WO2007055775A2 - Rotary electric machine - Google Patents
Rotary electric machine Download PDFInfo
- Publication number
- WO2007055775A2 WO2007055775A2 PCT/US2006/033322 US2006033322W WO2007055775A2 WO 2007055775 A2 WO2007055775 A2 WO 2007055775A2 US 2006033322 W US2006033322 W US 2006033322W WO 2007055775 A2 WO2007055775 A2 WO 2007055775A2
- Authority
- WO
- WIPO (PCT)
- Prior art keywords
- permanent
- magnet
- rotor
- permanent magnet
- rotor core
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Ceased
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Classifications
-
- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02K—DYNAMO-ELECTRIC MACHINES
- H02K1/00—Details of the magnetic circuit
- H02K1/06—Details of the magnetic circuit characterised by the shape, form or construction
- H02K1/22—Rotating parts of the magnetic circuit
- H02K1/27—Rotor cores with permanent magnets
- H02K1/2706—Inner rotors
- H02K1/272—Inner rotors the magnetisation axis of the magnets being perpendicular to the rotor axis
- H02K1/274—Inner rotors the magnetisation axis of the magnets being perpendicular to the rotor axis the rotor consisting of two or more circumferentially positioned magnets
- H02K1/2753—Inner rotors the magnetisation axis of the magnets being perpendicular to the rotor axis the rotor consisting of two or more circumferentially positioned magnets the rotor consisting of magnets or groups of magnets arranged with alternating polarity
- H02K1/276—Magnets embedded in the magnetic core, e.g. interior permanent magnets [IPM]
- H02K1/2766—Magnets embedded in the magnetic core, e.g. interior permanent magnets [IPM] having a flux concentration effect
-
- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02K—DYNAMO-ELECTRIC MACHINES
- H02K1/00—Details of the magnetic circuit
- H02K1/06—Details of the magnetic circuit characterised by the shape, form or construction
- H02K1/22—Rotating parts of the magnetic circuit
- H02K1/27—Rotor cores with permanent magnets
- H02K1/2706—Inner rotors
- H02K1/272—Inner rotors the magnetisation axis of the magnets being perpendicular to the rotor axis
- H02K1/274—Inner rotors the magnetisation axis of the magnets being perpendicular to the rotor axis the rotor consisting of two or more circumferentially positioned magnets
- H02K1/2753—Inner rotors the magnetisation axis of the magnets being perpendicular to the rotor axis the rotor consisting of two or more circumferentially positioned magnets the rotor consisting of magnets or groups of magnets arranged with alternating polarity
- H02K1/278—Surface mounted magnets; Inset magnets
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- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02K—DYNAMO-ELECTRIC MACHINES
- H02K1/00—Details of the magnetic circuit
- H02K1/06—Details of the magnetic circuit characterised by the shape, form or construction
- H02K1/22—Rotating parts of the magnetic circuit
- H02K1/24—Rotor cores with salient poles ; Variable reluctance rotors
- H02K1/246—Variable reluctance rotors
Definitions
- the present disclosure relates to electric machines having a stator and a rotor and, more particularly, to electric machines having a rotor that includes permanent magnets.
- Many electric machines such as electric motors and electric generators, include a stator that is held stationary and a rotor that rotates adjacent the stator.
- the stator and rotor may be configured to transfer power between one another through one or more rotating magnetic fields.
- Some electric machines may include a permanent-magnet type rotor with permanent magnets mounted on or inside a rotor core of the rotor. Each permanent magnet of the rotor may individually create a north or south magnetic pole of the rotor.
- a permanent- magnet type rotor having only a single permanent magnet creating each of its magnetic poles may, however, limit the performance potential of the associated electric machine.
- U.S. Patent No. 6,664,688 to Naito et al. (“the '688 patent”) shows a rotor with each of its magnetic poles created by a group of permanent magnets.
- Each group of permanent magnets of the '688 patent includes an outer permanent magnet disposed in a recess in an outer surface of a rotor core.
- each group of permanent magnets of the rotor disclosed by the '688 patent includes two arc-shaped inner permanent magnets mounted in cavities in the rotor core. Inner ends of the two inner permanent magnets are disposed adjacent one another, radially inward of the outer permanent magnet of the group.
- Outer ends of the two inner permanent magnets of each group are disposed at the outer surface of the rotor on opposite sides of the outer permanent magnet.
- a relatively thin portion of the rotor core between the inner ends of the two inner permanent magnets provides the only connection between a portion of the rotor core disposed radially outward of the two inner permanent magnets and other portions of the rotor core.
- each of the magnetic poles of the rotor of the '688 patent is created by multiple permanent magnets, certain disadvantages persist.
- the relatively narrow portion of the rotor core that extends between the inner ends of the two inner permanent magnets may be subjected to undesirably high stresses during rotation of the rotor. Rotation of the rotor may create centrifugal force on the portion of the rotor core disposed radially outward the inner permanent magnets.
- the relatively thin portion of the rotor core between inner ends of the two inner permanent magnets must counteract all of the centrifugal force on the portion of the rotor core disposed radially outward of the two inner permanent magnets.
- the shape of the outer permanent magnet and the cavity in which it is mounted may make the outer permanent magnet susceptible to detachment from the rotor core during high-speed rotation of the rotor. Furthermore, because they are arc-shaped, the two inner permanent magnets may be expensive.
- the electric machine and rotor of the present disclosure solve one or more of the problems set forth above.
- the rotor may include a rotor core constructed of magnetically- permeable material and a permanent-magnet cluster that creates a magnetic pole of the rotor.
- the permanent-magnet cluster may be composed of permanent magnets mounted to the rotor core, including a first permanent magnet, a second permanent magnet, a third permanent magnet, and a fourth permanent magnet.
- the second permanent magnet may have a first end disposed adjacent a first end of the first permanent magnet, with a first portion of the rotor core disposed therebetween.
- the third permanent magnet may have a first end disposed adjacent a second end of the first permanent magnet, with a second portion of the rotor core disposed therebetween.
- the fourth permanent magnet may form at least a portion of an outer perimeter of the rotor core and may be disposed radially outward of at least a portion of at least one of the first permanent magnet, the second permanent magnet, and the third permanent magnet.
- the rotor may include a rotor core constructed of magnetically-permeable material and a plurality of permanent magnets mounted to the rotor core.
- the plurality of permanent magnets mounted to the rotor core may include a permanent-magnet cluster that creates a magnetic pole of the rotor.
- the permanent-magnet cluster may include at least one outer permanent magnet that forms at least a portion of an outer perimeter of the rotor. At least a portion of the rotor core may overlap at least a portion of the outer permanent magnet.
- the permanent-magnet cluster may include at least one inner permanent magnet, wherein at least a portion of the inner permanent magnet is disposed radially inward of the outer permanent magnet.
- a further disclosed embodiment relates to an electric machine.
- the electric machine may include a rotor that is rotatable about a rotor rotation axis.
- the rotor may include a rotor core constructed of a magnetically-permeable material.
- the rotor core may include a first cavity, the first cavity having a curved first end and a second end. The second end of the first cavity may be disposed closer to an outer perimeter of the rotor than the first curved end, and the first curved end may be wider than the second end.
- the rotor core may include a second cavity, at least a portion of the second cavity being disposed adjacent the first curved end of the first cavity.
- the rotor may also include a first permanent magnet disposed in the first cavity and a second permanent magnet disposed in the second cavity.
- Fig. 1 is a sectional illustration of one embodiment of an electric machine according to the present invention
- Fig. 2 is an enlarged view of the portion of Fig. 1 shown in rectangle 2 of Fig. 1;
- Fig. 3 is a sectional illustration of another embodiment of an electric machine according to the present disclosure.
- Fig. 1 illustrates one embodiment of an electric machine 10 according to the present disclosure.
- Electric machine 10 may be configured to operate as an electric motor and/or an electric generator.
- Electric machine 10 may include a housing 12, a stator 14, and a rotor 16.
- Housing 12 may provide support for stator 14 and rotor 16. Rotor
- stator 14 may extend around rotor rotation axis 18 and rotor 16, with an annular air gap 66 between an outer perimeter 30 of rotor 16 and stator 14.
- Stator 14 may include windings of an electrical conductor (not shown), such as wire. Such windings of an electrical conductor may be operable to receive electricity from an electrical power source to produce a rotating magnetic field adjacent rotor 16.
- Rotor 16 may include a rotor shaft 20, a rotor hub 22, and a rotor core 24.
- Rotor hub 22 may be constructed of a material with a relatively low permeability to magnetic flux.
- Rotor hub 22 may extend around rotor shaft 20 at a shaft/hub interface 23.
- Rotor core 24 may be constructed of a material having a relatively high permeability to magnetic flux, such as a ferrous metal.
- Rotor 16 may also include permanent magnets mounted to rotor core 24, and some or all of these permanent magnets may be arranged in permanent-magnet clusters 26, 28.
