure to another. The ordinal numbers are used to differentiate features. They do not define a position of a feature. As a consequence, for example, a third feature of a product does not mean that the product has a first and/or a second feature. The words “axial”, “axially” relates to the direction of the axis of rotation A of the rotary electric machine.
[0043]
[0044] For example, the first bearing 11 sits in a first bracket 5, and the second bearing 12 sits in a second bracket 6. The first bearing 11 and the second bearing 12 are for instance ball bearings, roller bearings or plain bearings. In the embodiment of
[0045] The shaft 4 can be rotationally linked to a driving member 13 such as a pulley or a gear wheel.
[0046] The rotor 3 is rotationally connected to the shaft 4.
[0047]
[0048] The rotor 3 comprises a plurality of electromagnetic poles 17. Each electromagnetic pole comprises a tooth 18 and one coil 16. The tooth 18 comprises a tooth core 19. For example the tooth core 19 is a laminated tooth core comprising a plurality of steel plates stacked in the direction of the axis of rotation A. The coil 16 comprises a wire 20 wound around the tooth core 19. The coil 16 comprises at least one outer layer 21 of the wire and one under layer 22 of the wire. Each coil 16 comprises for example a plurality of turns. In
[0049] The outer layer 21 of the wire comprises first portions 23 of the wire which are at the outermost part of the coil 16 relative to the tooth core.
[0050] The under layer 22 of the wire comprises second portions 24 of the wire adjacent to the first portions 23 of the wire. Each second portion 24 of the wire adjacent to one of the first portions 23 of the wire is closer to the tooth core 19 than the said one of the first portion 23 of the wire.
[0051] At least one of the first portions 23 and/or at least one of the second portions 24 adjacent to the said at least one first portion 23 is covered at least partially with an adhesive material 25 so that the said at least one first portion 23 and the at least one of the second portions 24 adjacent to the said at least one first portion 23 are secured together.
[0052] The adhesive material 25 may also secure together two adjacent turns of the outer layer 21 of the wire at intra-layer securing zones 26. Such intra-layer securing zones 26 may also exist between two adjacent turns of the under layer 22 of the wire.
[0053] For example, the said at least one first portion 23 of the outer layer 21 and the at least one of the second portions 24 of the under layer 22 adjacent to the said at least one first portion are the only portions of the wire secured together.
[0054] In another example, the coil 16 comprises other layers of the wire distinct from the outer layer 21 of the wire and the under layer 22 of the wire. At least two adjacent layers of wires of the under layer 22 of the wire and the other layers of the wire are secured together in pairs with the adhesive material 25.
[0055] The rotor 3 comprises a rotor body 15. The rotor body 15 comprises a rotor core 27 and the plurality of the teeth 18 of the electromagnetic poles. For example the teeth 18 are projecting radially. The plurality of teeth 18 may comprise an even number of teeth 18. The plurality of teeth 18 may notably comprise four, six, or eight teeth. In the first embodiment of
[0056] For example the rotor core is a laminated rotor core comprising a plurality of steel plates stacked in the direction of the axis of rotation A.
[0057] In the embodiments shown in the figures, the tooth core 19 of each electromagnetic pole 17 is integral with the rotor core 27. The rotor body 15 is for example a stack of laminations configured to be mounted coaxially on the shaft 4. For example, the rotor body 15 is press-fitted on the shaft 4. The press-fitting of the rotor body 15 on the shaft 4 relies on having an outer circumference of the shaft 4 slightly higher than an inner circumference of the rotor body 15, before proceeding with the press-fitting.
[0058] In another embodiment not shown, the rotor core and the tooth cores are distinct. For example the tooth cores are secured on the rotor core thanks to a dovetail joint.
[0059] The coils 16 especially forms coil ends 36 projecting axially from respectively two axial ends of the rotor body 15. The rotor 3 may further comprise two end plates 37, 38, configured to come against the two axial ends of the rotor body 15, such that to provide a mechanical holding of the stack of laminations. The two end plates 37, 38 are especially located between the rotor body 15 and the coil ends 36.
[0060] The adhesive material 25 is for example a UV-curable adhesive.
[0061] In another example the adhesive material 25 is a double-sided adhesive tape. Other example of adhesive materials 25 will be described thereafter.
