Synchronous electric machine with two rotors
09780632 · 2017-10-03
Assignee
Inventors
Cpc classification
Y10S903/906
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
Y10S903/918
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
Y10S903/91
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B60K6/26
PERFORMING OPERATIONS; TRANSPORTING
B60K6/365
PERFORMING OPERATIONS; TRANSPORTING
H02K51/00
ELECTRICITY
International classification
B60K6/365
PERFORMING OPERATIONS; TRANSPORTING
B60K6/26
PERFORMING OPERATIONS; TRANSPORTING
H02K51/00
ELECTRICITY
Abstract
A synchronous electric machine includes a stator having a plurality of teeth with first and second active surfaces; first and second stator windings having respective series of first and second coils wound on said teeth; first and second rotors having respective series of first and second permanent magnets with alternate polarities and facing said respective first and second active surfaces; wherein the first coils and the second coils of each stator winding are arranged in pairs, with two coils of each pair offset from each other by a predetermined angle; and wherein, during operation as a motor, two first coils of each pair produce concordant torque contributions on the first rotor and discordant torque contributions on the second rotor and two second coils of each pair produce concordant torque contributions on the second rotor and discordant torque contributions on the first rotor.
Claims
1. A synchronous electric machine comprising: a stator including a plurality of teeth arranged at equal angular intervals and having first and second active surfaces, a first stator winding having a series of first coils wound on said teeth, a second stator winding having a series of second coils wound on said teeth, a first rotor having a series of first permanent magnets arranged at equal angular intervals with alternate polarities and facing said first active surfaces, a second rotor having a series of second permanent magnets arranged at equal angular intervals with alternate polarities and facing said second active surfaces, wherein the first and the second rotors are supported in rotation, independently of each other, around a common axis, wherein the first coils and the second coils of each stator winding are arranged in pairs, with two coils of each pair offset from each other by a predetermined angle, wherein, during operation as a motor, two first coils of each pair produce concordant torque contributions on the first rotor and discordant torque contributions on the second rotor and two second coils of each pair produce concordant torque contributions on the second rotor and discordant torque contributions on the first rotor, wherein each of said teeth carries a respective first coil and a respective second coil, and wherein the stator has a number of (n)(12) teeth, the first rotor has a number of (n)(8) permanent magnets and the second rotor has a number of (n)(10) second permanent magnets, where n is an integer greater than zero.
2. A vehicle comprising an internal combustion engine and a continuously variable transmission including an electric machine according to claim 1.
3. The vehicle according to claim 2, including a battery pack and a first and a second inverter connected to the battery pack and to respective stator windings.
4. The vehicle according to claim 2, wherein the internal combustion engine is connected to the first rotor and wherein the second rotor is connected to driving wheels.
5. The vehicle according to claim 2, comprising an epicyclic gear train including a sun gear, a carrier and an outer ring, wherein the internal combustion engine is connected to the carrier, the first rotor is connected to the sun gear and the second rotor is connected to the outer ring and wherein the outer ring is connected to the driving wheels.
6. A synchronous electric machine, comprising: a stator including a plurality of teeth arranged at equal angular intervals and having first and second active surfaces, a first stator winding having a series of first coils wound on said teeth, a second stator winding having a series of second coils wound on said teeth, a first rotor having a series of first permanent magnets arranged at equal angular intervals with alternate polarities and facing said first active surfaces, a second rotor having a series of second permanent magnets arranged at equal angular intervals with alternate polarities and facing said second active surfaces, wherein the first and the second rotors are supported in rotation, independently of each other, around a common axis, wherein the first coils and the second coils of each stator winding are arranged in pairs, with two coils of each pair offset from each other by a predetermined angle, wherein, during operation as a motor, two first coils of each pair produce concordant torque contributions on the first rotor and discordant torque contributions on the second rotor and two second coils of each pair produce concordant torque contributions on the second rotor and discordant torque contributions on the first rotor, wherein each of said teeth carries a respective first coil and a respective second coil, wherein the stator has a number of (n)(12) teeth, the first rotor has a number of (n)(8) permanent magnets and the second rotor has a number of (n)(10) second permanent magnets, where n is an integer greater than zero, and wherein the stator has a shape of an annular ring and wherein the first rotor and the second rotor are arranged coaxially within and, respectively, outside of the stator.