- Permanent-magnet clusters 26 and permanent-magnet clusters 28 may be arranged in alternating positions around outer perimeter 30 of rotor 16. As will be described in greater detail below, permanent-magnet clusters 26 may create north magnetic poles of rotor 16, and permanent-magnet clusters 28 may create south magnetic poles of rotor 16.
- Permanent-magnet clusters 26 may include permanent magnets 32 - 35 each of which may be disposed in one of cavities 40 - 43 in rotor core 24.
- Permanent-magnet cluster 28 may include permanent magnets 36 - 39 disposed in cavities 44 - 47.
- Permanent magnets 32 - 35 and permanent magnets 36 — 39 may form multiple permanent-magnet layers 48 - 50 and 51 - 53 of permanent-magnet cluster 26 and permanent-magnet cluster 28, respectively.
- the term permanent-magnet layer refers to multiple permanent magnets arranged generally end-to-end or a single permanent magnet that is not arranged end-to- end with other permanent magnets.
- An inner permanent-magnet layer 50 of permanent-magnet cluster 26 may include permanent magnets 34, 35. Ends 58 of permanent magnets 35 and cavities 43 may be disposed adjacent opposite ends 63 of permanent magnet 34 and cavity 42. Between each end 63 of permanent magnet 34 and an adjacent end 58 of one of permanent magnets 35, a portion 64 of rotor core 24 may extend in a direction 67.
- permanent magnets 35 and cavities 43 may extend away from one another as they extend to ends 59 disposed adjacent portions 80, 82 of outer perimeter 30. Between each end 59 of one of permanent magnets 35 and outer perimeter 30 of rotor 16, a portion 65 of rotor core 24 may extend in a direction 69.
- An inner permanent-magnet layer 53 of permanent-magnet cluster 28, may include permanent magnets 38, 39 arranged similar to permanent magnets 34, 35.
- Permanent magnets 33, 37 may form intermediate permanent magnet-layers 49, 52 of permanent-magnet clusters 26, 28, respectively.
- Intermediate permanent-magnet layer 49 may be configured similar to inner permanent-magnet layer 50, and intermediate permanent-magnet layer 49 may be disposed radially outward of inner permanent-magnet layer 50.
- Intermediate permanent-magnet layer 52 may be similarly configured and arranged within permanent-magnet cluster 28.
- Permanent magnets 32, 36 may form outer permanent-magnet layers 48, 51 of permanent-magnet clusters 26, 28 respectively.
- Permanent magnet 32 may be disposed radially outward of at least a portion of inner permanent-magnet layer 50 and intermediate permanent-magnet layer 49.
- permanent magnet 32 may be disposed radially outward of permanent magnet 34 of inner permanent-magnet layer 50 and radially outward of a middle one of permanent magnets 33 of intermediate permanent-magnet layer 49.
- permanent magnet 36 may be disposed radially outward of at least a portion of inner permanent-magnet layer 53 and intermediate permanent-magnet layer 52.
- each of cavities 40, 44 may be open on an outer radial side of rotor 16 such that permanent magnets 32, 36 disposed therein may each form a portion of outer perimeter 30 of rotor 16.
- Rotor core 24 may include portions 56, 57 that overlap end portions 60, 61 of permanent magnets 32, 36.
- a portion of rotor core 24 is considered to overlap a portion of a permanent magnet if a radius of rotor 16 crosses both the portion of rotor core 24 and the portion of permanent magnet and the portion of rotor core 24 is disposed radially outside of the portion of the permanent magnet.
- End portions 60 of permanent magnet 32 may have end surfaces 73 that extend away from one another as they extend inward of outer perimeter 30 of rotor 16 into rotor core 24.
- End portions 61 of permanent magnet 36 may have end surfaces 75 similarly configured. Portions 56, 57 of rotor core 24 may be disposed directly adjacent end surfaces 73, 75 respectively. In addition to, or in place of, portions 56, 57 of rotor core 24 overlapping end portions 60, 61 of permanent magnets 32, 36, one or more portions of rotor core 24 may overlap other portions of permanent magnets 32, 36, such as middle portions thereof.
- Each of permanent magnets 33 - 35, 37 - 39 may have a same shape and size as their host cavities 41 - 43, 44 - 47. As is shown in Fig. 2, permanent magnets 33 - 35, 37 - 39 and cavities 41 - 43, 44 - 47 may have straight sides and curved ends. Permanent magnets 33, 34, 37, 38 may have substantially constant width. In contrast, ends 58 of each of permanent magnets 35, 39 and cavities 43, 47 may be wider than ends 59 thereof.
- permanent-magnet cluster 26 may create a north magnetic pole of rotor 16.
- Permanent magnet 32 may have its north magnetic pole directed radially outward, and permanent magnets 33 - 35 may have their north magnetic poles generally facing outer perimeter 30 of rotor 16.
- portions 62 of rotor core 24 located inside permanent-magnet cluster 26 may be magnetically isolated from other portions of rotor core 24 by inner permanent-magnet layer 50. Because permanent magnets 34, 35 have a low permeability to magnetic flux, permanent magnets 34, 35 greatly impede magnetic flux from flowing across them to enter or exit portions 62 of rotor core 18.
- portions 64, 65 of rotor core 24 adjacent ends 58, 59 of permanent magnets 35 may be sufficiently narrow that they are highly saturated with magnetic flux from permanent magnets 34, 35.
- portions 64, 65 of rotor core 18 When highly saturated with magnetic flux, portions 64, 65 of rotor core 18 also have a low permeability to magnetic flux and, therefore, greatly impede magnetic flux from flowing through them to enter or exit portions 62 of rotor core 24.
- very little of the magnetic flux generated by the north magnetic poles of permanent magnets 34, 35 may leave permanent-magnet cluster 26 by flowing across permanent magnets 34, 35 or through portions 64, 65 of rotor core 24. So, nearly all of the magnetic flux generated by the north magnetic poles of permanent magnets 34, 35 may be forced to leave permanent-magnet cluster 26 by flowing substantially radially across air gap 66, into stator 14.
- permanent-magnet cluster 28 may create a south magnetic pole of rotor 16.
- Permanent-magnet cluster 28 may be configured similar to permanent-magnet cluster 26, except permanent magnets 36 - 39 may have their south magnetic poles, rather than their north magnetic poles, directed generally radially outward.
- inner permanent-magnet layer 53 may magnetically isolate portions 68 of rotor core 24 located inside permanent-magnet cluster 28 from other portions of rotor core 24.
- permanent-magnet clusters 26, 28 may define the location of "d"axes 70, 71 of rotor 16, which are radial axes along which rotor 16 has its highest reluctance.
- Permanent magnets 32 — 39 may greatly impede magnetic flux created by other sources, such as stator 14, from flowing radially between outer perimeter 30 and hub/core interface 25 in portions of rotor core 24 occupied by permanent-magnet clusters 26, 28.
- a portion 72 of rotor core 24 located between permanent-magnet clusters 26 and 28 may provide a path through which magnetic flux may more readily flow in radial directions.
- "d"axes 70, 71 of rotor 16 may extend through permanent-magnet clusters 26, 28, and a "q"axis 74 of rotor 16, which is a radial axis along which rotor 16 has its lowest reluctance, may extend through portion 72 of rotor core 24.
- "d"axis 70 may extend across three permanent magnets 32 - 34
- "d"axis 71 may also extend across three permanent magnets 36 - 38.
- permanent-magnet clusters 26, 28 may be disposed at a sufficient distance from one another sufficient to prevent permanent-magnet clusters 26, 28 from saturating portion 72 of rotor core 24 with magnetic flux.
- portion 72 of rotor core 24 may be considered not saturated with magnetic flux if the magnetic flux density therein is less than approximately 2 tesla.
- Fig. 3 shows another embodiment of rotor 16 in electric machine 10.
- permanent-magnet clusters 26, 28 may include permanent magnets 76, 78 forming outer permanent-magnet layers 48, 51 in place of permanent magnets 32, 36 of the embodiment shown in Fig. 2.
- permanent magnets 76, 78 may be disposed entirely within rotor core 24.
- the embodiment of rotor 16 shown in Fig. 3 may be the same as the embodiment of rotor 16 shown in Fig. 2.
- Electric machine 10 is not limited to the configurations shown in Figs. 1 — 3.
- one or more of outer permanent-magnet layers 48, 51, intermediate permanent-magnet layers 49, 52, and inner permanent-magnet layers 50, 53 may be formed by more or less permanent magnets than shown in Figs. 1 — 3.
- one or more of permanent magnets 32 - 39 and/or cavities 40 - 47 may have different shapes.
- one or more of permanent magnets 33 and 37 and cavities 41 and 45 may taper like permanent magnets 35, 39 and cavities 43, 47.
- permanent-magnet clusters 26, 28 may omit intermediate permanent-magnet layers 49, 52.
- permanent-magnet clusters 26, 28 may include additional permanent-magnet layers.
- Rotor 16 may have application in any electric machine 10 configured to operate as an electric motor and/or an electric generator. The operation of an electric machine 10 as an electric motor is described below.
- a rotating magnetic field produced by stator 14 may interact with rotor 16 and magnetic flux flowing from rotor 16 to cause a torque on rotor 16.
