Circumferential flux electric machine with field weakening mechanisms and methods of use

US11784546B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-11784546-B2
Application numberUS-202117509919-A
CountryUS
Kind codeB2
Filing dateOct 25, 2021
Priority dateOct 20, 2015
Publication dateOct 10, 2023
Grant dateOct 10, 2023

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  1. Title

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  2. Abstract

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  3. Assignees and inventors

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  4. Key dates

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  5. First independent claim

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  6. CPC / IPC classifications

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  7. Citations and related patents

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Abstract

Official abstract text for this publication.

There are presented various embodiments disclosed in this application, including methods and systems of arranging permanent magnets to switch from a first configuration designed for a first torque output to a second configuration designed for a second torque output.

First claim

Opening claim text (preview).

What is claimed is: 1. An electrical machine, comprising: an axial axis; a toroidal tunnel positioned about the axial axis, the toroidal tunnel defined by: a first rotor comprising a first plurality of permanent magnetic poles circumferentially spaced about the axial axis, wherein each magnetic pole in the first plurality of permanent magnetic poles faces towards an interior of the toroidal tunnel and has an opposite magnetic polarity from its adjacent magnetic poles; a second rotor comprising and positioned opposing the first rotor, the second rotor comprising a second plurality of permanent magnetic poles circumferentially spaced about the axial axis, wherein each magnetic pole in the second plurality of permanent magnetic poles faces towards the interior of the toroidal tunnel and has an opposite magnetic polarity from its adjacent magnetic poles; the toroidal tunnel adapted to rotate from a first magnetic pole configuration, where the first plurality of permanent magnetic poles and the second plurality of permanent magnetic poles are radially aligned in a first tunnel position, to a second magnetic pole configuration where the first plurality of permanent magnetic poles and the second plurality of permanent magnetic poles are radially aligned in a second tunnel position, different from the first tunnel position, a first rotation actuator coupled to at least one of the rotors for mechanically rotating a portion of the toroidal tunnel from the first magnetic pole configuration to the second magnetic pole configuration, and a coil assembly positioned within the toroidal tunnel. 2. The electrical machine of claim 1 , wherein the first rotor comprises an outside cylindrical wall positioned about the axial axis and the second rotor comprises an inside cylindrical wall positioned about the axial axis and positioned opposing the first cylindrical wall. 3. The electrical machine of claim 1 , wherein the toroidal tunnel further comprises: a third rotor positioned about the axial axis and positioned axially adjacent to the first rotor and second rotor, wherein the third rotor comprises a third plurality of permanent magnetic poles circumferentially spaced about the axial axis, wherein each magnetic pole in the third plurality of permanent magnetic poles faces towards the interior of the toroidal tunnel and has an opposite magnetic polarity from its adjacent magnetic poles; and a fourth rotor positioned about the axial axis and positioned axially adjacent to the first rotor and second rotor, and axially from the third rotor, wherein the fourth rotor comprises a fourth plurality of permanent magnetic poles circumferentially spaced about the axial axis, wherein each magnetic pole in the fourth plurality of permanent magnetic poles faces towards the interior of the toroidal tunnel and has an opposite magnetic polarity from its adjacent magnetic poles. 4. The electrical machine of claim 3 , wherein the third rotor comprises a first side wall positioned adjacent to the outer cylindrical wall and inner cylindrical wall and the fourth rotor comprises an opposing side wall positioned adjacent to the outer cylindrical wall and inner cylindrical wall and axially away from the first side wall. 5. The electrical machine of claim 4 , wherein in the first magnetic pole configuration, north magnetic pole polarities of the first plurality of permanent magnetic poles, the second plurality of permanent magnetic poles, the third plurality of permanent magnetic poles, and the fourth plurality of permanent magnetic poles are all axially and radially aligned to form a NNNN magnetic pole configuration. 6. The electrical machine of claim 4 , wherein in the second magnetic pole configuration, north magnetic pole polarities of the first plurality of permanent magnetic poles and the north magnetic pole polarities of the second plurality of permanent magnetic poles oppose each other and are radially aligned with the south magnetic pole polarities of the third plurality of permanent magnetic poles and fourth plurality of permanent magnetic poles to form a NSNS magnetic pole configuration. 