DOUBLE STATOR-TYPE ROTARY MACHINE
20170222499 · 2017-08-03
Assignee
Inventors
Cpc classification
H02K1/24
ELECTRICITY
H02K19/103
ELECTRICITY
H02K1/146
ELECTRICITY
International classification
Abstract
This double stator-type rotary machine is provided with: an annular rotor; an outer stator that is disposed on the outer side of the rotor; and an inner stator that is disposed on the inner side of the rotor. The rotor is provided with permanent magnets that are arranged on the inner stator side.
Claims
1. A double stator-type rotary machine comprising: an annular rotor; an outer stator disposed on an outer side of the rotor; and an inner stator disposed on an inner side of the rotor, wherein the rotor includes permanent magnets provided on the inner stator side.
2. The double stator-type rotary machine according to claim 1, wherein the rotor includes: Permanent magnets, whose magnetic poles facing the inner stator are alternately reversed, arranged in a circumferential direction of the rotor; and Outer salient poles disposed at a center of the permanent magnets adjacent to each other in the circumferential direction of the rotor and protruding toward the outer stator.
3. The double stator-type rotary machine according to claim 1, wherein the rotor includes inner salient poles protruding toward the inner stator and the permanent magnets are fitted in gaps between the inner salient poles.
4. The double stator-type rotary machine according to claim 2, wherein the rotor includes inner salient poles protruding toward the inner stator and the permanent magnets are fitted in gaps between the inner salient poles.
5. The double stator-type rotary machine according to claim 1, wherein an inner circumferential surface of the rotor is formed in a circular shape when viewed in a direction of a rotor shaft and the permanent magnets are provided on the inner circumferential surface.
6. The double stator-type rotary machine according to claim 2, wherein an inner circumferential surface of the rotor is formed in a circular shape when viewed in a direction of a rotor shaft and the permanent magnets are provided on the inner circumferential surface.
7. The double stator-type rotary machine according to claim 5, wherein the permanent magnets are arranged to be spaced apart from each other in the circumferential direction of the rotor.
8. The double stator-type rotary machine according to claim 6, wherein the permanent magnets are arranged to be spaced apart from each other in the circumferential direction of the rotor.
9. The double stator-type rotary machine according to claim 1, wherein the rotor includes: an annular yoke portion; an outer salient pole protruding from the yoke portion toward the outer stator; and an inner salient pole protruding from the yoke portion toward the inner stator.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0021]
[0022]
[0023]
[0024]
DETAILED DESCRIPTION
[0025] Hereinafter, one embodiment of a double stator-type rotary machine according to the present disclosure will be described with reference to the drawings. Also, in the following embodiments, an example in which the double stator-type rotary machine of the present disclosure is applied to a motor (a double stator-type motor) will be described.
[0026]
[0027] The rotor 2 has an annular shape centered on a rotor shaft L and is rotatably supported about the rotor shaft L by bearings or the like that are not shown. An annular yoke portion 2a, outer salient poles 2b protruding from the yoke portion 2a toward an outer side of the rotor 2, and inner salient poles 2c protruding from the yoke portion 2a toward an inner side of the rotor 2 are provided in this rotor 2. The yoke portion 2a, outer salient poles 2b, and inner salient poles 2c are formed by electromagnetic steel sheets stacked along the rotor shaft L and a bolt (not shown) for fastening them to each other. In addition, permanent magnets 2d are provided in the rotor 2.
[0028] The outer salient poles 2b protrude from an outer circumferential surface of the yoke portion 2a toward the outer stator 3 and the outer salient poles 2b are provided at regular intervals in a circumferential direction of the rotor 2. Also, in the present embodiment, eight outer salient poles 2b are provided at intervals of 45° as shown in
[0029]
[0030] Permanent magnets 2d are arranged in the circumferential direction of the rotor 2 and are provided on the side of the inner stator 4 of the rotor 2 by fitting the respective permanent magnets 2d into the gaps between adjacent inner salient poles 2c. The permanent magnets 2d are provided so that the magnetic poles facing the inner stator 4 are alternately reversed. Also, in
[0031] The outer stator 3 is disposed on the outer side of the rotor 2 and has an annular shape centered on the rotor shaft L to surround the rotor 2 from a radial outer side. In such an outer stator 3, an annular yoke portion 3a and salient poles 3b protruding from the yoke portion 3a toward the inner side of the rotor 2 are provided. The yoke portion 3a and salient poles 3b are integrally formed of a magnetic material. In addition, a coil 3c wound around the salient poles 3b is provided in the outer stator 3.
