Magnetic transmission
09853532 · 2017-12-26
Assignee
Inventors
Cpc classification
H02K2213/09
ELECTRICITY
International classification
H02K7/20
ELECTRICITY
Abstract
An electromagnetic transmission assembly. The electromagnetic transmission assembly includes a stator having a central axis and a plurality of selectively-energized electromagnetic poles. A first rotor assembly is rotatably supported for rotation about the central axis. The first rotor assembly including a first rotor shaft and a castellated rotor including a plurality of radially arranged ferromagnetic pole portions disposed in a housing. A second rotor assembly is rotatably supported for rotation about the central axis. The second rotor assembly includes a second rotor shaft and a permanent-magnet rotor. The first rotor assembly is at least partially magnetically coupled to the second rotor assembly when the plurality of electromagnetic poles are energized.
Claims
1. An electromagnetic transmission assembly comprising: a stator having a central axis and a plurality of selectively-energized electromagnetic poles; a first rotor assembly rotatably supported for rotation about the central axis, the first rotor assembly including a first rotor shaft and a castellated rotor including a plurality of radially arranged ferromagnetic pole portions disposed in a housing; a second rotor assembly rotatably supported for rotation about the central axis, the second rotor assembly including a second rotor shaft and a permanent-magnet rotor, wherein the first rotor assembly is at least partially magnetically coupled to the second rotor assembly when the plurality of electromagnetic poles are energized; a DC power supply for supplying the electrical current to the stator; a switch electrically connected between the stator and the DC power supply to selectively couple DC to the plurality of selectively-energized electromagnetic poles; wherein the selectively energizing the electromagnetic poles with the DC power supply creates a magnetic field at least partially coupling the first rotor assembly and the second rotor assembly; and wherein the selectively de-energizing the electromagnetic poles with the DC power supply substantially decouples the first rotor assembly and the second rotor assembly such that the prime mover operates substantially independent of the load.
2. The electromagnetic transmission of claim 1, wherein the castellated rotor includes a base portion coupled to a distal end of the first rotor shaft, and an annular rotor body extending axially from the base portion and including the radially arranged ferromagnetic pole portions, the base portion and annular rotor body defining a rotor cavity.
3. The electromagnetic transmission of claim 2, wherein the permanent magnet rotor is at least partially disposed within the cavity.
4. The electromagnetic transmission assembly of claim 1, wherein the DC power supply is a battery.
5. The electromagnetic transmission of claim 1, wherein a ratio of a rotational speed of the first rotor assembly and a rotational speed of the second rotor assembly is determined by the number of magnetic poles on the inner shaft, the number of castellations or saliencies on the outer shaft, and the winding pattern of the stator.
6. The electromagnetic transmission of claim 1, further comprising a coupling assembly for coupling the first rotor assembly and the second rotor assembly for substantially synchronous rotation.
7. An electromagnetic transmission assembly comprising: a stator having a central axis and a plurality of selectively-energized electromagnetic poles; a first rotor assembly rotatably supported for rotation about the central axis, the first rotor assembly including a first rotor shaft and a castellated rotor including a plurality of radially arranged ferromagnetic pole portions disposed in a housing; a second rotor assembly rotatably supported for rotation about the central axis, the second rotor assembly including a second rotor shaft and a permanent-magnet rotor, wherein the first rotor assembly is at least partially magnetically coupled to the second rotor assembly when the plurality of electromagnetic poles are energized; a DC power supply for supplying the electrical current to the stator; further comprising a coupling assembly for coupling the first rotor assembly and the second rotor assembly for substantially synchronous rotation; wherein the coupling assembly mechanically couples the first rotor assembly and the second rotor assembly in only a first direction.
8. The electromagnetic transmission of claim 6, wherein the coupling assembly includes a drawn cup roller bearing.
9. The electromagnetic transmission of claim 1, wherein the coupling assembly magnetically couples the first rotor assembly and the second rotor assembly in at least a first direction.