7. The electrical machine of claim 6 , wherein the first rotation actuator is mechanically coupled to the third rotor such that the third rotor can rotate independently of the first rotor and second rotor from the first magnetic pole configuration, through a predetermined angle of rotation, to the second magnetic pole configuration. 8. The electrical machine of claim 7 , further comprising a second rotation actuator which is coupled to the fourth rotor such that the fourth rotor can rotate independently of the first rotor and the second rotor from the first magnetic pole configuration, through the predetermined angle of rotation to the second magnetic pole configuration. 9. The electrical machine of claim 6 , wherein the first rotation actuator is mechanically coupled to both the third rotor and fourth rotor such that the third and fourth rotors can rotate independently of the first rotor and second rotor from the first magnetic pole configuration, through the predetermined angle of rotation, to the second magnetic pole configuration. 10. The electrical machine of claim 4 , wherein in the second magnetic pole configuration, north magnetic pole polarities of the first plurality of permanent magnetic poles and the north magnetic pole polarities of the third plurality of permanent magnetic poles are axially adjacent to each other and oppose the south magnetic pole polarities of the second plurality of permanent magnetic poles and fourth plurality of permanent magnetic poles to form a NNSS magnetic pole configuration. 11. The electrical machine of claim 10 , wherein the first rotation actuator is mechanically coupled to both the first rotor and third rotor such that the first and third rotors can rotate independently of the second rotor and fourth rotor from the first magnetic pole configuration, through the predetermined angle of rotation, to the second magnetic pole configuration. 12. A method of producing electric electromotive rotation comprising positioning a toroidal tunnel about the axial axis, the toroidal tunnel defined by: a first rotor comprising a first plurality of permanent magnetic poles circumferentially spaced about the axial axis, wherein each magnetic pole in the first plurality of permanent magnetic poles faces towards an interior of the toroidal tunnel and has an opposite magnetic polarity from its adjacent magnetic poles; a second rotor comprising and positioned opposing the first rotor, the second rotor comprising a second plurality of permanent magnetic poles circumferentially spaced about the axial axis, wherein each magnetic pole in the second plurality of permanent magnetic poles faces towards the interior of the toroidal tunnel and has an opposite magnetic polarity from its adjacent magnetic poles; a third rotor positioned about the axial axis and positioned axially adjacent to the first rotor and second rotor, wherein the third rotor comprises a third plurality of permanent magnetic poles circumferentially spaced about the axial axis, wherein each magnetic pole in the third plurality of permanent magnetic poles faces towards the interior of the toroidal tunnel and has an opposite magnetic polarity from its adjacent magnetic poles; and a fourth rotor positioned about the axial axis and positioned axially adjacent to the first rotor and second rotor, and axially from the third rotor, wherein the fourth rotor comprises a fourth plurality of permanent magnetic poles circumferentially spaced about the axial axis, wherein each magnetic pole in the fourth plurality of permanent magnetic poles faces towards the inte

Assignees

Inventors

Classifications

  • H02K16/02Primary

    Machines with one stator and two {or more} rotors · CPC title

  • Surface mounted magnets; Inset magnets · CPC title

  • by modifying the magnetic circuit within the field or the armature, e.g. by using shunts, by adjusting the magnets position, by vectorial combination of field or armature sections · CPC title

  • Vectorial combination of the fluxes generated by a plurality of field sections or of the voltages induced in a plurality of armature sections · CPC title

  • Structural details of electrical machines · CPC title

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Frequently asked questions

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What does patent US11784546B2 cover?
There are presented various embodiments disclosed in this application, including methods and systems of arranging permanent magnets to switch from a first configuration designed for a first torque output to a second configuration designed for a second torque output.
Who is the assignee on this patent?
Linear Labs Inc
What technology area does this patent fall under?
Primary CPC classification H02K16/02. Mapped technology areas include Electricity.
When was this patent published?
Publication date Tue Oct 10 2023 00:00:00 GMT+0000 (Coordinated Universal Time) (B2). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 8 related publications on this page (citations in our corpus or others sharing the same primary CPC).