- the higher reluctance along "d"axes 70, 71 than along "q"axis 74 of rotor 16 creates a tendency for rotor 16 to align itself with the rotating magnetic field created by stator 14. This tendency is known as a reluctance torque on rotor 16.
- the magnitude of the reluctance torque may be positively correlated to a difference between the reluctance of rotor 16 along "d"axes 70, 71 and the reluctance of rotor 16 along "q"axis 74.
- the magnet torque on rotor 16 is positively correlated with the quantity of magnetic flux flowing from permanent-magnet clusters 26, through stator 14, to permanent-magnet clusters 28.
- the total torque on rotor 16 equals the sum of the reluctance torque and the magnet torque.
- rotor 16 may cause a high reluctance torque on rotor 16 when electric machine 10 is operated as an electric motor.
- Each permanent-magnet layer 48 - 50 may increase the reluctance of rotor 16 along "d"axis 70
- each permanent-magnet layer 51 - 53 may increase the reluctance of rotor 16 along "d"axis 71.
- spacing permanent-magnet clusters 26, 28 such that they do not saturate portion 72 of rotor core 24 with magnetic flux may contribute to rotor 16 having a low reluctance along "q"axis 74.
- the disclosed embodiments of rotor 16 may have a large difference between the reluctance along each "d"axis 70, 71 and the reluctance along "q"axis 74, which may cause a high reluctance torque on rotor 16.
- each of permanent-magnet layers 48 - 53 increases the quantity of magnetic flux that flows from rotor 16 through stator 14.
- placing permanent magnets 32, 36 on outer perimeter 30 of rotor 16 may contribute to rotor 16 having a strong magnetic field. With permanent magnets 32, 36 so disposed, magnetic flux may flow from the north magnetic pole of permanent magnet 32, through stator 14, to the south magnetic pole of permanent magnet 36, without being diminished by rotor core 24.
- rotor 16 may have certain structural advantages. For example, by overlapping end portions 60, 61 of permanent magnets 32, 36, portions 56, 57 of rotor core 24 may prevent centrifugal forces on permanent magnets 32, 36 from detaching permanent magnets 32, 36 from rotor core 24 during rotation of rotor 16. Additionally, portions 64, 65 may share the burden of counteracting centrifugal forces on portions 62 of rotor core 24. This may limit the amount of stress that rotation of rotor 16 causes in any one of portions 64, 65 of rotor core 24.
- centrifugal forces on portions 62 of rotor core 24 may create higher stresses in portions 64 of rotor core 24 than in portions 65 of rotor core 24. This may be so at least partially because directions 67 in which portions 64 extend are more radially oriented than directions 69 in which portions 65 extend, which causes a greater amount of strain in portions 64 than in portions 65 for any given amount of radial displacement of portions 62 of rotor core 24.
- Making ends 58 of cavities 43 and permanent magnets 35 relatively wide may reduce the stress concentrations created by ends 58 of cavities 43, which may reduce the relatively high stresses in portions 64 of cavities 43. Similar benefits accrue from making ends 58 of cavities 47 relatively wide.
- the disclosed embodiments may have certain cost advantages. For instance, making ends 59 of permanent magnets 35, 39 relatively narrow may keep the cost of permanent magnets 35, 39 low. Additionally, constructing permanent magnets 33 - 35, and 37 - 39 with straight sides may keep the costs of permanent magnets 33 - 35 and 37 - 39 low.
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- Engineering & Computer Science (AREA)
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- Permanent Field Magnets Of Synchronous Machinery (AREA)
Abstract
A rotor (16) for an electric machine (10) includes a rotor core (24) constructed of magnetically-permeable material and a permanent-magnet cluster (26) that creates a magnetic pole of the rotor. The permanent-magnet cluster may be composed of permanent magnets (32) mounted to the rotor core, including a first permanent magnet (34), a second permanent magnet (35), a third permanent magnet (35), and a fourth permanent magnet (32). The second permanent magnet may have a first end (58) disposed adjacent a first end (63) of the first permanent magnet, with a first portion (64) of the rotor core disposed therebetween. Additionally, the third permanent magnet may have a first end (58) disposed adjacent a second end (63) of the first permanent magnet, with a second portion (64) of the rotor core disposed therebetween. The fourth permanent magnet may form at least a portion of an outer perimeter (30) of the rotor core and may be disposed radially outward of at least a portion of at least one of the first permanent magnet, the second permanent magnet, and the third permanent magnet.
Description
ROTARY ELECTRIC MACHINE
Technical Field
The present disclosure relates to electric machines having a stator and a rotor and, more particularly, to electric machines having a rotor that includes permanent magnets.
Background
Many electric machines, such as electric motors and electric generators, include a stator that is held stationary and a rotor that rotates adjacent the stator. The stator and rotor may be configured to transfer power between one another through one or more rotating magnetic fields. Some electric machines may include a permanent-magnet type rotor with permanent magnets mounted on or inside a rotor core of the rotor. Each permanent magnet of the rotor may individually create a north or south magnetic pole of the rotor. A permanent- magnet type rotor having only a single permanent magnet creating each of its magnetic poles may, however, limit the performance potential of the associated electric machine.
U.S. Patent No. 6,664,688 to Naito et al. ("the '688 patent") shows a rotor with each of its magnetic poles created by a group of permanent magnets. Each group of permanent magnets of the '688 patent includes an outer permanent magnet disposed in a recess in an outer surface of a rotor core. Additionally, each group of permanent magnets of the rotor disclosed by the '688 patent includes two arc-shaped inner permanent magnets mounted in cavities in the rotor core. Inner ends of the two inner permanent magnets are disposed adjacent one another, radially inward of the outer permanent magnet of the group. Outer ends of the two inner permanent magnets of each group are disposed at the outer surface of the rotor on opposite sides of the outer permanent magnet. A relatively thin portion of the rotor core between the inner ends of the two inner permanent
magnets provides the only connection between a portion of the rotor core disposed radially outward of the two inner permanent magnets and other portions of the rotor core.
Although each of the magnetic poles of the rotor of the '688 patent is created by multiple permanent magnets, certain disadvantages persist. For example, the relatively narrow portion of the rotor core that extends between the inner ends of the two inner permanent magnets may be subjected to undesirably high stresses during rotation of the rotor. Rotation of the rotor may create centrifugal force on the portion of the rotor core disposed radially outward the inner permanent magnets. In order to keep the rotor core intact, the relatively thin portion of the rotor core between inner ends of the two inner permanent magnets must counteract all of the centrifugal force on the portion of the rotor core disposed radially outward of the two inner permanent magnets. Additionally, the shape of the outer permanent magnet and the cavity in which it is mounted may make the outer permanent magnet susceptible to detachment from the rotor core during high-speed rotation of the rotor. Furthermore, because they are arc-shaped, the two inner permanent magnets may be expensive.
The electric machine and rotor of the present disclosure solve one or more of the problems set forth above.
Summary of the Invention
One disclosed embodiment relates to a rotor for an electric machine. The rotor may include a rotor core constructed of magnetically- permeable material and a permanent-magnet cluster that creates a magnetic pole of the rotor. The permanent-magnet cluster may be composed of permanent magnets mounted to the rotor core, including a first permanent magnet, a second permanent magnet, a third permanent magnet, and a fourth permanent magnet. The second permanent magnet may have a first end disposed adjacent a first end of the first permanent magnet, with a first portion of the rotor core disposed therebetween. Additionally, the third permanent magnet may have a first end
disposed adjacent a second end of the first permanent magnet, with a second portion of the rotor core disposed therebetween. The fourth permanent magnet may form at least a portion of an outer perimeter of the rotor core and may be disposed radially outward of at least a portion of at least one of the first permanent magnet, the second permanent magnet, and the third permanent magnet.
Another embodiment relates to a rotor for an electric machine. The rotor may include a rotor core constructed of magnetically-permeable material and a plurality of permanent magnets mounted to the rotor core. The plurality of permanent magnets mounted to the rotor core may include a permanent-magnet cluster that creates a magnetic pole of the rotor. The permanent-magnet cluster may include at least one outer permanent magnet that forms at least a portion of an outer perimeter of the rotor. At least a portion of the rotor core may overlap at least a portion of the outer permanent magnet. Additionally, the permanent-magnet cluster may include at least one inner permanent magnet, wherein at least a portion of the inner permanent magnet is disposed radially inward of the outer permanent magnet.
A further disclosed embodiment relates to an electric machine. The electric machine may include a rotor that is rotatable about a rotor rotation axis. The rotor may include a rotor core constructed of a magnetically-permeable material. The rotor core may include a first cavity, the first cavity having a curved first end and a second end. The second end of the first cavity may be disposed closer to an outer perimeter of the rotor than the first curved end, and the first curved end may be wider than the second end. Additionally, the rotor core may include a second cavity, at least a portion of the second cavity being disposed adjacent the first curved end of the first cavity. The rotor may also include a first permanent magnet disposed in the first cavity and a second permanent magnet disposed in the second cavity.
