ROTOR FOR A SYNCHRONOUS MACHINE
20220368183 · 2022-11-17
Inventors
Cpc classification
H02K29/03
ELECTRICITY
International classification
Abstract
A rotor for a synchronous machine is described. The rotor includes a central axis; a bore being centrally positioned and extending axially relative to the central axis. Poles are arranged around the bore and poles extend axially in a direction parallel to the central axis. An air gap surface is configured to face an air gap and slots mutually angularly spaced relative to the central axis wherein each slot extends axially in a direction parallel to the central axis and wherein each slot is adjacent the air gap surface.
Claims
1. A rotor for a synchronous machine, the rotor comprising: a central axis; a bore being centrally positioned and extending axially relative to the central axis; a plurality of poles arranged around the bore, the poles extend axially in a direction parallel to the central axis; an air gap surface configured to face an air gap; and a plurality of slots mutually angularly spaced relative to the central axis wherein each slot extends axially in a direction parallel to the central axis, each slot being adjacent the air gap surface and wherein the plurality of slots have the same shape.
2. The rotor of claim 1, further comprising an internal surface and an external surface, the internal surface defining the bore wherein the bore is configured to receive a transmission shaft wherein the air gap surface is the external surface and wherein each slot is radially spaced from the internal surface and radially adjacent to the external surface.
3. The rotor of claim 2, wherein the slots are arranged to be concentrically aligned relative to the external surface.
4. The rotor of claim 1, further comprising an internal surface and an external surface, the internal surface defining the bore wherein the bore is configured to accommodate a stator, wherein the air gap surface is the internal surface and wherein the each slot is radially spaced from the external surface and radially adjacent to the internal surface.
5. The rotor of claim 4, wherein the slots are arranged so as to be concentrically aligned relative to the internal surface.
6. The rotor of claim 1, further comprising a plurality of transverse laminates stacked along an axial direction of the rotor.
7. The rotor of claim 6, further comprising a plurality of magnet pockets wherein a plurality of magnets are inserted in the magnetic pockets wherein the slots are positioned around the plurality of magnetic pockets.
8. The rotor of claim 6, wherein each laminate comprises flux barriers, the flux barriers being arranged to define the poles wherein the poles are mutually angularly spaced about the rotational axis and wherein the slots are positioned around the plurality of poles.
9. The rotor of claim 8, further comprising a plurality of magnets wherein the plurality of magnets are inserted in the flux barriers.
10. The rotor of claim 7, wherein the plurality of magnet pockets are positioned with the flux barriers and wherein a plurality of magnets are inserted in the magnetic pockets.
11. The rotor of claim 1, wherein the shape of the slots is selected from the group consisting of circular, elliptical, disco-rectangular, and triangular.
12. A synchronous machine comprising: a stator for generating a rotating magnetic flux, wherein the stator comprises stator poles; and a rotor according to claim 1 wherein the rotor is spaced from the stator by an air gap, wherein the rotor is configured for rotating about the central axis relative to the stator in synchronization with the rotating magnetic flux and wherein the air gap surface faces the air gap and the plurality of slots located adjacent to the air gap.
13. The synchronous machine of claim 12, wherein the synchronous machine is a reluctance machine.
14. The synchronous machine of claim 12, wherein the synchronous machine is a permanent magnet assisted reluctance machine.
15. The synchronous machine of claim 12, wherein the synchronous machine is an internally mounted permanent magnet machine.
16. A rotor for a synchronous machine, the rotor comprising: a central axis; a bore being centrally positioned and extending axially relative to the central axis; a plurality of poles arranged around the bore, the poles extend axially in a direction parallel to the central axis; an air gap surface configured to face an air gap; and a plurality of slots mutually angularly spaced relative to the central axis wherein each slot extends axially in a direction parallel to the central axis and wherein each slot is adjacent the air gap surface.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0010] The foregoing and other features and advantages of the present disclosure will be more fully understood from the following description of various embodiments, when read together with the accompanying drawings, in which:
[0011]
[0012]
[0013]
[0014]
[0015]
[0016]
[0017]
[0018]
[0019]
[0020]
[0021]
[0022]
DETAILED DESCRIPTION OF THE DRAWINGS
[0023] This disclosure generally relates to a rotor for a synchronous machine having a low torque ripple effect.
