IP Library Granted Patent US 11,953,395
Granted Patent B2
US 11,953,395 · App. 17/655,469 · Granted Apr 9, 2024

Magnetic field differential linear torque sensor

Inventor: Alexander Latham (Harvard, MA)
Assignee: Allegro MicroSystems, LLC
G01L3/104
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Quick Facts
Patent No.
US 11,953,395
App. No.
17/655,469
Granted
Apr 9, 2024
Kind
B2
Abstract

Differential magnetic field torque sensors include first and second magnetic field concentrators that guide magnetic flux to a magnetic field sensor from first and second magnetic field directors and a target, such as a multipole magnet assembly configured as a ring magnet. The magnetic field concentrators have pairs of sections that are interdigitated and configured adjacent to magnetic field sensing elements of the magnetic field sensor. The magnetic field directors can each have a plurality of teeth, which can be interdigitated and adjacent or proximate to the target. The magnetic field directors can be configured to be mounted as a unit to a rotatable shaft while the target can be configured to be mounted to a different rotatable shaft. The magnetic field concentrators and magnetic field sensor can be fixed while the magnetic field directors and target can rotate with respect to each other about a twist axis.

Claims (40)

1. A differential magnetic field torque sensor, the sensor comprising:

a multipole magnet assembly configured for coupling to a first rotatable shaft having a first axis of rotation;

first and second magnetic field directors positioned adjacent the multipole magnet assembly and configured to affect magnetic flux from the multipole magnet assembly, wherein the first and second magnetic field directors are configured for coupling as a unit to a second rotatable shaft having a second axis of rotation aligned with the first axis of rotation;

first and second magnetic field concentrators configured to concentrate the magnetic flux from the multipole magnet assembly, wherein each magnetic field concentrator has first and second offset sections that are offset from one another in a direction transverse to the first axis of rotation, wherein the first and second offset sections of the first magnetic field concentrator are at different positions respectively in a direction parallel to the first axis of rotation, and wherein the first and second offset portions of the second magnetic field concentrator are at different positions respectively in a direction parallel to the first axis of rotation;

first and second interdigitated section pairs, each including an offset section of the first magnetic field concentrator configured with an offset portion of the second magnetic field concentrator in a respective orientation, and wherein the second interdigitated section pair has a reversed orientation relative to that of the first interdigitated section pair; and

a magnetic field sensor having first and second magnetic field sensing elements, each configured to measure magnetic flux and to produce an output signal based on measured changes in magnetic flux due to relative angular motion between the multipole magnet assembly and the first and second magnetic field directors, wherein the output signal is indicative of torque applied to the first or second rotatable shafts;

wherein each of the first and second interdigitated section pairs is configured to receive a respective magnetic field sensing element.

2. The sensor of claim 1 , wherein the first shaft is coupled to the second shaft by an elastic member.

3. The sensor of claim 2 , wherein the elastic member comprises a torsion bar.

4. The sensor of claim 1 , wherein the multipole magnet assembly is configured as a ring magnet and includes a plurality of magnetic domains disposed in a cylindrical configuration, each having an opposite polarity with respect to an adjacent magnetic domain.

5. The sensor of claim 1 , wherein the first and second magnetic field directors each include a plurality of teeth.

6. The sensor of claim 5 , wherein the multipole magnet assembly is configured as a toroidal body, wherein the first and second magnetic field directors are each disposed around a circumference of the toroidal body, and wherein the teeth of the first magnetic field director are spaced apart from and interdigitated with the teeth of the second magnetic field director.

7. The sensor of claim 1 , wherein the magnetic field sensor is coupled to a housing that is stationary relative to the first and second rotatable shafts.

8. The sensor of claim 7 , wherein the first and second magnetic field concentrators are coupled to the housing.

9. The sensor of claim 1 , further comprising a sum unit configured to receive an output signal from each magnetic field sensing element and to subtract one magnetic field element output signal from the other, wherein the sum unit is configured to produce an output signal indicative of angular displacement of the multipole magnet assembly relative to the first and second magnetic field directors, and wherein effects of stray magnetic fields on the first and second magnetic field sensing elements are mitigated.

10. The sensor of claim 1 , wherein the first and second rotatable shafts comprise a steering column.

11. The sensor of claim 1 , wherein the magnetic field sensing elements comprise Hall effect elements.

12. The sensor of claim 1 , wherein the magnetic field sensing elements comprise magnetoresistance elements.

13. The sensor of claim 1 , wherein each interdigitated section pair further comprises a shield configured to shield the respective magnetic sensing element from stray magnetic fields.