10. A method of selectively coupling a prime mover to a load the method comprising: providing an electromagnetic transmission including a stator having a central axis and a plurality of selectively-energized electromagnetic poles, a first rotor assembly rotatably supported for rotation about the central axis, the first rotor assembly including a first rotor shaft and a castellated rotor including a plurality of radially arranged ferromagnetic pole portions disposed in a housing, a second rotor assembly rotatably supported for rotation about the central axis, the second rotor assembly including a second rotor shaft and a rotor with permanent-magnets, coupling a prime mover to one of the inner rotor and the outer rotor; coupling a load to the other of the inner rotor and the outer rotor; selectively energizing the electromagnetic poles directly with a DC power source to create a magnetic field at least partially coupling the first rotor assembly and the second rotor assembly; operating the prime mover and load in asynchronous driving relation; and selectively de-energizing the electromagnetic poles, thereby substantially decoupling the first rotor assembly and the second rotor assembly such that prime mover operates substantially independent of the load.
11. The method of claim 10, wherein the electromagnetic transmission further includes a coupling assembly selectively coupling the first rotor assembly and the second rotor assembly for substantially synchronous rotation, and wherein the method further comprises selectively engaging the coupling assembly and operating the prime mover and load in substantially synchronous driving relation.
12. The method of claim 10, wherein the prime mover is an electric motor.
13. The method of claim 10, wherein the prime mover is an internal combustion engine.
14. The method of claim 10, wherein the prime mover is a gas turbine.
15. The method of claim 10, wherein the load is a pump.
16. The method of claim 10, wherein the load is a compressor.
17. The method of claim 11, wherein the coupling assembly includes a drawn cup roller bearing.
18. The method of claim 11, wherein a ratio of a rotational speed of the prime mover and a rotational speed of the load is at least partially determined by the number of magnetic poles on the inner shaft, the number of castellations on the outer shaft, and the winding pattern of the stator.
19. A method of selectively coupling a prime mover to a load the method comprising: providing an electromagnetic transmission including a stator having a central axis and a plurality of selectively-energized electromagnetic poles, a first rotor assembly rotatably supported for rotation about the central axis, the first rotor assembly including a first rotor shaft and a castellated rotor including a plurality of radially arranged ferromagnetic pole portions disposed in a housing, a second rotor assembly rotatably supported for rotation about the central axis, the second rotor assembly including a second rotor shaft and a rotor with permanent-magnets, coupling a prime mover to one of the inner rotor and the outer rotor; coupling a load to the other of the inner rotor and the outer rotor; selectively energizing the electromagnetic poles directly with a DC power source to create a magnetic field at least partially coupling the first rotor assembly and the second rotor assembly; operating the prime mover and load in asynchronous driving relation; and selectively de-energizing the electromagnetic poles, thereby substantially decoupling the first rotor assembly and the second rotor assembly such that prime mover operates substantially independent of the load; wherein the electromagnetic transmission further includes a coupling assembly selectively coupling the first rotor assembly and the second rotor assembly for substantially synchronous rotation; wherein the method further comprises selectively engaging the coupling assembly and operating the prime mover and load in substantially synchronous driving relation; and wherein the coupling assembly mechanically couples the first rotor assembly and the second rotor assembly in only a first direction.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
(11) Before any embodiments of the invention are explained in detail, it is to be understood that the invention is not limited in its application to the details of construction and the arrangement of components set forth in the following description or illustrated in the following drawings. The invention is capable of other embodiments and of being practiced or of being carried out in various ways.
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(13) The stator 12 includes a plurality of stator windings 22. A DC power supply 24 is selectively coupled to the stator windings 22 via a switch 26. The DC power supply 24 may be, for example, a battery, a capacitor, a rectifier, or other source of DC current. The switch 26 may be a mechanical, electric, or electronic device, as is known in the art.