[0024]
[0025] The rotor 10 has an air gap surface X. The air gap surface X is the portion of the rotor 10 that borders an air gap in a synchronous machine. The air gap surface X faces onto the air gap. The air gap surface X is configured to face the air gap in a synchronous machine. The air gap surface X may be the internal surface 16 or the external surface 18 of the rotor 10. With reference to
[0026] With respect to
[0027] With reference to
[0028] Each slot 22 extends axially in a direction parallel to the central axis A. The slots 22 are configured as through passages. Each slot 22 is positioned adjacent the air gap surface X. The plurality of slots 22 is circumferentially adjacent to the air gap surface X. The plurality of slots 22 border on the air gap surface X. The slots 22 are positioned along the periphery of the rotor 12. Slots 22 are not contiguous with the air gap surface. The plurality of slots 22 is arranged so as to be concentrically aligned relative to the air gap surface X.
[0029] Generally, the number of slots 22 (including the flux barriers) may be selected using the following relationship: (1.25÷1.35)*Q, where Q is the stator slot number.
[0030] The slots 22 encircle the plurality of poles 14. The plurality of slots 22 form a discontinuous magnetic field barrier around the plurality of poles 22. In an embodiment, the slots 22 are positioned between the air gap surface X and the plurality of poles 14.
[0031] The slots 22 are calibrated in shape and size according to the size of the synchronous machine, stator slot number and rotor geometry. The shape of the slots 22 is selected from the group consisting of: circular, elliptical, disco-rectangular and triangular.
[0032] With respect to
[0033] The slots 22 encircle the plurality of the radially outwardly extending poles 14. The plurality of slots 22 form a discontinuous magnetic field barrier around the plurality of the radially outwardly extending poles 14. In an embodiment, the slots 22 are positioned between the external surface 18 and the plurality of the radially outwardly extending poles 14.
[0034] With respect to
[0035] The slots 22 encircle the plurality of the radially inwardly extending poles 14. The plurality of slots 22 form a discontinuous magnetic field barrier around the plurality of the radially inwardly extending poles 14. In an embodiment, the slots are positioned between the internal surface 16 and the plurality of the radially inwardly extending poles 14.
[0036] In an embodiment, the rotor 10 is transversely laminated. The rotor 10 comprises a plurality of transverse laminates 24 stacked along an axial direction of the rotor 10. The rotor 10 is formed through the aligned stacking in succession of a plurality of the transverse laminates 24. The transverse laminates 24 are shaped like discs and are constrained to one another to constitute a cylindrical structure that constitutes the rotor N.
[0037] Each laminate 24 is made of ferromagnetic material. Each laminate 24 comprises flux barriers 26. The flux barriers 26 are formed as voids in the rotor 10. The flux barriers 26 may be curvilinear, linear or chevron shaped. The flux barriers 26 are arranged in groups 26′ where each group constitutes a pole 14. In the illustrated embodiment, in each group 26′ a plurality of flux barriers 26 are formed in each quarter circumferential angular region in the rotor 10. The flux barriers 26 is a plurality of voids.
[0038] Flux guides 28 are positioned adjacent the flux barriers 26. Flux guides 28 are interposed between the flux barriers 26. Flux guides 28 are positioned between flux barriers 26 in each group 26′.
[0039] The flux barriers 26 are arranged to define the poles 14. The poles 14 are mutually angularly spaced about the central axis A. The groups of flux barriers 26′ are arranged equidistant from one another in the angular direction along the rotor 10. The plurality of slots 22 are positioned around the plurality of poles 14. The plurality of slots 22 are positioned around the groups of flux barriers 26′. The slots 22 are positioned around the flux barriers 26 and the flux guides 28 that define the plurality of poles 14.