-A-
Brief Description of the Drawings
Fig. 1 is a sectional illustration of one embodiment of an electric machine according to the present invention;
Fig. 2 is an enlarged view of the portion of Fig. 1 shown in rectangle 2 of Fig. 1; and
Fig. 3 is a sectional illustration of another embodiment of an electric machine according to the present disclosure.
Detailed Description
Fig. 1 illustrates one embodiment of an electric machine 10 according to the present disclosure. Electric machine 10 may be configured to operate as an electric motor and/or an electric generator. Electric machine 10 may include a housing 12, a stator 14, and a rotor 16.
Housing 12 may provide support for stator 14 and rotor 16. Rotor
16 may be supported by housing 12 in such a manner that rotor 16 may rotate about a rotor rotation axis 18. Housing 12 may support stator 14 in a stationary position adjacent rotor 16. As Fig. 1 shows, in some embodiments, stator 14 may extend around rotor rotation axis 18 and rotor 16, with an annular air gap 66 between an outer perimeter 30 of rotor 16 and stator 14.
Stator 14 may include windings of an electrical conductor (not shown), such as wire. Such windings of an electrical conductor may be operable to receive electricity from an electrical power source to produce a rotating magnetic field adjacent rotor 16.
Rotor 16 may include a rotor shaft 20, a rotor hub 22, and a rotor core 24. Rotor hub 22 may be constructed of a material with a relatively low permeability to magnetic flux. Rotor hub 22 may extend around rotor shaft 20 at a shaft/hub interface 23. Rotor core 24 may be constructed of a material having a relatively high permeability to magnetic flux, such as a ferrous metal. Rotor core
24 may extend around rotor hub 22 at a hub/core interface 25.
Rotor 16 may also include permanent magnets mounted to rotor core 24, and some or all of these permanent magnets may be arranged in permanent-magnet clusters 26, 28. Permanent-magnet clusters 26 and permanent-magnet clusters 28 may be arranged in alternating positions around outer perimeter 30 of rotor 16. As will be described in greater detail below, permanent-magnet clusters 26 may create north magnetic poles of rotor 16, and permanent-magnet clusters 28 may create south magnetic poles of rotor 16.
Fig. 2 shows a pair of permanent-magnet clusters 26, 28 in greater detail. Permanent-magnet clusters 26 may include permanent magnets 32 - 35 each of which may be disposed in one of cavities 40 - 43 in rotor core 24.
Permanent-magnet cluster 28 may include permanent magnets 36 - 39 disposed in cavities 44 - 47.
Permanent magnets 32 - 35 and permanent magnets 36 — 39 may form multiple permanent-magnet layers 48 - 50 and 51 - 53 of permanent-magnet cluster 26 and permanent-magnet cluster 28, respectively. As used herein, the term permanent-magnet layer refers to multiple permanent magnets arranged generally end-to-end or a single permanent magnet that is not arranged end-to- end with other permanent magnets. An inner permanent-magnet layer 50 of permanent-magnet cluster 26 may include permanent magnets 34, 35. Ends 58 of permanent magnets 35 and cavities 43 may be disposed adjacent opposite ends 63 of permanent magnet 34 and cavity 42. Between each end 63 of permanent magnet 34 and an adjacent end 58 of one of permanent magnets 35, a portion 64 of rotor core 24 may extend in a direction 67. From ends 58, permanent magnets 35 and cavities 43 may extend away from one another as they extend to ends 59 disposed adjacent portions 80, 82 of outer perimeter 30. Between each end 59 of one of permanent magnets 35 and outer perimeter 30 of rotor 16, a portion 65 of rotor core 24 may extend in a direction 69. An inner permanent-magnet layer 53 of permanent-magnet cluster 28, may include permanent magnets 38, 39 arranged similar to permanent magnets 34, 35.
Permanent magnets 33, 37 may form intermediate permanent magnet-layers 49, 52 of permanent-magnet clusters 26, 28, respectively. Intermediate permanent-magnet layer 49 may be configured similar to inner permanent-magnet layer 50, and intermediate permanent-magnet layer 49 may be disposed radially outward of inner permanent-magnet layer 50. Intermediate permanent-magnet layer 52 may be similarly configured and arranged within permanent-magnet cluster 28.
Permanent magnets 32, 36 may form outer permanent-magnet layers 48, 51 of permanent-magnet clusters 26, 28 respectively. Permanent magnet 32 may be disposed radially outward of at least a portion of inner permanent-magnet layer 50 and intermediate permanent-magnet layer 49. For example, permanent magnet 32 may be disposed radially outward of permanent magnet 34 of inner permanent-magnet layer 50 and radially outward of a middle one of permanent magnets 33 of intermediate permanent-magnet layer 49. Similarly, permanent magnet 36 may be disposed radially outward of at least a portion of inner permanent-magnet layer 53 and intermediate permanent-magnet layer 52. Additionally, each of cavities 40, 44 may be open on an outer radial side of rotor 16 such that permanent magnets 32, 36 disposed therein may each form a portion of outer perimeter 30 of rotor 16. Rotor core 24 may include portions 56, 57 that overlap end portions 60, 61 of permanent magnets 32, 36. Within this disclosure, a portion of rotor core 24 is considered to overlap a portion of a permanent magnet if a radius of rotor 16 crosses both the portion of rotor core 24 and the portion of permanent magnet and the portion of rotor core 24 is disposed radially outside of the portion of the permanent magnet. End portions 60 of permanent magnet 32 may have end surfaces 73 that extend away from one another as they extend inward of outer perimeter 30 of rotor 16 into rotor core 24. End portions 61 of permanent magnet 36 may have end surfaces 75 similarly configured. Portions 56, 57 of rotor core 24 may be disposed directly adjacent end surfaces 73, 75 respectively. In
addition to, or in place of, portions 56, 57 of rotor core 24 overlapping end portions 60, 61 of permanent magnets 32, 36, one or more portions of rotor core 24 may overlap other portions of permanent magnets 32, 36, such as middle portions thereof. Each of permanent magnets 33 - 35, 37 - 39 may have a same shape and size as their host cavities 41 - 43, 44 - 47. As is shown in Fig. 2, permanent magnets 33 - 35, 37 - 39 and cavities 41 - 43, 44 - 47 may have straight sides and curved ends. Permanent magnets 33, 34, 37, 38 may have substantially constant width. In contrast, ends 58 of each of permanent magnets 35, 39 and cavities 43, 47 may be wider than ends 59 thereof.
As mentioned above, permanent-magnet cluster 26 may create a north magnetic pole of rotor 16. Permanent magnet 32 may have its north magnetic pole directed radially outward, and permanent magnets 33 - 35 may have their north magnetic poles generally facing outer perimeter 30 of rotor 16. Additionally, portions 62 of rotor core 24 located inside permanent-magnet cluster 26 may be magnetically isolated from other portions of rotor core 24 by inner permanent-magnet layer 50. Because permanent magnets 34, 35 have a low permeability to magnetic flux, permanent magnets 34, 35 greatly impede magnetic flux from flowing across them to enter or exit portions 62 of rotor core 18. Additionally, portions 64, 65 of rotor core 24 adjacent ends 58, 59 of permanent magnets 35 may be sufficiently narrow that they are highly saturated with magnetic flux from permanent magnets 34, 35. When highly saturated with magnetic flux, portions 64, 65 of rotor core 18 also have a low permeability to magnetic flux and, therefore, greatly impede magnetic flux from flowing through them to enter or exit portions 62 of rotor core 24. As a result, very little of the magnetic flux generated by the north magnetic poles of permanent magnets 34, 35 may leave permanent-magnet cluster 26 by flowing across permanent magnets 34, 35 or through portions 64, 65 of rotor core 24. So, nearly all of the magnetic flux generated by the north magnetic poles of permanent magnets 34, 35 may be
forced to leave permanent-magnet cluster 26 by flowing substantially radially across air gap 66, into stator 14.
Additionally, as is mentioned above, permanent-magnet cluster 28 may create a south magnetic pole of rotor 16. Permanent-magnet cluster 28 may be configured similar to permanent-magnet cluster 26, except permanent magnets 36 - 39 may have their south magnetic poles, rather than their north magnetic poles, directed generally radially outward. Additionally, like inner permanent- magnet layer 50, inner permanent-magnet layer 53 may magnetically isolate portions 68 of rotor core 24 located inside permanent-magnet cluster 28 from other portions of rotor core 24.