7. A synchronous electric machine, 4 comprising: a stator including a plurality of teeth arranged at equal angular intervals and having first and second active surfaces, a first stator winding having a series of first coils wound on said teeth, a second stator winding having a series of second coils wound on said teeth, a first rotor having a series of first permanent magnets arranged at equal angular intervals with alternate polarities and facing said first active surfaces, a second rotor having a series of second permanent magnets arranged at equal angular intervals with alternate polarities and facing said second active surfaces, wherein the first and the second rotors are supported in rotation, independently of each other, around a common axis, wherein the first coils and the second coils of each stator winding are arranged in pairs, with two coils of each pair offset from each other by a predetermined angle, wherein, during operation as a motor, two first coils of each pair produce concordant torque contributions on the first rotor and discordant torque contributions on the second rotor and two second coils of each pair produce concordant torque contributions on the second rotor and discordant torque contributions on the first rotor, wherein the stator has a number of (n)(12) teeth, the first rotor has a number of (n)(8) permanent magnets and the second rotor has a number of (n)(10) second permanent magnets, where n is an integer greater than zero, wherein the stator has a shape of an annular ring and wherein the first rotor and the second rotor are arranged coaxially within and, respectively, outside of the stator, and wherein the stator comprises a frame carrying a plurality of modular tooth units each of which comprises a tooth, a first coil and a second coil.
8. The electric machine according to claim 6, wherein said teeth have active surfaces parallel to each other and orthogonal to the axis of rotation and wherein the first and the second rotors are disc-shaped, facing frontally said active surfaces.
9. A synchronous electric machine, comprising: a stator including a plurality of teeth arranged at equal angular intervals and having first and second active surfaces, a first stator winding having a series of first coils wound on said teeth, a second stator winding having a series of second coils wound on said teeth, a first rotor having a series of first permanent magnets arranged at equal angular intervals with alternate polarities and facing said first active surfaces, a second rotor having a series of second permanent magnets arranged at equal angular intervals with alternate polarities and facing said second active surfaces, wherein the first and the second rotors are supported in rotation, independently of each other, around a common axis, wherein the first coils and the second coils of each stator winding are arranged in pairs, with two coils of each pair offset from each other by a predetermined angle, wherein, during operation as a motor, two first coils of each pair produce concordant torque contributions on the first rotor and discordant torque contributions on the second rotor and two second coils of each pair produce concordant torque contributions on the second rotor and discordant torque contributions on the first rotor, wherein the stator has a number of (n)(12) teeth, the first rotor has a number of (n)(8) permanent magnets and the second rotor has a number of (n)(10) second permanent magnets, where n is an integer greater than zero, wherein the stator has a shape of an annular ring and wherein the first rotor and the second rotor are arranged coaxially within and, respectively, outside of the stator, wherein the stator comprises a frame carrying a plurality of modular tooth units each of which comprises a tooth, a first coil and a second coil, and wherein said frame comprises tubular elements forming a circuit for the circulation of coolant.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The present invention will now be described in detail with reference to the accompanying drawings, given purely by way of non-limiting example, wherein:
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DETAILED DESCRIPTION
(11) In
(12) With reference to
(13) With reference to
(14) The first rotor 14 has a series of first permanent magnets 32. In the illustrated example, the first rotor 14 has 8 permanent magnets 32, labeled with 32.sub.1, 32.sub.2, 32.sub.3, 32.sub.4, 32.sub.5, 32.sub.6, 32.sub.7, and 32.sub.8. The permanent magnets 32 are facing the first active surfaces 20 of the teeth 18 with alternating polarity, so that adjacent magnets have surfaces facing the first active surfaces 20 with opposite polarities to each other. The second rotor 16 has a series of second permanent magnets 34 facing the second active surfaces 22 of the teeth 18. In the illustrated example, the second rotor 16 has 10 permanent magnets labeled with 34.sub.1, 34.sub.2, 34.sub.3, 34.sub.4, 34.sub.5, 34.sub.6, 34.sub.7, 34.sub.8, 34.sub.9, and 34.sub.10. The surfaces of the permanent magnets 34 facing the second active surfaces 22 of the teeth 18 have alternating polarity, so that two adjacent permanent magnets 34 have surfaces facing the second active surfaces 22 with opposite polarities.