(14) An inner rotor 28 is coupled to the first shaft 14 such that the inner rotor 28 rotates synchronously with the first shaft 14. The inner rotor 28 includes a plurality of permanent magnets 30 arranged radially about a longitudinal axis 32 of the first shaft 14. An arrangement of this type is illustrated in
(15) Referring back to
(16) The outer rotor 34 includes a base portion 40 coupled to a distal end 42 of the second shaft 16. An annular rotor body 44 extends axially from the base portion 40.
(17) Referring back to
(18) In the second operating mode, the DC power supply switch 26 is closed such that current from the DC power supply 24 is supplied to the stator windings 22. A current flowing into the stator windings 22 creates a number of fixed electromagnetic poles, where the number of poles depends upon the particular winding structure.
(19) Due to magnetic coupling between the inner rotor 28 and the outer rotor 34, rotating the first shaft 14 by the application of an external torque results in rotation on the second shaft 16. Alternatively, rotating the second shaft 16 results in rotation of the first shaft 14. A torque relationship between rotational speed of the first shaft 14 and the second shaft 16 is determined by the number of permanent magnets 30 on the inner rotor 28, the number of ferromagnetic pole portions 346 (
G.sub.r=n.sub.s/p
A preferred number of stator pole pairs is equal to the absolute value of the difference of the number of castellations and the number of inner rotor magnetic pole pairs.
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(21) The electromagnetic transmission 210 of
(22) In a second mode of operation, the DC power supply switch 226 is open and the unidirectional mechanical coupling device 252 is engaged. In the second mode, the first shaft 214 and the second shaft 216 rotate synchronously in a first direction of rotation with a minimal power loss due to magnetic braking effects. However, because the coupling device 252 is unidirectional, in a second direction of rotation of the second shaft 216 there is substantially no power transmission to the first shaft 214.
(23) In a third mode of operation, the DC power supply switch 226 is shut and the unidirectional mechanical coupling device 252 is disengaged. Rotation on one of the first shaft 214 and the outer shaft 216 results in rotation of the other of the first shaft 214 and the outer shaft 216 by magnetic coupling between the inner rotor 228 and the outer rotor 234. A ratio of the speed between the first shaft 214 and the second shaft 216 is determined by the number of inner rotor permanent magnets 230, the number of ferromagnetic pole portions 246, and the number of stator winding poles.
(24) In a fourth mode of operation, the DC power supply switch 226 is shut and the unidirectional mechanical transmission 252 device is engaged. In this fourth mode of operation, the first shaft and the second shaft rotate substantially synchronously, though additional braking torque may be present compared to the second mode of operation.
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(26) In a first mode of operation, a DC power supply switch 526 is open, and the electromagnetic coupler 554 is disengaged (i.e., deenergized). The first shaft 514 and the second shaft 516 rotate substantially freely and independently of each other, with the exception of magnetic braking forces caused by permanent magnets 530 of the inner rotor 528.
(27) In a second mode of operation, the DC power supply switch 526 is also open, but the electromagnetic coupler 554 is engaged via the coupler power supply 556. In this second mode, the first shaft 514 and the second shaft 516 rotate substantially synchronously. Power and torque are transmitted from the first shaft 514 to the second shaft 516 or vice versa.
(28) In a third mode of operation, the DC power supply switch 526 is shut and the electromagnetic coupler 554 is disengaged (i.e., deenergized). The first shaft 514 and the second shaft 516 rotate with a speed ratio determined by the number of inner rotor permanent magnets 530, the number of ferromagnetic pole portions (346, see
(29) In a fourth mode of operation, the DC power supply switch 526 is shut and the electromagnetic coupler 554 is engaged via the power supply 556. In this fourth mode of operation, the first shaft 514 and the second shaft 516 rotate substantially synchronously, though additional braking torque may be present compared to the second mode of operation.
(30) Each of the previously described aspects of the invention may use a variety of stator core laminations and windings. In one arrangement, the number of stator magnetic poles equals the absolute value of the difference of the number of castellations and inner rotor magnetic poles.
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(34) Thus, the invention provides, among other things, an electromagnetic transmission. Various features and advantages of the invention are set forth in the following claims.