IP Library Granted Patent US 11,218,062
Granted Patent B2
US 11,218,062 · App. 16/682,191 · Granted Jan 4, 2022

Double-stator single-winding switched reluctance machine

Inventors: Yasemin Oner (Hamilton, CA); Berker Bilgin (Hamilton, CA); Ali Emadi (Burlington, CA)
Assignee: ENEDYM INC.
H02K16/02H02K1/246H02K3/12H02K19/103H02K19/12H02K19/32H02P25/08
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 11,218,062
App. No.
16/682,191
Granted
Jan 4, 2022
Kind
B2
Abstract

A three-phase switched reluctance machine has a rotor, a first stator and a second stator. The rotor, first stator and second stator are coaxially and concentrically disposed. The rotor and both the first stator and second stator have corresponding poles. Only one of the stators has coils wound about its poles, while the other stator does not have any coils. A defined relationship between the number of rotor poles, the number of stator poles on the first stator and the number of stator poles on the second stator may improve the torque quality of the switched reluctance machine.

Claims (44)

1. A switched reluctance machine comprising:

an axially extending shaft;

an axially extending rotor mounted to the shaft, the rotor having a plurality of salient rotor poles;

an axially extending outer stator disposed coaxially and concentrically with the rotor, the outer stator having a plurality of salient outer stator poles protruding radially from the outer stator towards the rotor poles;

a plurality of electrical coils wound about the outer stator poles, the plurality of electrical coils including a plurality of separate phase coils defining a plurality of phases of the switched reluctance machine, wherein the plurality of phases of the switched reluctance machine includes at least three phases; and

an axially extending inner stator disposed coaxially and concentrically with the rotor and the outer stator, the inner stator defining a plurality of second stator poles;

wherein electrical coils are wound about only the outer stator poles.

2. The switched reluctance machine of claim 1 , wherein the inner stator is disposed between the outer stator and the rotor.

3. The switched reluctance machine of claim 1 , wherein the rotor is disposed between the outer stator and the inner stator.

4. The switched reluctance machine of claim 1 , wherein the number of outer stator poles in the plurality of salient outer stator poles is an integer multiple of the number of phases in the plurality of phases.

5. The switched reluctance machine of claim 4 , wherein the number of outer stator poles in the plurality of salient outer stator poles is defined according to N s1 =N ph ×gcd((N s1 ,N r ),

wherein N s1 is the number of outer stator poles in the plurality of salient outer stator poles, N ph is the number of phases in the plurality of phases, N r is the number of rotor poles in the plurality of salient rotor poles, and gcd is the greatest common divisor.

6. The switched reluctance machine of claim 1 , wherein the number of inner stator poles in the plurality of inner stator poles is an integer multiple of the number of outer stator poles in the plurality of salient outer stator poles.

7. The switched reluctance machine of claim 1 , wherein the number of inner stator poles in the plurality of inner stator poles is defined according to N s2 =N r +gcd(N s1 ,N r ),

wherein N s1 is the number of outer stator poles in the plurality of salient outer stator poles, N s2 is the number of inner stator poles in the plurality of inner stator poles, N r is the number of rotor poles in the plurality of salient rotor poles, and gcd is the greatest common divisor.

8. A switched reluctance machine comprising:

a rotor having a plurality of salient rotor poles;

a first stator disposed concentrically with the rotor, the first stator having a plurality of salient first stator poles protruding radially from the first stator towards the rotor poles;

a plurality of electrical coils wound about the first stator poles, the plurality of electrical coils including a plurality of separate phase coils defining a plurality of phases of the switched reluctance machine; and

a second stator disposed concentrically with the rotor and the first stator, the second stator defining a plurality of second stator poles;

wherein the switched reluctance machine omits any electrical coils wound about the second stator poles.

9. The switched reluctance machine of claim 8 , wherein the second stator is disposed between the rotor and the first stator.

10. The switched reluctance machine of claim 8 , wherein the rotor is disposed between the first stator and the second stator.

11. The switched reluctance machine of claim 8 , wherein the switched reluctance machine has at least three phases defined by the plurality of electrical coils.

12. The switched reluctance machine of claim 8 , wherein the number of first stator poles in the plurality of salient first stator poles is an integer multiple of the number of phases in the plurality of phases.

13. The switched reluctance machine of claim 12 , wherein the number of first stator poles in the plurality of salient first stator poles is defined according to N s1 =N ph ×gcd(N s1 ,N r ),

wherein N s1 is the number of first stator poles in the plurality of salient first stator poles, N ph is the number of phases in the plurality of phases, N r is the number of rotor poles in the plurality of salient rotor poles, and gcd is the greatest common divisor.

14. The switched reluctance machine of claim 8 , wherein the number of second stator poles in the plurality of second stator poles is an integer multiple of the number of first stator poles in the plurality of salient first stator poles.

15. The switched reluctance machine of claim 8 , wherein the number of second stator poles in the plurality of second stator poles is defined according to N s2 =N r +gcd(N s1 ,N r ),

wherein N s1 is the number of first stator poles in the plurality of salient first stator poles, N s2 is the number of second stator poles in the plurality of second stator poles, N r is the number of rotor poles in the plurality of salient rotor poles, and gcd is the greatest common divisor.

16. A method of manufacturing a switched reluctance machine, the method comprising:

providing a rotor having a plurality of salient rotor poles;

defining a number of phases for the switched reluctance machine;

determining a number of first stator poles from the number of salient rotor poles and the number of phases;

mounting a first stator concentrically with the rotor, the first stator having a plurality of salient first stator poles protruding radially from the first stator towards the rotor poles, wherein the plurality of salient first stator poles has the number of first stator poles;

determining a number of second stator poles from the number of salient rotor poles and the number of first stator poles;

mounting a second stator concentrically with the rotor and the first stator, the second stator having a plurality of second stator poles, wherein the plurality of second stator poles has the number of second stator poles; and

winding a plurality of electrical coils about only the first stator poles, the plurality of electrical coils including a plurality of separate phase coils defining the number of phases of the switched reluctance machine.

17. The switched reluctance machine of claim 16 , wherein the second stator is mounted between the rotor and the first stator.

18. The method of claim 17 , further comprising:

optimizing a shape of the second stator using finite element analysis by analyzing at least one of an outer stator-side angle, a rotor-side angle, a second stator thickness, and a second stator pole circumferential width.

19. The switched reluctance machine of claim 16 , wherein the rotor is mounted between the first stator and the second stator.

20. The method of claim 19 , further comprising:

optimizing a shape of the rotor using finite element analysis by analyzing at least one of an outer stator-side angle, an inner stator-side angle, a rotor thickness, and a rotor pole circumferential width.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 26, 2021
From: EMADI, ALI; BILGIN, BERKER; ONER, YASEMIN
To: MCMASTER UNIVERSITY
Reel/Frame 056353/0114 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 3, 2020
From: ONER, YASEMIN; BILGIN, BERKER; EMADI, ALI
To: MCMASTER UNIVERSITY
Reel/Frame 051408/0447 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 3, 2020
From: MCMASTER UNIVERSITY
To: ENEDYM INC.
Reel/Frame 051408/0486 →
Continuity (2)
Provisional Application 62768181 · Nov 16, 2018
Related Publication 20200161949A1 · May 21, 2020