14. A differential magnetic field sensor, the sensor comprising:

a target configured for coupling to a first rotatable shaft having a first axis of rotation;

first and second magnetic field directors positioned adjacent the target and configured to affect magnetic flux from the target, wherein the first and second magnetic field directors are configured for coupling as a unit to a second rotatable shaft having a second axis of rotation aligned with the first axis of rotation;

first and second magnetic field concentrators configured to concentrate the magnetic flux from the target, wherein each magnetic field concentrator has first and second offset sections that are offset from one another in a direction transverse to the first axis of rotation, wherein the first and second offset sections of the first magnetic field concentrator are at different positions respectively in a direction parallel to the first axis of rotation, and wherein the first and second offset portions of the second magnetic field concentrator are at different positions respectively in a direction parallel to the first axis of rotation;

first and second interdigitated section pairs, each including an offset section of the first magnetic field concentrator configured with an offset portion of the second magnetic field concentrator in a respective orientation, and wherein the second interdigitated section pair has a reversed orientation relative to that of the first interdigitated section pair; and

a magnetic field sensor having first and second magnetic field sensing elements, each configured to measure magnetic flux and to produce an output signal indicative of measured changes in magnetic flux due to relative angular motion between the target and the first and second magnetic field directors;

wherein each of the first and second interdigitated section pairs is configured to receive a respective magnetic field sensing element.

15. The sensor of claim 14 , wherein the target comprises a multipole magnet assembly having a plurality of magnetic pole pairs.

16. The sensor of claim 15 , wherein the multipole magnet assembly includes a plurality of magnetic domains disposed in a cylindrical configuration, each having an opposite polarity with respect to an adjacent magnetic domain.

17. The sensor of claim 15 , wherein the multipole magnet assembly comprises a ring magnet.

18. The sensor of claim 15 , wherein the multipole magnet assembly is coupled to the first rotatable shaft, and wherein the first and second magnetic field directors are coupled as a unit to the second rotatable shaft, wherein the first rotatable shaft is coupled to the second rotatable shaft by a torsion bar, and wherein the differential magnetic field sensor is configured to measure torque applied to the first or second rotatable shafts.

19. The sensor of claim 18 , wherein the first and second rotatable shafts comprise a steering column.

20. The sensor of claim 15 , wherein the first and second magnetic field directors each include a plurality of teeth.

21. The sensor of claim 20 , wherein the multipole magnet assembly is configured as a toroidal body, wherein the first and second magnetic field directors are each disposed around a circumference of the toroidal body, and wherein the teeth of the first magnetic field director are spaced apart from and interdigitated with the teeth of the second magnetic field director.

22. The sensor of claim 14 , further comprising a sum unit configured to receive an output signal from each magnetic field sensing element and to subtract one magnetic field element output signal from the other, wherein the sum unit is configured to produce an output signal indicative of an angle of the target relative to the first and second magnetic field directors, and wherein effects of stray magnetic fields on the first and second magnetic field sensing elements are mitigated.

23. The sensor of claim 22 , wherein the output signal of the sum unit is indicative of a linear response to an angle of the multipole magnet assembly relative to the first and second magnetic field directors.

24. The sensor of claim 14 , wherein the first and second magnetic field sensors are coupled to a housing that is stationary relative to the first and second rotatable shafts.

25. The sensor of claim 24 , wherein the first and second magnetic field concentrators are coupled to the housing.

26. The sensor of claim 14 , wherein the magnetic field sensing elements comprise Hall effect elements.

27. The sensor of claim 14 , wherein the magnetic field sensing elements comprise magnetoresistance elements.

28. The sensor of claim 14 , wherein each interdigitated section pair further comprises a shield configured to shield the respective magnetic sensing element from stray magnetic fields.

Assignments (2)
PATENT SECURITY AGREEMENT Recorded Jun 22, 2023
From: ALLEGRO MICROSYSTEMS, LLC
To: MORGAN STANLEY SENIOR FUNDING, INC., AS THE COLLATERAL AGENT
Reel/Frame 064068/0459 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 21, 2022
From: LATHAM, ALEXANDER
To: ALLEGRO MICROSYSTEMS, LLC
Reel/Frame 059323/0728 →
Continuity (1)
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