[0062]
[0063]
[0064] A method for producing the electromagnetic pole 17 comprises the following steps: [0065] providing a tooth 18, the tooth 18 comprising a tooth core 19 comprising a magnetic material, in particular a laminated tooth core comprising a plurality of stacked steel plates, [0066] providing a wire 20, [0067] a first application step wherein a first adhesive component 33 is applied on a first portions 23 of the wire, [0068] after the first application step, a winding step wherein the wire is wound in different layers around the tooth so that the first adhesive component 33 is between each first portions of the wire and a second portion 24 of the wire of an adjacent layer.
[0069] The first adhesive component 33 is for example applied on the first portions 23 of the wire thanks to a first nozzle 29. The first nozzle 29 is fed with the first adhesive component 33 by a first feeder 30. The first feeder 30 comprises for example a tube, a pump and a control device. Such a first nozzle 29 and a first feeder 30 is particularly suitable for liquid first adhesive component 33 such as a UV-curable adhesive and other liquid adhesive materials.
[0070] If the first adhesive component 33 is a UV-curable adhesive, the method comprises for example a UV illumination step after the first portion 23 of the wire is wound on the second portion 24 of the wire during the winding step.
[0071] In another embodiment not shown, the first adhesive component 33 is applied on the first portions 23 of the wire thanks to a dispenser. Such a dispenser is particularly suitable for first adhesive components 33 such as double-sided tape.
[0072] In these embodiments, the first adhesive components is the adhesive material 25. The method comprises for example a second application step wherein a second adhesive component 34 is applied on the second portions 24 of the wire. The second application step precedes the winding step.
[0073] The second adhesive component 34 is for example applied on the second portions 24 of the wire thanks to a second nozzle 31 as shown in
[0074] The first adhesive component 33 and the second adhesive component 34 are for example adhesive components of a two-component adhesive, in particular a two-component epoxy glue.
[0075] In another example, the first adhesive component 33 or the second adhesive component 34 is a glue and the other of the first adhesive component 33 and the second adhesive component 34 is an activator. For example the glue is a cyanoacrylate glue and the activator is an acetone-based activator.
[0076] The method comprises for example a heating step wherein the first adhesive component is heated after the first portion 23 of the wire is wound on the second portion 24 of the wire during the winding step.
[0077] The wire 20 is for example wound around the tooth thanks to a needle 28. The needle 28 is for instance an hollow needle through which the wire 20 is guided. For example, the needle is moved around the tooth to position the wire 20 on the tooth. The needle 28 has a wire outlet through which the wire 20 exits the needle 28. The first application step and if any the second application step are made for example on the wire after the wire exits from the wire outlet.
[0078] The embodiments of electromagnetic poles 17 shown in the figures relates to a rotor of a rotary electric machine wherein the stator 2 is radially outside the rotor 3. In another embodiment not shown the electromagnetic pole is an electromagnetic pole of a rotor of a rotary electric machine wherein the stator is radially inside the rotor.
[0079] In another embodiment not shown, the electromagnetic pole is an electromagnetic pole of a stator of a rotary electric machine. In this case, the coil is a coil of the stator winding. For example the polarity of the pole is changing depending on the polarity of an alternating current powering the coil.
PART LIST
[0080] 1 rotary electrical machine
[0081] 2 stator
[0082] 3 rotor
[0083] 4 shaft
[0084] 5 first bracket
[0085] 6 second bracket
[0086] 7 housing part
[0087] 8 stator winding
[0088] 9 stator core
[0089] 10 stator winding end
[0090] 11 first bearing
[0091] 12 second bearing
[0092] 13 driving member
[0093] 15 rotor body
[0094] 16 coil
[0095] 17 electromagnetic pole
[0096] 18 tooth
[0097] 19 tooth core
[0098] 20 wire
[0099] 21 outer layer
[0100] 22 under layer
[0101] 23 first portion
[0102] 24 second portion
[0103] 25 adhesive material
[0104] 26 intra-layer securing zones
[0105] 27 rotor core
[0106] 28 needle
[0107] 29 first nozzle
[0108] 30 first feeder
[0109] 31 second nozzle
[0110] 32 housing
[0111] 33 first adhesive component
[0112] 34 second adhesive component
[0113] 35 second feeder
[0114] 36 coil end