(15) In operation as a motor, the coils 28, 30 of the first stator winding 24 and of the second stator winding 26 are supplied with alternating currents. The power supply of the coils 28, 30 can be single-phase or polyphase. Preferably, the coils 28, 30 of the windings 24, 26 are supplied with three-phase currents. The coils of each pair 28.sub.i′, 28.sub.i″, and 30.sub.i′, 30.sub.i″ belong to the same phase. In the example of three-phase windings with 12 coils, each phase comprises two pairs of coils, with the coils of each pair offset from each other by 180°. An example of a configuration of three-phase windings is represented in the following table.
(16) TABLE-US-00001 First phase Second phase Third phase First winding 28.sub.1′, 28.sub.1″ 28.sub.5′, 28.sub.5″ 28.sub.3′, 28.sub.3″ 24 28.sub.2′, 28.sub.2″ 28.sub.6′, 28.sub.6″ 28′.sub.4, 28″.sub.4 Second 30.sub.1′, 30.sub.1″ 30.sub.5′, 30.sub.5″ 30.sub.3′, 30.sub.3″ winding 26 30.sub.2′, 30.sub.2″ 30.sub.6′, 30.sub.6″ 30.sub.4′, 30.sub.4″
(17) The coils of each phase can be connected in series or in parallel to the same phase conductor.
(18) In
(19) With reference to
(20) For example, it is evident in
(21) If the coils 28.sub.i′, 28.sub.i″ of each pair generate discordant torque contributions, the resulting torque of each pair of coils 28.sub.i′, 28.sub.i″ is zero. Thus, the pairs of coils 28.sub.i′, 28.sub.i″ all produce zero resultant torque on the second rotor 16. The pairs of coils 28.sub.i′, 28.sub.i″ instead produce non-zero resultant torque on the first rotor 14. Consequently, the first stator winding 24 produces an overall zero torque on the second rotor 16 and an overall non-zero torque on the first rotor 14.
(22) With reference to
(23) The two rotors 14, 16 are therefore independent of each other from an electromagnetic point of view, except for the cogging torque. In fact, the first rotor 14 is subject to the cogging torque due to the rotation of the second rotor 16, and vice versa. However, the cogging torque is a torque with zero mean valve and low intensity (±2.5 Nm).
(24) A particularly important characteristic for obtaining the absence of electromagnetic interactions between the two rotors 14, 16 is the choice of the number of teeth 18 of the stator 12 and of the numbers of poles of the rotors 14, 16. In the illustrated example, the combination of 12 teeth/8 poles for the first rotor 14, and 12 teeth/10 poles for the second rotor is particularly advantageous because it renders virtually zero the electromagnetic interaction between the two rotors 14, 16. This is valid for any multiple integer of said teeth/poles pairs. Thus, a particularly advantageous choice for the number of teeth 18 of the stator 12 and the numbers of poles of the rotors 14, 16 is, respectively, n12/n8 and n12/n10, where n is an integer greater than zero.
(25) The electromagnetic independence of the rotors of the machine also applies in a generator mode. In this case, the rotation of the first rotor 14 induces concordant currents in the two coils 28.sub.i′, 28.sub.i″ of each pair of the first winding 24, and discordant currents in the two coils 30.sub.i′, 30.sub.i″ of each pair of the second winding 26. Thus, the overall current produced at the second winding 26, following rotation of the first rotor 14, is zero, while the overall current produced by the first winding 24, following rotation of the first rotor 14, is not zero. Similarly, the rotation of the second rotor 16 induces concordant currents in the two coils 30.sub.i′, 30.sub.i″ of each pair of the second winding 26 and discordant currents in the two coils 28.sub.i′, 28.sub.i″ of each pair of the first winding 24. Thus, following rotation of the second rotor 16, the overall current produced by the first winding 24 is zero, while the overall current produced by the second winding 26 is not zero.
(26) The machine 10 can also operate with a rotor that operates as a motor and with the other rotor that operates as a generator, and in this case as well, the two rotors 14, 16 are electromagnetically independent of each other.
(27) As illustrated in
(28) With reference to
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(30) In
(31) In both configurations, the inverters 42, 44 are controlled by an electronic control unit which drives the inverters 42, 44 to provide the speed and the torque required by the user.
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(33) Of course, without prejudice to the principle of the invention, the details of construction and the embodiments may vary widely with respect to those described and illustrated here, without departing from the scope of the invention as defined by the claims that follow.