IP Library › Granted Patent US 8,981,763
Granted Patent B2
US 8,981,763 · App. 12/887,835 · Granted Mar 17, 2015

Di/dt current sensing

Inventor: Jens Ejury (Fremont, CA)
Assignee: Infineon Technologies AG
G01R15/181G01R19/0092
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 8,981,763
App. No.
12/887,835
Granted
Mar 17, 2015
Kind
B2
Abstract

A circuit includes a power circuit and a current sensing circuit. The power circuit has a main current loop. The current sensing circuit is spaced apart from and electrically decoupled from the power circuit. The current sensing circuit is operable to generate a voltage proportional to an electromagnetic field generated responsive to a current change in the main current loop of the power circuit and generate a current information signal based on the voltage. The current information signal describes the current in the main current loop.

Claims (44)

1. A circuit, comprising:

a power circuit having a main current loop;

a current sensing circuit spaced apart from and electrically decoupled from the power circuit, the current sensing circuit operable to generate a voltage proportional to an electromagnetic field generated responsive to a current change in the main current loop of the power circuit and generate a current information signal based on the voltage, the current information signal describing the current in the main current loop; and

a controller operable to control a current dependent operation of the power circuit based on the current information signal.

2. The circuit of claim 1 , wherein the current sensing circuit comprises:

a conductive loop spaced apart from the power circuit and disposed over at least a portion of the main current loop, the conductive loop electrically decoupled from the power circuit and operable to generate the voltage proportional to the electromagnetic field;

a rectifier coupled to the conductive loop and operable to rectify the voltage generated by the conductive loop; and

a capacitor coupled to the rectifier and operable to accumulate charge responsive to the rectified voltage, wherein a voltage across the capacitor is related to the current in the main current loop.

3. The circuit of claim 2 , wherein the rectifier comprises a plurality of silicon rectifier diodes coupled together to form a bridge rectifier, each of the plurality of silicon rectifier diodes having a negative forward voltage temperature coefficient.

4. The circuit of claim 2 , wherein the current sensing circuit comprises a switch device coupled to the capacitor and operable to periodically reset the capacitor responsive to a reset signal.

5. The circuit of claim 4 , wherein the switch device is operable to permit the capacitor to integrate the rectified voltage over a plurality of sampling periods prior to resetting the capacitor.

6. The circuit of claim 2 , wherein the current sensing circuit comprises an analysis circuit operable to compare the voltage across the capacitor to a plurality of thresholds and generate the current information signal based on which of the plurality of thresholds the voltage exceeds.

7. The circuit of claim 6 , wherein the analysis circuit comprises at least one of an analog-to-digital converter, an amplifier and a trigger circuit.

8. The circuit of claim 6 , wherein the analysis circuit is operable to analyze the voltage across the capacitor over a plurality of sampling periods and smooth the current information signal over the plurality of sampling periods.

9. A method of operating a circuit including a power circuit with a main current loop and a current sensing circuit spaced apart from and electrically decoupled from the power circuit, the method comprising:

generating an electromagnetic field by the power circuit responsive to a current change in the main current loop of the power circuit;

generating a voltage by the current sensing circuit that is proportional to the electromagnetic field;

generating a current information signal by the current sensing circuit based on the voltage, the current information signal describing the current in the main current loop; and

controlling a current dependent operation of the power circuit based on the current information signal.

10. The method of claim 9 , comprising:

generating the voltage to the electromagnetic field by a conductive loop of the current sensing circuit that is spaced apart from the power circuit, disposed over at least a portion of the main current loop, and electromagnetically coupled to at least a portion of the power circuit;

rectifying the voltage generated by the conductive loop; and

accumulating charge in a capacitor responsive to the rectified voltage, wherein a voltage across the capacitor is a function of the change in current in the main current loop.

11. The method of claim 10 , comprising periodically resetting the capacitor responsive to a reset signal.

12. The method of claim 11 , comprising permitting the capacitor to integrate the rectified voltage over a plurality of sampling periods prior to resetting the capacitor.

13. The method of claim 10 , comprising:

comparing the voltage across the capacitor to a plurality of thresholds; and

generating the current information signal based on which of the plurality of thresholds the voltage exceeds.

14. A circuit, comprising:

a power circuit having a main current loop; and

a current sensing circuit spaced apart from and electrically decoupled from the power circuit, the current sensing circuit operable to generate a voltage proportional to an electromagnetic field generated responsive to a current change in the main current loop of the power circuit and generate a current information signal based on the voltage, the current information signal describing the current in the main current loop, the current sensing circuit comprising:

a conductive loop spaced apart from the power circuit and disposed over at least a portion of the main current loop, the conductive loop electrically decoupled from the power circuit and operable to generate the voltage proportional to the electromagnetic field;

a rectifier coupled to the conductive loop and operable to rectify the voltage generated by the conductive loop;

a capacitor coupled to the rectifier and operable to accumulate charge responsive to the rectified voltage, wherein a voltage across the capacitor is related to the current in the main current loop; and

a switch device coupled to the capacitor and operable to periodically reset the capacitor responsive to a reset signal and permit the capacitor to integrate the rectified voltage over a plurality of sampling periods prior to resetting the capacitor.

15. A circuit, comprising:

a power circuit having a main current loop; and

a current sensing circuit spaced apart from and electrically decoupled from the power circuit, the current sensing circuit operable to generate a voltage proportional to an electromagnetic field generated responsive to a current change in the main current loop of the power circuit and generate a current information signal based on the voltage, the current information signal describing the current in the main current loop, the current sensing circuit comprising:

a conductive loop spaced apart from the power circuit and disposed over at least a portion of the main current loop, the conductive loop electrically decoupled from the power circuit and operable to generate the voltage proportional to the electromagnetic field;

a rectifier coupled to the conductive loop and operable to rectify the voltage generated by the conductive loop;

a capacitor coupled to the rectifier and operable to accumulate charge responsive to the rectified voltage, wherein a voltage across the capacitor is related to the current in the main current loop; and

an analysis circuit operable to compare the voltage across the capacitor to a plurality of thresholds and generate the current information signal based on which of the plurality of thresholds the voltage exceeds.

16. The circuit of claim 15 , wherein the analysis circuit comprises at least one of an analog-to-digital converter, an amplifier and a trigger circuit.

17. The circuit of claim 15 , wherein the analysis circuit is operable to analyze the voltage across the capacitor over a plurality of sampling periods and smooth the current information signal over the plurality of sampling periods.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 14, 2011
From: INFINEON TECHNOLOGIES NORTH AMERICA CORP.
To: INFINEON TECHNOLOGIES AG
Reel/Frame 026901/0395 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 22, 2010
From: EJURY, JENS
To: INFINEON TECHNOLOGIES NORTH AMERICA CORP.
Reel/Frame 025029/0080 →
Continuity (1)
Related Publication 20120068691A1 · Mar 22, 2012