[0032] The salient poles 3b protrude from an inner circumferential surface of the yoke portion 3a toward the rotor 2 and the salient poles 3b are provided at regular intervals in a circumferential direction of the outer stator 3. Also, in the present embodiment, twelve salient poles 3b are provided at intervals of 30° as shown in
[0033] The inner stator 4 is disposed on the inner side of the rotor 2 to be surrounded by the rotor 2 from the radial outer side and has an annular shape centered on the rotor shaft L. In such an inner stator 4, an annular yoke portion 4a and salient poles 4b protruding from the yoke portion 4a toward an outer side of the yoke portion 4a are provided. The yoke portion 4a and salient poles 4b are integrally formed of a magnetic material. In addition, a coil 4c wound around the salient poles 4b is provided in the inner stator 4.
[0034] The salient poles 4b protrude from an outer circumferential surface of the yoke portion 4a toward the rotor 2 and the salient poles 4b are provided at regular intervals in a circumferential direction of the inner stator 4. Also, in the present embodiment, twelve salient poles 4b are provided at intervals of 30° as shown in
[0035] In such a double stator-type motor 1 of the present embodiment, when power is supplied to the coil 3c of the outer stator 3, a magnetic field is foil led by the coil 3c. A torque is applied to the rotor 2 by this magnetic field acting on the outer salient pole 2b. Also, when power is supplied to the coil 4c of the inner stator 4, a magnetic field is formed by the coil 4c. A torque is applied to the rotor 2 by this magnetic field acting on the inner salient poles 2c and the permanent magnets 2d.
[0036] Here, in the double stator-type motor 1 of the present embodiment, the permanent magnets 2d are provided on the inner stator 4 side of the rotor 2. Therefore, the outer side of the rotor 2 can be operated as a switched reluctance (SR) motor, and the inner side of the rotor 2 can be operated as a permanent magnet (PM) motor. A torque of the PM motor is larger than that of a same-sized SR motor. Therefore, in the double stator-type motor 1 of the present embodiment, it is possible to increase the torque applied from the inner stator 4 having a small diameter to the rotor 2 compared to the case in which the permanent magnets 2d are not provided. As a result, a difference between the torque applied to the rotor 2 from the outer stator 3 and the torque applied to the rotor 2 from the inner stator 4 can be suppressed by bringing the torque applied to the rotor 2 from the inner stator 4 having a small diameter close to the torque applied to the rotor 2 from the outer stator 3 having a large diameter. It is possible to increase motor efficiency by reducing the difference between the two torques.
[0037] Also, in the double stator-type motor 1 of the present embodiment, the outer salient pole 2b of the rotor 2 is disposed at the center of adjacent permanent magnets 2d in the circumferential direction of the rotor 2. Thus, as shown in
[0038] In addition, when the ease of the magnetic flux φ in passing through the rotor 2 is considered as described above, it is suitable that the radial thickness of the rotor 2 be as thick as possible within a range in which a weight increase and a size increase are allowed so that interference between the magnetic flux φ and the region B can be avoided.
[0039] Also, in the double stator-type motor 1 of the present embodiment, the permanent magnets 2d are fitted in the gaps between adjacent inner salient poles 2c. Thereby, the permanent magnets 2d are firmly fixed to the yoke portion 2a. Thus, it is possible to prevent the permanent magnets 2d from separating from the yoke portion 2a and causing vibration or noise even when the double stator-type motor 1 is used for a long time.
[0040] In addition, the present disclosure is not limited to the above-described embodiment, and the following modified example can be considered, for example. (1) In the above-described embodiment, the permanent magnets 2d are fitted in the gaps between the adjacent inner salient poles 2c of the rotor 2, but the present disclosure is not limited thereto. For example, as shown in
[0041] (2) As shown in
[0042] (3) In the above-described embodiment, a surface permanent magnet (SPM) type in which the permanent magnets 2d are exposed on the surface of the rotor 2 is employed for the double stator-type motor 1, but the present disclosure is not limited thereto. It is possible to employ an interior permanent magnet (IPM) type in which permanent magnets 2d are buried inside a rotor 2, for example.
[0043] (4) In the above-described embodiment, the double stator-type motor 1 which is a three-phase motor of U-phase, V-phase, and W-phase and having a structure in which the number of poles of each of the outer stator 3 and the inner stator 4 is twelve and the number of poles of the rotor 2 is eight is employed, but the present disclosure is not limited thereto. It is possible to change the number of poles of each of an outer stator 3, an inner stator 4, and a rotor 2.
[0044] (5) In the above-described embodiment, an example in which the present disclosure is applied to the double stator-type motor 1 is described, but the present disclosure is not limited thereto. The present disclosure can be applied to other rotary machines such as electric generators.
INDUSTRIAL APPLICABILITY
[0045] According to the double stator-type rotary machine of the present disclosure, motor efficiency can be improved.