In addition to creating north and south magnetic poles of rotor 16, permanent-magnet clusters 26, 28 may define the location of "d"axes 70, 71 of rotor 16, which are radial axes along which rotor 16 has its highest reluctance. Permanent magnets 32 — 39 may greatly impede magnetic flux created by other sources, such as stator 14, from flowing radially between outer perimeter 30 and hub/core interface 25 in portions of rotor core 24 occupied by permanent-magnet clusters 26, 28. On the other hand, a portion 72 of rotor core 24 located between permanent-magnet clusters 26 and 28 may provide a path through which magnetic flux may more readily flow in radial directions. As a result, "d"axes 70, 71 of rotor 16 may extend through permanent-magnet clusters 26, 28, and a "q"axis 74 of rotor 16, which is a radial axis along which rotor 16 has its lowest reluctance, may extend through portion 72 of rotor core 24. As is shown in Fig. 2, "d"axis 70 may extend across three permanent magnets 32 - 34, and "d"axis 71 may also extend across three permanent magnets 36 - 38. In some embodiments, permanent-magnet clusters 26, 28 may be disposed at a sufficient distance from one another sufficient to prevent permanent-magnet clusters 26, 28 from saturating portion 72 of rotor core 24 with magnetic flux. For example, the spacing of permanent-magnet clusters 26, 28 shown in Fig. 2 prevents permanent-magnet clusters 26, 28 from saturating
portion 72 of rotor core 24. For purposes of this disclosure, portion 72 of rotor core 24 may be considered not saturated with magnetic flux if the magnetic flux density therein is less than approximately 2 tesla.
Fig. 3 shows another embodiment of rotor 16 in electric machine 10. In the embodiment of rotor 16 shown in Fig. 3, permanent-magnet clusters 26, 28 may include permanent magnets 76, 78 forming outer permanent-magnet layers 48, 51 in place of permanent magnets 32, 36 of the embodiment shown in Fig. 2. In contrast to permanent magnets 32, 36 of Fig. 2, permanent magnets 76, 78 may be disposed entirely within rotor core 24. In other respects, the embodiment of rotor 16 shown in Fig. 3 may be the same as the embodiment of rotor 16 shown in Fig. 2.
Electric machine 10 is not limited to the configurations shown in Figs. 1 — 3. For example, one or more of outer permanent-magnet layers 48, 51, intermediate permanent-magnet layers 49, 52, and inner permanent-magnet layers 50, 53 may be formed by more or less permanent magnets than shown in Figs. 1 — 3. Additionally, one or more of permanent magnets 32 - 39 and/or cavities 40 - 47 may have different shapes. For example, one or more of permanent magnets 33 and 37 and cavities 41 and 45 may taper like permanent magnets 35, 39 and cavities 43, 47. Furthermore, permanent-magnet clusters 26, 28 may omit intermediate permanent-magnet layers 49, 52. Alternatively, permanent-magnet clusters 26, 28 may include additional permanent-magnet layers.
Industrial Applicability
Rotor 16 may have application in any electric machine 10 configured to operate as an electric motor and/or an electric generator. The operation of an electric machine 10 as an electric motor is described below.
During operation of electric machine 10 as an electric motor, a rotating magnetic field produced by stator 14 may interact with rotor 16 and magnetic flux flowing from rotor 16 to cause a torque on rotor 16. The higher reluctance along "d"axes 70, 71 than along "q"axis 74 of rotor 16 creates a
tendency for rotor 16 to align itself with the rotating magnetic field created by stator 14. This tendency is known as a reluctance torque on rotor 16. The magnitude of the reluctance torque may be positively correlated to a difference between the reluctance of rotor 16 along "d"axes 70, 71 and the reluctance of rotor 16 along "q"axis 74. Additionally, magnetic flux flowing from permanent- magnet clusters 26 of rotor 16, through stator 14, to permanent-magnet clusters 28, interacts with the rotating magnetic field created by stator 14 and causes a magnet torque on rotor 16. The magnet torque on rotor 16 is positively correlated with the quantity of magnetic flux flowing from permanent-magnet clusters 26, through stator 14, to permanent-magnet clusters 28. The total torque on rotor 16 equals the sum of the reluctance torque and the magnet torque.
The disclosed embodiments of rotor 16 may cause a high reluctance torque on rotor 16 when electric machine 10 is operated as an electric motor. Each permanent-magnet layer 48 - 50 may increase the reluctance of rotor 16 along "d"axis 70, and each permanent-magnet layer 51 - 53 may increase the reluctance of rotor 16 along "d"axis 71. Additionally, spacing permanent-magnet clusters 26, 28 such that they do not saturate portion 72 of rotor core 24 with magnetic flux may contribute to rotor 16 having a low reluctance along "q"axis 74. Thus, the disclosed embodiments of rotor 16 may have a large difference between the reluctance along each "d"axis 70, 71 and the reluctance along "q"axis 74, which may cause a high reluctance torque on rotor 16.
Additionally, the disclosed embodiments of rotor 16 may provide a high magnet torque. Each of permanent-magnet layers 48 - 53 increases the quantity of magnetic flux that flows from rotor 16 through stator 14.
Additionally, placing permanent magnets 32, 36 on outer perimeter 30 of rotor 16 may contribute to rotor 16 having a strong magnetic field. With permanent magnets 32, 36 so disposed, magnetic flux may flow from the north magnetic
pole of permanent magnet 32, through stator 14, to the south magnetic pole of permanent magnet 36, without being diminished by rotor core 24.
Additionally, the disclosed embodiments of rotor 16 may have certain structural advantages. For example, by overlapping end portions 60, 61 of permanent magnets 32, 36, portions 56, 57 of rotor core 24 may prevent centrifugal forces on permanent magnets 32, 36 from detaching permanent magnets 32, 36 from rotor core 24 during rotation of rotor 16. Additionally, portions 64, 65 may share the burden of counteracting centrifugal forces on portions 62 of rotor core 24. This may limit the amount of stress that rotation of rotor 16 causes in any one of portions 64, 65 of rotor core 24.
Furthermore, analysis has shown that centrifugal forces on portions 62 of rotor core 24 may create higher stresses in portions 64 of rotor core 24 than in portions 65 of rotor core 24. This may be so at least partially because directions 67 in which portions 64 extend are more radially oriented than directions 69 in which portions 65 extend, which causes a greater amount of strain in portions 64 than in portions 65 for any given amount of radial displacement of portions 62 of rotor core 24. Making ends 58 of cavities 43 and permanent magnets 35 relatively wide may reduce the stress concentrations created by ends 58 of cavities 43, which may reduce the relatively high stresses in portions 64 of cavities 43. Similar benefits accrue from making ends 58 of cavities 47 relatively wide.
Moreover, the disclosed embodiments may have certain cost advantages. For instance, making ends 59 of permanent magnets 35, 39 relatively narrow may keep the cost of permanent magnets 35, 39 low. Additionally, constructing permanent magnets 33 - 35, and 37 - 39 with straight sides may keep the costs of permanent magnets 33 - 35 and 37 - 39 low.
It will be apparent to those skilled in the art that various modifications and variations can be made in the disclosed electric machine 10 and rotor 16 without departing from the scope of the disclosure. Other
embodiments of the disclosed electric machine 10 and rotor 16 will be apparent to those skilled in the art from consideration of the specification and practice of the electric machine 10 and rotor 16 disclosed herein. It is intended that the specification and examples be considered as exemplary only, with a true scope of the disclosure being indicated by the following claims and their equivalents.
Claims
1. A rotor (16) for an electric machine (10), comprising: a rotor core (24) constructed of magnetically-permeable material; and a permanent-magnet cluster (26) creating a first magnetic pole of the rotor, the permanent-magnet cluster being composed of permanent magnets (34) mounted to the rotor core, including: a first permanent magnet (34), a second permanent magnet (35) having a first end (58) disposed adjacent a first end (63) of the first permanent magnet with a first portion (64) of the rotor core disposed therebetween, and a third permanent magnet (35) having a first end (58) disposed adjacent a second end (63) of the first permanent magnet with a second portion (64) of the rotor core disposed therebetween; and a fourth permanent magnet (32) forming at least a portion of an outer perimeter (30) of the rotor, the fourth permanent magnet being disposed radially outward of at least a portion of at least one of the first permanent magnet, the second permanent magnet, and the third permanent magnet.
2. The rotor of claim 1 , wherein: the first permanent magnet, the second permanent magnet, and the third permanent magnet form at least a portion of an inner permanent-magnet layer (50); the fourth permanent-magnet forms at least a portion of an outer permanent-magnet layer (48); and the permanent-magnet cluster includes an intermediate permanent- magnet layer (49), the intermediate permanent-magnet layer being disposed radially outward of the inner permanent-magnet layer and at least a portion of the intermediate permanent-magnet layer being disposed radially inward of the fourth permanent magnet.
3. The rotor of claim 2, wherein a radial axis (70) along which the rotor has its maximum reluctance extends across the first permanent magnet, a permanent magnet (33) of the intermediate-permanent-magnet layer, and the fourth permanent magnet.
4. The rotor of claim 1 , further including: at least one additional permanent magnet (39) mounted to the rotor core, the additional permanent magnet creating at least one additional magnetic pole of the rotor; and the permanent-magnet cluster being disposed at a sufficient distance from the additional permanent magnet to prevent the permanent-magnet cluster and the additional permanent magnet from highly saturating with magnetic flux a portion (72) of the rotor core between the permanent-magnet cluster and the additional permanent magnet.
5. The rotor of claim 1 , wherein: the first end of the second permanent magnet is curved; the first end of the second permanent magnet is wider than a second end of the second permanent magnet; and the first end of the third permanent magnet is curved and is wider than a second end of the third permanent magnet.
