IP Library Granted Patent US 9,588,149
Granted Patent B2
US 9,588,149 · App. 14/792,544 · Granted Mar 7, 2017

Method and apparatus for detecting and compensating measurement errors due to transformer saturation in a meter

Inventors: Frank J. Boudreau, Jr. (Otterbein, IN); Matt E. Kraus (Jamestown, IN)
Assignee: Landis+Gyr, Inc.
G01R15/183G01R15/18
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Quick Facts
Patent No.
US 9,588,149
App. No.
14/792,544
Granted
Mar 7, 2017
Kind
B2
Abstract

A current measurement circuit includes an integrator, first and second transformers, and a current measurement unit. The first transformer includes a first winding about a magnetic core. The magnetic core has an opening through which a current to be measured passes. The first winding is configured to generate a first current based on a first flux in the magnetic core. The second transformer includes second and third windings. The second winding is coupled to receive the first current from the first winding. The second winding has a terminal coupled to the third winding. The third winding is coupled to a first input of the integrator circuit. The output of the integrator circuit is operably coupled to provide an error current to the second transformer. The current measurement unit measures the current through the second winding of the second transformer.

Claims (41)

1. A current measurement circuit comprising:

an integrator circuit having a first input, and an output;

a first transformer including a first winding about a magnetic core, the magnetic core including an opening through which a conductor carrying measurement current passes, the first winding having a first terminal and a second terminal, the first winding configured to generate a first current based on a first flux in the magnetic core;

a second transformer including second and third windings, each of the second and third windings having a first terminal and a second terminal, the first terminal of the second winding coupled to receive the first current from the first terminal of the first winding, the second terminal of the second winding coupled to the second terminal of the third winding, the first terminal of the third winding coupled to the first input of the integrator circuit; and

a current measurement unit operably coupled to measure the current through the second winding of the second transformer;

wherein the output of the integrator circuit is operably coupled to provide an error current to the second transformer.

2. The current measurement circuit of claim 1 , further comprising an error current measurement unit operably coupled to the output of the integrator circuit and to the first terminal of the second winding of the second transformer, the error current measurement unit configured to generate a signal representative of the error current.

3. The current measurement circuit of claim 1 , wherein the integrator circuit includes an operational amplifier and a current buffer operably coupled to an output of the operational amplifier.

4. The current measurement circuit of claim 1 , wherein the second transformer includes a non-magnetic core.

5. The current measurement circuit of claim 4 , wherein the second winding and third winding are bifilar windings about the non-magnetic core.

6. The current measurement circuit of claim 5 , wherein the non-magnetic core extends around the conductor.

7. The current measurement circuit of claim 2 , further comprising a processing circuit operably coupled to the error current measurement unit, the processing circuit configured to:

determine whether the error current exceeds a first threshold; and

store an indication of a tamper event if the error current exceeds the first threshold for a period of time.

8. A circuit arrangement in a utility meter, comprising:

a voltage measurement circuit configured to generate a voltage measurement signal;

a current measurement circuit comprising an integrator circuit, a first transformer, and a second transformer, the integrator circuit having a first input and an output, the first transformer including a first winding about a magnetic core, the magnetic core including an opening through which a conductor carrying measurement current passes, the first winding having a first terminal and a second terminal, the first winding configured to generate a first current based on a first flux in the magnetic core, the second transformer including second and third windings, each of the second and third windings having a first terminal and a second terminal, the first terminal of the second winding coupled to receive the first current from the first terminal of the first winding, the second terminal of the second winding coupled to the second terminal of the third winding, the first terminal of the third winding coupled to the first input of the integrator circuit; and

a current measurement unit operably coupled to generate a current measurement signal by measuring the current through the second winding of the second transformer;

an analog-to-digital conversion (A/D) circuit operably coupled to receive the voltage measurement signal and the current measurement signal and generate digital voltage and current measurement signals therefrom;

a processing circuit configured to generate energy consumption information based at least in part on the digital voltage and current measurement signals.

9. The circuit arrangement of claim 8 , further comprising an error current measurement unit operably coupled to the output of the integrator circuit and to the first terminal of the second winding of the second transformer, the error current measurement unit configured to generate a signal representative of the error current.

10. The circuit arrangement of claim 9 , wherein the processing circuit operably coupled to receive information representative of the signal representative of the error current is further configured to:

determine whether the error current exceeds a first threshold based on the information; and

store an indication of an event in a memory if the error current exceeds the first threshold for a period of time.

11. The circuit arrangement of claim 10 , wherein the error current measurement unit includes a sense resistor coupled across differential inputs of an operational amplifier.

12. The circuit arrangement of claim 11 , wherein an output of the operational amplifier is operably coupled to the processing circuit.

13. The circuit arrangement of claim 8 , wherein the second transformer includes a non-magnetic core.

14. The circuit arrangement of claim 13 , wherein the second winding and third winding are bifilar windings about the non-magnetic core.

15. The circuit arrangement of claim 14 , wherein the non-magnetic core extends around the conductor.

16. A current measurement circuit comprising:

an integrator circuit having a first input and an output;

a first transformer including a first winding about a magnetic core, the magnetic core including an opening through which a conductor carrying measurement current passes, the first winding having a first terminal and a second terminal, the first winding configured to generate a first current based on a first flux in the magnetic core;

a second transformer having a non-magnetic core that extends around the conductor, and including second and third windings, each of the second and third windings having a first terminal and a second terminal, the first terminal of the second winding coupled to receive the first current from the first terminal of the first winding, the second terminal of the second winding coupled to the second terminal of the third winding, the first terminal of the third winding coupled to the first input of the integrator circuit; and

a current measurement unit operably coupled to measure the current through the second winding of the second transformer;

wherein the output of the integrator circuit is operably coupled to provide an error current to the second transformer.

17. The current measurement circuit of claim 16 , further comprising an error current measurement unit operably coupled to the output of the integrator circuit and to the first terminal of the second winding of the second transformer, the error current measurement unit configured to generate a signal representative of the error current.

18. The current measurement circuit of claim 17 , further comprising a processing circuit operably coupled to the error current measurement unit, the processing circuit configured to:

determine whether the error current exceeds a first threshold; and

store an indication of a tamper event if the error current exceeds the first threshold for a period of time.

19. The current measurement circuit of claim 16 , wherein the integrator circuit includes an operational amplifier and a current buffer operably coupled to an output of the operational amplifier.

20. The current measurement circuit of claim 1 , further comprising an error current measurement unit operably coupled to the output of the integrator circuit and to a first terminal of a fourth winding of the second transformer, the fourth winding having a second terminal coupled to the second terminal of the second winding of the second transformer, the error current measurement unit configured to generate a signal representative of the error current.

Assignments (3)
CHANGE OF NAME Recorded Oct 24, 2017
From: LANDIS+GYR INC.
To: LANDIS+GYR LLC
Reel/Frame 044281/0248 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 22, 2017
From: BOUDREAU, FRANK J, JR; KRAUS, MATT
To: LANDIS+GYR INC.
Reel/Frame 043667/0893 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 21, 2017
From: BOUDREAU, FRANK J, JR
To: LANDIS+GYR INC.
Reel/Frame 043655/0438 →
Continuity (2)
Provisional Application 62020393 · Jul 3, 2014
Related Publication 20160003873A1 · Jan 7, 2016