[0040] The groups flux barriers 26′ are positioned adjacent the air gap surface X with the plurality of slots 22 positioned between the groups flux barriers 26′ and the air gap surface X. The plurality of slots 22 are positioned between the flux barriers 26′ and the air gap surface X. The plurality of slots 22 are positioned between the air gap surface X and the flux barriers 26 and the flux guides 28.
[0041] The dimension slots 22 may be varied in respect to the type and the dimension of the synchronous machine. In an embodiment, the dimension of the slot 22 may be approximately one half of the flux barrier height 26. In a rotor 10 with a plurality of flux barriers 26, the flux barrier 26 closer to the air gap surface X is used reference.
[0042] If the slot 22 is circular the dimension is the diameter slot 22. If the slot 22 is not circular, the dimension is the width of the slot 22 that is approximately equal to the height of the flux barrier 26. In a rotor 10 with a plurality of flux barriers 26, the flux barrier 26 closer to the air gap surface X is used reference. In any case the minimum height or width cannot be smaller than the thickness of each laminate 24.
[0043] In an embodiment, the rotor 10 may of the internally mounted permanent magnet type where torque is produced by the presence of the magnets. The magnets further provide rotor magnetization. In an internally mounted permanent magnet type rotor 10 the flux barriers 26 may be the magnetic pockets where the permanent magnets are inserted.
[0044]
[0045] A single magnet 25 may define a pole 14. In an embodiment, a plurality of magnets 25 are grouped to define respective plurality of poles 14.
[0046] The positioning of the magnetic pockets 27 demarks the arrangement of the magnets 25. The slots 22 are positioned around the plurality of magnetic pockets 27. The plurality of magnetic pockets 27 are positioned adjacent the air gap surface X with the plurality of slots 22 positioned between the magnetic pockets 27 and the air gap surface X. The slots 22 are positioned around the plurality of magnets 25. The plurality of magnets 25 are positioned adjacent the air gap surface X with the plurality of slots 22 positioned between the magnets 25 and the air gap surface X.
[0047] In an embodiment, the rotor 10 may be of the permanent magnet assisted type.
[0048] In an alternative embodiment, with reference to
[0049]
[0050] With reference to
[0051] With reference to
[0052] The synchronous machine may be configured as permanent magnet assisted reluctance machine (not shown) comprising a permanent magnet assisted type rotor 10. The synchronous machine may be configured as an internally mounted permanent magnet machine (not shown) comprising an internally mounted permanent magnet type rotor N.
[0053] The skilled person would appreciate that foregoing embodiments may be modified or combined to obtain the rotor 10 of the present disclosure.
INDUSTRIAL APPLICABILITY
[0054] This disclosure describes a rotor 10 for a reluctance machine. The rotor 10 is provided with a plurality of slots that enable the reduction or balancing of the magnetic flux fluctuation during rotation so as to reduce the cogging torque. The presence of the slots negates the alignment effect (reluctance effect) of the stator teeth and the rotor lamination. The slots are obtained directly on the rotor during lamination punching and stacking process.
[0055] Accordingly, this disclosure includes all modifications and equivalents of the subject matter recited in the claims appended hereto as permitted by applicable law. Moreover, any combination of the above-described elements in all possible variations thereof is encompassed by the disclosure unless otherwise indicated herein.
[0056] One skilled in the art will realize the disclosure may be embodied in other specific forms without departing from the disclosure or essential characteristics thereof. The foregoing embodiments are therefore to be considered in all respects illustrative rather than limiting of the disclosure described herein. Scope of the disclosure is thus indicated by the appended claims, rather than the foregoing description, and all changes that come within the meaning and range of equivalence of the claims are therefore intended to be embraced therein.