6. The rotor of claim 5, wherein: the second end of the second permanent magnet is disposed adjacent the outer perimeter of the rotor; and the second end of the third permanent magnet is disposed adjacent the outer perimeter of the rotor.
7. A rotor (16) for an electric machine (10), comprising: a rotor core (24) constructed of magnetically-permeable material; a plurality of permanent magnets (32) mounted to the rotor core, including: a permanent-magnet cluster (26) that creates a magnetic pole of the rotor, the permanent-magnet cluster including: at least one outer permanent magnet (32) that forms at least a portion of an outer perimeter (30) of the rotor, wherein at least a portion (56) of the rotor core overlaps at least a portion (60) of the outer permanent magnet; and at least one inner permanent magnet (34), wherein at least a portion of the inner permanent magnet is disposed radially inward of the outer permanent magnet.
8. The rotor of claim 7, wherein the portion of the rotor core that overlaps a portion of the outer permanent magnet overlaps an end portion (60) of the outer permanent magnet.
9. The rotor of claim 8, wherein: the plurality of permanent magnets mounted to the rotor core includes at least one additional permanent magnet (39) disposed adjacent the permanent-magnet cluster, the additional permanent magnet creating a second magnetic pole of the rotor; and the additional permanent magnet and the permanent-magnet cluster are disposed at a sufficient distance from one another to prevent the permanent-magnet cluster and the additional permanent magnet from highly saturating with magnetic flux a portion (72) of the rotor core disposed between the permanent-magnet cluster and the additional permanent magnet.
10. The rotor of claim 7, wherein the outer permanent magnet has end surfaces (73) that extend away from one another as they extend inward from the outer perimeter of the rotor into the rotor core.
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US11/261,619 US7436095B2 (en) | 2005-10-31 | 2005-10-31 | Rotary electric machine |
| US11/261,619 | 2005-10-31 |
Publications (2)
| Publication Number | Publication Date |
|---|---|
| WO2007055775A2 true WO2007055775A2 (en) | 2007-05-18 |
| WO2007055775A3 WO2007055775A3 (en) | 2007-07-05 |
Family
ID=37513847
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| PCT/US2006/033322 Ceased WO2007055775A2 (en) | 2005-10-31 | 2006-08-25 | Rotary electric machine |
Country Status (2)
| Country | Link |
|---|---|
| US (1) | US7436095B2 (en) |
| WO (1) | WO2007055775A2 (en) |
Cited By (2)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CN103339831A (en) * | 2011-02-03 | 2013-10-02 | 丰田自动车株式会社 | rotor for motor |
| FR2995469A1 (en) * | 2012-09-13 | 2014-03-14 | Leroy Somer Moteurs | ROTOR OF ROTATING ELECTRIC MACHINE HAVING A ROTORIC MASS IN WHICH ARE HOUSEHOLDS. |
Families Citing this family (37)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CN101507084B (en) * | 2006-08-23 | 2012-07-18 | 株式会社东芝 | permanent magnet rotating machines |
| JP4404223B2 (en) * | 2007-03-20 | 2010-01-27 | 株式会社安川電機 | Electromagnetic steel sheet forming body, electromagnetic steel sheet laminate, permanent magnet type synchronous rotating electric machine equipped with the same, permanent magnet type synchronous rotating electric machine, vehicle using the rotating electric machine, elevator, fluid machine, processing machine |
| JP4627788B2 (en) * | 2008-06-27 | 2011-02-09 | 株式会社日立製作所 | Permanent magnet rotating electric machine |
| US7902710B2 (en) * | 2008-10-01 | 2011-03-08 | Caterpillar Inc. | Electric machine |
| US7902711B2 (en) * | 2008-12-09 | 2011-03-08 | GM Global Technology Operations LLC | Methods and apparatus for a permanent magnet machine with segmented ferrite magnets |
| CN102790502B (en) * | 2011-08-05 | 2014-03-26 | 珠海格力电器股份有限公司 | Permanent magnet synchronous motor |
| CN102761183B (en) | 2011-08-05 | 2013-06-19 | 珠海格力电器股份有限公司 | Motor rotor and motor with same |
| CN102801235B (en) | 2011-08-05 | 2013-09-18 | 珠海格力电器股份有限公司 | Motor rotor and motor with same |
| CN102761182B (en) | 2011-08-05 | 2013-03-27 | 珠海格力电器股份有限公司 | Motor rotor and motor with same |
| US9692265B2 (en) * | 2012-06-26 | 2017-06-27 | Nissan Motor Co., Ltd. | Variable magnetic flux-type rotary electric machine |
| DE102013113657A1 (en) * | 2012-12-07 | 2014-06-12 | Denso Corporation | Rotary electric machine in multiple air gap design |
| US9130422B2 (en) * | 2013-03-08 | 2015-09-08 | GM Global Technology Operations LLC | Interior permanent magnet machine having a mixed rare earth magnet and ferrite magnet rotor |
| CN105308835B (en) | 2013-06-20 | 2019-05-14 | 奥的斯电梯公司 | Motors with rotors with inclined permanent magnets |
| FR3019949B1 (en) * | 2014-04-10 | 2018-01-05 | Moteurs Leroy-Somer | ROTOR OF ELECTRIC ROTATING MACHINE. |
| FR3019948B1 (en) | 2014-04-10 | 2017-12-22 | Moteurs Leroy-Somer | ROTOR OF ELECTRIC ROTATING MACHINE. |
| ITUB20150608A1 (en) * | 2015-04-14 | 2016-10-14 | Ge Avio Srl | METHOD OF REALIZATION OF A ROTOR STRUCTURE OF A SYNCHRONOUS RELUCTANCE ELECTRIC MACHINE, AND RELATED RELUCTANCE SYNCHRONOUS ELECTRICAL MACHINE |
| JP6428458B2 (en) * | 2015-04-14 | 2018-11-28 | 株式会社デンソー | Embedded magnet type motor |
| JP6809047B2 (en) * | 2016-08-29 | 2021-01-06 | 富士電機株式会社 | Rotor and permanent magnet type rotating machine |
| JP6826412B2 (en) * | 2016-10-07 | 2021-02-03 | 東芝産業機器システム株式会社 | Synchronous reluctance type rotary electric machine |
| JP6813032B2 (en) | 2017-01-12 | 2021-01-13 | アイシン・エィ・ダブリュ株式会社 | Rotor for rotary electric machine |
| TWM576750U (en) | 2017-07-25 | 2019-04-11 | 美商米沃奇電子工具公司 | Electrical composition, electric device system, battery pack, electric motor, motor assembly and electric motor assembly |
| JP6879140B2 (en) * | 2017-09-15 | 2021-06-02 | トヨタ自動車株式会社 | Rotating machine |
| US10965177B2 (en) | 2018-07-06 | 2021-03-30 | Otis Elevator Company | Permanent magnet (PM) machine having rotor poles with an array of permanent magnets |
| CN108777520B (en) * | 2018-07-17 | 2020-03-27 | 珠海格力电器股份有限公司 | Alternating-pole motor |
| JP7331356B2 (en) * | 2018-12-14 | 2023-08-23 | Tdk株式会社 | Permanent magnets and rotating electrical machines |
| JP2020096484A (en) * | 2018-12-14 | 2020-06-18 | Tdk株式会社 | Permanent magnet and rotating electric machine |
| WO2020172180A1 (en) | 2019-02-18 | 2020-08-27 | Milwaukee Electric Tool Corporation | Impact tool |
| CN110729833B (en) * | 2019-09-27 | 2021-08-31 | 珠海格力电器股份有限公司 | Motor rotor and synchronous reluctance motor |
| AU2020371593B2 (en) | 2019-10-22 | 2023-09-14 | Milwaukee Electric Tool Corporation | Power tool with permanent magnet synchronous reluctance machine |
| CN113131642B (en) * | 2019-12-30 | 2023-01-31 | 安徽威灵汽车部件有限公司 | Rotor of motor, driving motor and vehicle |
| WO2021162771A1 (en) * | 2020-02-14 | 2021-08-19 | Gentiam Llc | A wide-speed multiple interior rotor excitation machine |
| JP7548018B2 (en) * | 2020-03-18 | 2024-09-10 | ニデック株式会社 | Motor |
| CN112771762B (en) * | 2020-04-30 | 2023-02-03 | 华为技术有限公司 | Rotors, Permanent Magnet Motors, Motor Drive Systems, and Automotive |
| JP7378369B2 (en) * | 2020-09-09 | 2023-11-13 | 日立Astemo株式会社 | Rotor of rotating electric machine, rotating electric machine and electric drive device |
