IP Library › Granted Patent US 12,591,025
Granted Patent B2
US 12,591,025 · App. 18/624,540 · Granted Mar 31, 2026

Passive frequency compensation with coil pairs

Inventors: Nathan Shewmon (Braunschweig, DE); Christian Kasparek (Heidelberg, DE)
Assignee: Allegro MicroSystems, LLC
G01R33/0094G01R33/0052G01R33/07G01R33/09
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Quick Facts
Patent No.
US 12,591,025
App. No.
18/624,540
Granted
Mar 31, 2026
Kind
B2
Abstract

Systems, structures, circuits, and methods provide coil pairs that are used with magnetic-field type current sensors. Coil pairs, with a smaller coil nested within a larger coil, can be employed with or for magnetic field/flux sensors or sensing elements to compensate for the degradation in sensitivity as the frequency of the sensed current increases. A coil pair can be integrated into or on a substrate having a field-based current sensor. In use, frequency-dependent current is induced in a larger coil that is then driven through a smaller coil which concentrates a magnetic field on the sensitive element. The larger coil is configured to provide an increasing current as the frequency of the ambient magnetic field increases and provide the increasing current to the second coil to compensate for a frequency-dependent coupling factor between the magnetic field sensor and the ambient magnetic field.

Claims (34)

1 . A frequency-compensating current sensor comprising:

a first coil disposed on a first substrate and defining a first footprint on the first substrate, wherein the first coil is configured for inductive coupling with an ambient magnetic field;

a second coil disposed on a second substrate and defining a second footprint on the second substrate, wherein the second coil is disposed within the first footprint, wherein the second footprint is smaller than the first footprint, and wherein the second coil is connected to the first coil; and

a magnetic field sensor disposed within the second footprint and including a plurality of magnetic field sensing elements connected to an integrated circuit (IC), wherein the magnetic field sensor is configured to detect the ambient magnetic field and a compensating magnetic field produced by the second coil, and produce an output signal indicative of a current producing the ambient magnetic field;

wherein the first coil is configured to provide an increasing current as the frequency of the ambient magnetic field increases and provide the increasing current to the second coil to compensate for a frequency-dependent coupling factor between the magnetic field sensor and the ambient magnetic field.

2 . The sensor of claim 1 , wherein the first substrate comprises a printed circuit board (PCB).

3 . The sensor of claim 1 , wherein the first substrate comprises the second substrate.

4 . The sensor of claim 1 , wherein the second substrate comprises a semiconductor die.

5 . The sensor of claim 4 , wherein the IC is disposed on the semiconductor die.

6 . The sensor of claim 1 , wherein the plurality of magnetic field sensing elements are configured in a bridge.

7 . The sensor of claim 6 , wherein the plurality of magnetic field sensing elements comprises a plurality of Hall effect elements.

8 . The sensor of claim 6 , wherein the plurality of magnetic field sensing elements comprises a plurality of magnetoresistance (MR) elements.

9 . The sensor of claim 8 , wherein the plurality of magnetoresistance (MR) elements comprises a plurality of tunneling magnetoresistance (TMR) elements.

10 . The sensor of claim 8 , wherein the plurality of magnetoresistance (MR) elements comprises a plurality of giant magnetoresistance (GMR) elements.

11 . The sensor of claim 8 , wherein the plurality of magnetoresistance (MR) elements comprises a plurality of anisotropic magnetoresistance (AMR) elements.

12 . The sensor of claim 1 , wherein the first coil comprises a plurality of coil loops and respective switches connected to the plurality of coil loops, wherein each switch is configured to selectively short the respective coil loop for adjusting a number of active coil loops configured to conduct a current in the first coil.

13 . The sensor of claim 1 , wherein the second coil comprises a plurality of coil loops and respective switches connected to the plurality of coil loops, wherein each switch is configured to selectively short the respective coil loop for adjusting a number of active coil loops configured to conduct a current in the second coil.

14 . A method of making a frequency-compensating current sensor, the method comprising:

providing a first coil disposed on a first substrate and defining a first footprint on the first substrate, wherein the first coil is configured for inductive coupling with an ambient magnetic field;

providing a second coil disposed on a second substrate and defining a second footprint on the second substrate, wherein the second coil is disposed within the first footprint, wherein the second footprint is smaller than the first footprint, and wherein the second coil is connected to the first coil; and

providing a magnetic field sensor disposed within the second footprint and including a plurality of magnetic field sensing elements connected to an integrated circuit (IC), wherein the magnetic field sensor is configured to detect the ambient magnetic field and a compensating magnetic field produced by the second coil, and produce an output signal indicative of a current producing the ambient magnetic field;

wherein the first coil is configured to provide an increasing current as the frequency of the ambient magnetic field increases and provide the increasing current to the second coil to compensate for a frequency-dependent coupling factor between the magnetic field sensor and the ambient magnetic field.

15 . The method of claim 14 , wherein the first substrate comprises a printed circuit board (PCB).

16 . The method of claim 14 , wherein the first substrate comprises the second substrate.

17 . The method of claim 14 , wherein the second substrate comprises a semiconductor die.

18 . The method of claim 17 , wherein the IC is disposed on the semiconductor die.

19 . The method of claim 14 , wherein the plurality of magnetic field sensing elements are configured in a bridge.

20 . The method of claim 19 , wherein the plurality of magnetic field sensing elements comprises a plurality of Hall effect elements.

21 . The method of claim 19 , wherein the plurality of magnetic field sensing elements comprises a plurality of magnetoresistance (MR) elements.

22 . The method of claim 21 , wherein the plurality of magnetoresistance (MR) elements comprises a plurality of tunneling magnetoresistance (TMR) elements.

23 . The method of claim 21 , wherein the plurality of magnetoresistance (MR) elements comprises a plurality of giant magnetoresistance (GMR) elements.

24 . The method of claim 21 , wherein the plurality of magnetoresistance (MR) elements comprises a plurality of anisotropic magnetoresistance (AMR) elements.

25 . The method of claim 14 , wherein the first coil comprises a plurality of coil loops and respective switches, wherein each switch is configured to selectively short the respective coil loop for adjusting a number of active coil loops configured to conduct a current in the first coil.

26 . The method of claim 14 , wherein the second coil comprises a plurality of coil loops and respective switches, wherein each switch is configured to selectively short the respective coil loop for adjusting a number of active coil loops configured to conduct a current in the second coil.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 3, 2024
From: SHEWMON, NATHAN; KASPAREK, CHRISTIAN; ALLEGRO MICROSYSTEMS GERMANY GMBH; ALLEGRO MICROSYSTEMS EUROPE LIMITED
To: ALLEGRO MICROSYSTEMS, LLC
Reel/Frame 066990/0181 →
Continuity (1)
Related Publication 20250306134A1 · Oct 2, 2025
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