| JP6973591B1 (en) * | 2020-09-19 | 2021-12-01 | 株式会社明電舎 | Rotor and rotating machine |
| JP7478104B2 (en) * | 2021-01-08 | 2024-05-02 | 株式会社アイシン | Rotor core |
| IT202100028502A1 (en) * | 2021-11-10 | 2023-05-10 | Eldor Corp Spa | ELECTRIC MOTOR |
Family Cites Families (99)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US3721844A (en) | 1971-05-27 | 1973-03-20 | Nat Res Dev | Reluctance motors |
| US3696260A (en) | 1971-08-02 | 1972-10-03 | Motorola Inc | Permanent magnet rotor structure |
| US3979821A (en) | 1975-05-09 | 1976-09-14 | Kollmorgen Corporation | Method of manufacturing rare earth permanent magnet rotor |
| US4139790A (en) | 1977-08-31 | 1979-02-13 | Reliance Electric Company | Direct axis aiding permanent magnets for a laminated synchronous motor rotor |
| JPS5829359Y2 (en) | 1980-01-21 | 1983-06-27 | 東京瓦斯株式会社 | Concentration prevention device in liquefied natural gas vaporizer |
| US4308479A (en) | 1980-08-28 | 1981-12-29 | General Electric Company | Magnet arrangement for axial flux focussing for two-pole permanent magnet A.C. machines |
| JPS5829359A (en) * | 1981-08-12 | 1983-02-21 | Hitachi Ltd | Rotor with permanent magnet |
| US4469970A (en) | 1981-12-24 | 1984-09-04 | General Electric Company | Rotor for permanent magnet excited synchronous motor |
| US4510680A (en) | 1982-12-27 | 1985-04-16 | General Electric Company | Method of making a permanent magnet rotor |
| FR2548843B1 (en) | 1983-07-07 | 1986-11-07 | Labinal | IMPROVEMENT IN ROTARY MAGNET ROTOR MACHINES |
| US5418416A (en) | 1983-09-05 | 1995-05-23 | Papst Licensing Gmbh | Brushless three-phase DC motor |
| US4525925A (en) | 1983-09-22 | 1985-07-02 | General Electric Company | Method of making permanent magnet rotor |
| US4472651A (en) | 1983-09-22 | 1984-09-18 | General Electric Company | Permanent magnet rotor |
| US4506181A (en) | 1984-03-02 | 1985-03-19 | General Electric Company | Permanent magnet rotor with complete amortisseur |
| US4692646A (en) | 1984-08-01 | 1987-09-08 | Matsushita Electric Industrial Co., Ltd. | Rotating electric motor with reduced cogging torque |
| US5331245A (en) | 1986-01-13 | 1994-07-19 | Papst Licensing Gmbh | Permanent magnet excited electric motor with improved torque ripple |
| US4916346A (en) | 1987-12-28 | 1990-04-10 | General Electric Company | Composite rotor lamination for use in reluctance hompolar, and permanent magnet machines |
| US4918831A (en) | 1987-12-28 | 1990-04-24 | General Electric Company | Method of fabricating composite rotor laminations for use in reluctance, homopolar and permanent magnet machines |
| IT1219228B (en) | 1988-04-21 | 1990-05-03 | Antonino Fratta | SYNCHRONOUS RELUCTANCE ELECTRICAL MACHINE EQUIPPED WITH INTRINSIC POWER SUPPLY MEANS |
| JPH0755037B2 (en) * | 1988-05-13 | 1995-06-07 | 株式会社日立製作所 | Permanent magnet type synchronous motor |
| FR2655784B1 (en) | 1989-12-08 | 1992-01-24 | Alsthom Gec | FLOW CONCENTRATION MAGNET MOTOR. |
| US5191256A (en) | 1989-12-15 | 1993-03-02 | American Motion Systems | Interior magnet rotary machine |
| CA2006647C (en) | 1989-12-27 | 1997-02-04 | Seabright Corporation Limited | Combination hysteresis-reluctance permanent magnet motor |
| US5159220A (en) | 1990-06-25 | 1992-10-27 | General Electric Company | Realizations of folded magnet AC motors |
| US5117553A (en) | 1990-06-25 | 1992-06-02 | General Electric Company | Method of assembling rotor magnets |
| US5097166A (en) | 1990-09-24 | 1992-03-17 | Reuland Electric | Rotor lamination for an AC permanent magnet synchronous motor |
| US5510662A (en) | 1993-05-26 | 1996-04-23 | Kabushiki Kaisha Toshiba | Permanent magnet motor |
| US5627423A (en) | 1993-06-11 | 1997-05-06 | Askoll S.P.A. | Permanent-magnet rotor for electric motors and method of manufacturing the same |
| US5475277A (en) * | 1993-07-21 | 1995-12-12 | Fluidmaster, Inc. | Differential torque motor |
| US5898253A (en) | 1993-11-18 | 1999-04-27 | General Motors Corporation | Grain oriented composite soft magnetic structure |
| JPH07203645A (en) | 1993-12-30 | 1995-08-04 | Mabuchi Motor Co Ltd | Manufacturing method of small motor and rotor thereof |
| US5554900A (en) | 1994-02-04 | 1996-09-10 | Schlenker Enterprises Ltd. | Motor including embedded permanent-magnet rotor |
| EP0678967A1 (en) | 1994-04-18 | 1995-10-25 | General Electric Company | Rotor for permanent magnet motor |
| JP3371314B2 (en) | 1995-03-24 | 2003-01-27 | セイコーエプソン株式会社 | DC brushless motor and control device |
| US5663605A (en) | 1995-05-03 | 1997-09-02 | Ford Motor Company | Rotating electrical machine with electromagnetic and permanent magnet excitation |
| DE69629419T2 (en) | 1995-05-31 | 2004-04-01 | Matsushita Electric Industrial Co., Ltd., Kadoma | Motor with built-in permanent magnets |
| JP3428234B2 (en) | 1995-07-03 | 2003-07-22 | 松下電器産業株式会社 | Interior magnet type motor |
| IT1276487B1 (en) | 1995-07-11 | 1997-10-31 | Alfredo Vagati | SYNCHRONOUS RELUCTANCE ELECTRIC MOTOR WITH LOW TORQUE WAVING |
| JP3500822B2 (en) * | 1995-12-26 | 2004-02-23 | アイシン・エィ・ダブリュ株式会社 | Permanent magnet synchronous motor |
| ATE197360T1 (en) | 1996-05-21 | 2000-11-15 | Siemens Ag | PERMANENT MAGNET SYNCHRONOUS MACHINE |
| JP3605475B2 (en) * | 1996-08-06 | 2004-12-22 | 松下電器産業株式会社 | Permanent magnet synchronous motor |
| US6133662A (en) | 1996-09-13 | 2000-10-17 | Hitachi, Ltd. | Permanent magnet dynamoelectric rotating machine and electric vehicle equipped with the same |
| US5831367A (en) | 1997-02-13 | 1998-11-03 | Emerson Electric Co. | Line-start reluctance motor with grain-oriented rotor laminations |
| EP1111755B1 (en) | 1997-03-13 | 2003-07-23 | Matsushita Electric Industrial Co., Ltd. | Rotor core with flux barriers for reluctance motor |
| DE19714780C2 (en) | 1997-04-10 | 2002-01-31 | Baermann Max Gmbh | Rotor for an electric motor |
| TW380329B (en) * | 1997-04-16 | 2000-01-21 | Japan Servo | Permanent-magnet revolving electrodynamic machine with a concentrated winding stator |
| US6084496A (en) | 1997-06-27 | 2000-07-04 | Matsushita Electric Industrial Co., Ltd. | Magnetizing method for a permanent-magnet motor |
| US6087751A (en) | 1997-07-01 | 2000-07-11 | Kabushiki Kaisha Toshiba | Reluctance type rotating machine with permanent magnets |
| US6008559A (en) | 1997-07-22 | 1999-12-28 | Matsushita Electric Industrial Co., Ltd. | Motor using a rotor including an interior permanent magnet |
| DE69839927D1 (en) | 1997-10-13 | 2008-10-02 | Matsushita Electric Industrial Co Ltd | Motor with inner permanent magnet rotor |
| JPH11243653A (en) * | 1998-02-23 | 1999-09-07 | Fujitsu General Ltd | Permanent magnet motor |
| US6423386B2 (en) | 1998-04-06 | 2002-07-23 | Hitachi Metals, Ltd. | Magnet powder-resin compound particles, method for producing such compound particles and resin-bonded rare earth magnets formed therefrom |
| JP3428896B2 (en) | 1998-05-07 | 2003-07-22 | オークマ株式会社 | Motor with reduced torque ripple |
| FR2780580B1 (en) | 1998-06-25 | 2000-11-10 | Valeo Equip Electr Moteur | ROTATING MACHINE, SUCH AS AN ALTERNATOR FOR A MOTOR VEHICLE |
| KR20000009230A (en) | 1998-07-22 | 2000-02-15 | 윤종용 | Brushless dc motor |
| JP2000050542A (en) | 1998-07-23 | 2000-02-18 | Okuma Corp | Reluctance motor |
| DE19933009A1 (en) | 1998-07-24 | 2000-02-10 | Matsushita Electric Industrial Co Ltd | Electric motor e.g. for automobile air conditioning unit, has rotor core provided with slits for reception of internal permanent magnets with non-magnetic section between each permanent magnet and rotor periphery |
| DE19840914C2 (en) | 1998-09-08 | 2000-09-07 | Baermann Max Gmbh | Plastic ring magnet |
| US6274960B1 (en) | 1998-09-29 | 2001-08-14 | Kabushiki Kaisha Toshiba | Reluctance type rotating machine with permanent magnets |
| FR2784816B1 (en) | 1998-10-20 | 2001-01-05 | Valeo Equip Electr Moteur | ROTATING ELECTRIC MACHINE HAVING A NEW ARRANGEMENT OF ROTOR EXCITATION BY PERMANENT MAGNETS |
| JP4089072B2 (en) | 1998-10-23 | 2008-05-21 | 三菱電機株式会社 | Permanent magnet embedded motor |
| JP4005727B2 (en) | 1998-12-01 | 2007-11-14 | オークマ株式会社 | Electric motor control device |
| FR2787646B1 (en) | 1998-12-18 | 2001-03-09 | Valeo Equip Electr Moteur | ROTATING ELECTRIC MACHINE WITH PERMANENT MAGNETS AND RELUCTANCE HAVING AN IMPROVED CONSTRUCTION |
| FR2787645B1 (en) | 1998-12-18 | 2001-03-09 | Valeo Equip Electr Moteur | ROTATING ELECTRICAL MACHINE WITH PERMANENT MAGNETS AND RELUCTANCE HAVING IMPROVED FLOW CAPACITY |
| DE69928363T2 (en) | 1998-12-25 | 2006-06-01 | Matsushita Electric Industrial Co., Ltd., Kadoma | Motor with embedded permanent magnets embedded in the rotor |
| GB9903308D0 (en) | 1999-02-13 | 1999-04-07 | Trw Lucas Varity Electric | Improvements relating to electrical power assisted steering assemblies |
| EP1032115B1 (en) * | 1999-02-22 | 2007-04-04 | Kabushiki Kaisha Toshiba | Reluctance type rotating machine with permanent magnets |
| JP2000253608A (en) | 1999-03-03 | 2000-09-14 | Sharp Corp | Brushless motor |
| JP2000316241A (en) | 1999-04-27 | 2000-11-14 | Toyota Motor Corp | Permanent magnet embedded motor |
| KR100371159B1 (en) | 1999-09-22 | 2003-02-05 | 엘지전자 주식회사 | Structure for reducing torque ripple of synchronous reluctance motor |
| US6282961B1 (en) | 1999-09-24 | 2001-09-04 | Cda Astro Intercorp | Permanent magnet rotary accelerometer |
| JP2001145283A (en) | 1999-11-19 | 2001-05-25 | Toyota Motor Corp | Rotor of permanent magnet type rotating machine |
| JP3701832B2 (en) * | 2000-02-04 | 2005-10-05 | インターナショナル・ビジネス・マシーンズ・コーポレーション | Thin film transistor, liquid crystal display panel, and method of manufacturing thin film transistor |
| JP3507395B2 (en) | 2000-03-03 | 2004-03-15 | 株式会社日立製作所 | Rotating electric machine and electric vehicle using the same |
| US6486581B2 (en) | 2000-03-31 | 2002-11-26 | Sanyo Denki Co., Ltd. | Interior permanent magnet synchronous motor |
| JP4363746B2 (en) | 2000-05-25 | 2009-11-11 | 株式会社東芝 | Permanent magnet type reluctance type rotating electrical machine |
| JP2002010547A (en) | 2000-06-16 | 2002-01-11 | Yamaha Motor Co Ltd | Permanent magnet rotor and manufacturing method thereof |
| JP2002044915A (en) | 2000-07-27 | 2002-02-08 | Yamaha Motor Co Ltd | Embedded magnet rotor and filling method |
| US6884513B2 (en) | 2000-08-11 | 2005-04-26 | Neomax Co. Ltd. | Rare earth metal-based permanent magnet having corrosion-resistant film and method for producing the same |
| JP2002078259A (en) | 2000-08-31 | 2002-03-15 | Yamaha Motor Co Ltd | Permanent magnet rotor |
| TW538578B (en) | 2000-09-13 | 2003-06-21 | Sanyo Electric Co | Synchronous motor with built-in type permanent magnet |
| JP2002101628A (en) | 2000-09-22 | 2002-04-05 | Hitachi Ltd | Permanent magnet type rotating electric machine |
| JP2002153000A (en) | 2000-11-10 | 2002-05-24 | Sankyo Seiki Mfg Co Ltd | Permanent magnet embedded motor and method of manufacturing the same |
| JP2002252951A (en) | 2001-02-23 | 2002-09-06 | Alps Electric Co Ltd | Inner rotor motor and disk drive |
| JP2002354728A (en) | 2001-05-28 | 2002-12-06 | Okuma Corp | Reluctance motor |
| JP2003032926A (en) * | 2001-07-10 | 2003-01-31 | Teijin Seiki Co Ltd | Permanent magnet type motor |
| JP4680442B2 (en) * | 2001-08-10 | 2011-05-11 | ヤマハ発動機株式会社 | Motor rotor |
| US6684483B2 (en) | 2001-09-14 | 2004-02-03 | General Motors Corporation | Method of fabricating a rotor for an electric traction motor |
| US6856051B2 (en) | 2001-10-03 | 2005-02-15 | Delphi Technologies, Inc. | Manufacturing method and composite powder metal rotor assembly for circumferential type interior permanent magnet machine |
| US6675460B2 (en) | 2001-10-03 | 2004-01-13 | Delphi Technologies, Inc. | Method of making a powder metal rotor for a synchronous reluctance machine |
| DE10152151A1 (en) | 2001-10-25 | 2003-05-15 | Buhler Motor Gmbh | Permanent magnet rotor for electric motor has permanent magnet ring consisting of compressed, polymer-bound rare earth magnets mounted on plastic mounting produced by injection molding around ring |
| US6707206B2 (en) | 2002-01-23 | 2004-03-16 | Energy Saving Tech. Corp. | Magnetic material fixing structure of motor rotor |
| US6703746B2 (en) | 2002-03-01 | 2004-03-09 | General Motors Corporation | Interior permanent magnet rotor |
| US6674205B2 (en) | 2002-05-07 | 2004-01-06 | General Motors Corporation | Auxiliary magnetizing winding for interior permanent magnet rotor magnetization |
| ATE418809T1 (en) | 2002-07-26 | 2009-01-15 | Ms Technologie Gmbh | HIGH SPEED ROTOR |
| JP2004064887A (en) | 2002-07-29 | 2004-02-26 | Toshiba Kyaria Kk | Permanent magnet motor |
| US6891298B2 (en) | 2002-08-28 | 2005-05-10 | Emerson Electric Co. | Interior permanent magnet machine with reduced magnet chattering |
| US20040251759A1 (en) | 2003-06-12 | 2004-12-16 | Hirzel Andrew D. | Radial airgap, transverse flux motor |
| DE102004017507A1 (en) | 2004-04-08 | 2005-10-27 | Minebea Co., Ltd. | Rotor arrangement for an electric machine |
-
2005
- 2005-10-31 US US11/261,619 patent/US7436095B2/en not_active Expired - Fee Related
-
2006
- 2006-08-25 WO PCT/US2006/033322 patent/WO2007055775A2/en not_active Ceased
Cited By (9)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CN103339831A (en) * | 2011-02-03 | 2013-10-02 | 丰田自动车株式会社 | rotor for motor |
| DE112012000667B4 (en) | 2011-02-03 | 2024-10-24 | Aisin Aw Co., Ltd. | rotor for electric machine |
| FR2995469A1 (en) * | 2012-09-13 | 2014-03-14 | Leroy Somer Moteurs | ROTOR OF ROTATING ELECTRIC MACHINE HAVING A ROTORIC MASS IN WHICH ARE HOUSEHOLDS. |
| WO2014041507A1 (en) * | 2012-09-13 | 2014-03-20 | Moteurs Leroy-Somer | Rotor of a rotating electric machine, comprising a rotor body in which recesses are provided |
| CN104620473A (en) * | 2012-09-13 | 2015-05-13 | 利莱森玛电机公司 | Rotor of a rotating electric machine, comprising a rotor body in which recesses are provided |
| EP2896114B1 (en) | 2012-09-13 | 2017-07-05 | Moteurs Leroy-Somer | Rotor of a rotating electric machine, comprising a rotor body in which recesses are provided |
| EP3288156A1 (en) * | 2012-09-13 | 2018-02-28 | Moteurs Leroy-Somer | Electric machine |
| US10491063B2 (en) | 2012-09-13 | 2019-11-26 | Moteurs Leroy-Somer | Rotor of a rotating electric machine, comprising a rotor body in which recesses are provided |
| EP2896114B2 (en) † | 2012-09-13 | 2020-11-25 | Moteurs Leroy-Somer | Rotor of a rotating electric machine, comprising a rotor body in which recesses are provided |
Also Published As
| Publication number | Publication date |
|---|---|
| US20070096579A1 (en) | 2007-05-03 |
| US7436095B2 (en) | 2008-10-14 |
| WO2007055775A3 (en) | 2007-07-05 |
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