IP Library Granted Patent US 6,946,828
Granted Patent B1
US 6,946,828 · App. 10/442,618 · Granted Sep 20, 2005

Bi-directional current measurement circuit that uses a transconductance amplifier to generate a copy current

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Quick Facts
Patent No.
US 6,946,828
App. No.
10/442,618
Granted
Sep 20, 2005
Kind
B1
Abstract

A current measurement circuit that measures current passing through two loads. The circuit includes a differential output transconductance amplifier. One current output terminal pf the amplifier receives the current from the first load with the first voltage input terminal coupled to that current output terminal. The second current output terminal provides a current to the second load with the second voltage input terminal coupled to the second current output terminal with the current provided at the second output terminal being approximately equal to the current received at the first current output terminal. The transconductance amplifier provides a copy current on the third current output terminal this is approximately equal to at least one of the other output currents. That copy current is then directly measured, rather than the actual current passing through the loads.

Claims (70)

1. A current measurement circuit comprising a transconductance amplifier that comprises the following:

a first current output terminal configured to receive a current from a first load when a first load is coupled to the transconductance amplifier;

a first voltage input terminal;

a second current output terminal configured to provide a current to a second load when a second load is coupled to the transconductance amplifier;

a second voltage input terminal; and

a third current output terminal, wherein the transconductance amplifier is configured to provide or receive a current on the third current output terminal that is approximately equal or proportional in magnitude to the current received on the first current output terminal or provided on the second current output terminal.

2. A current measurement circuit in accordance with claim 1 , further comprising the following:

the first load, wherein the first voltage input terminal is coupled to the first current output terminal.

3. A current measurement circuit in accordance with claim 2 , further comprising the following:

the second load, wherein the second voltage input terminal is coupled to the second current output terminal.

4. A current measurement circuit in accordance with claim 1 , further comprising the following:

the second load, wherein the second voltage input terminal is coupled to the second current output terminal.

5. A current measurement circuit in accordance with claim 1 , further comprising the following:

a circuit coupled to the third current output terminal and configured to measure the current on the third output terminal.

6. A current measurement circuit in accordance with claim 1 , wherein the transconductance amplifier is configured to provide the current on the third current output terminal that is approximately equal or proportional in magnitude to the current received on the first current output terminal.

7. A current measurement circuit in accordance with claim 6 , wherein the transconductance amplifier is configured to provide the current on the third current output terminal that is approximately equal or proportional in magnitude to the current provided on the second current output terminal.

8. A current measurement circuit in accordance with claim 1 , wherein the transconductance amplifier is configured to provide the current on the third current output terminal that is approximately equal or proportional in magnitude to the current provided on the second current output terminal.

9. A current measurement circuit in accordance with claim 1 , wherein the transconductance amplifier is configured to receive the current from the third current output terminal that is approximately equal or proportional in magnitude to the current received on the first current output terminal.

10. A current measurement circuit in accordance with claim 9 , wherein the transconductance amplifier is configured to receive the current from the third current output terminal that is approximately equal or proportional in magnitude to the current provided on the second current output terminal.

11. A current measurement circuit in accordance with claim 1 , wherein the transconductance amplifier is configured to receive the current from the third current output terminal that is approximately equal or proportional in magnitude to the current provided on the second current output terminal.

12. A current measurement circuit in accordance with claim 1 , wherein the transconductance amplifier comprises the following:

a differential voltage to current converter circuit having a first voltage input terminal that is coupled to the first voltage input terminal of the transconductance amplifier, having a second voltage input terminal that is coupled to the second voltage input terminal of the transconductance amplifier, having a first current output terminal that is configured to draw a first output current, and a second current output terminal that is configured to draw a second output current, wherein the sum of the first and second currents is equal to a bias current;

a first sourcing current mirror having a current input terminal, and first, second and third current output terminals, wherein the current provided at the current input terminal is provided to the first current output terminal of the differential voltage to current converter circuit, the first sourcing current mirror configured to generate a current on the first, second, and third current output terminals that is approximately proportional to the current drawn from the current input terminal of the first sourcing current mirror;

a second sourcing current mirror having a current input terminal, and first, second, third and fourth current output terminals, wherein the current provided at the current input terminal of the second sourcing current mirror is provided to the second current output terminal of the differential voltage to current converter circuit, the second sourcing current mirror configured to generate a current on the first, second, third and fourth current output terminals that is approximately proportional to the current drawn from the current input terminal of the first sourcing current mirror;

a first sinking current mirror having a current input terminal, and first and second current output terminal, wherein the current input terminal of the first sinking current mirror is coupled to the first current output terminal of the second sourcing current mirror, the first current output terminal of the first sinking current mirror is coupled to the second current output terminal of the first sourcing current mirror, the second current output terminal of the first sinking current mirror is coupled to the third current output terminal of the first sourcing current mirror, the first sinking current mirror configured to draw a current from the first and second current output terminals of the first sinking current mirror that is approximately proportional to the current drawn at the current input terminal of the first sinking current mirror;

a second sinking current mirror having a current input terminal, and first and second current output terminal, wherein the current input terminal of the second sinking current mirror is coupled to the first current output terminal of the first sourcing current mirror, the first current output terminal of the second sinking current mirror is coupled to the second current output terminal of the second sourcing current mirror, the second current output terminal of the second sinking current mirror is coupled to the third current output terminal of the second sourcing current mirror, the third current output terminal of the second sinking current mirror is coupled to the fourth current output terminal of the second sourcing current mirror, the second sinking current mirror configured to draw a current from the first, second and third current output terminals of the second sinking current mirror that is approximately proportional to the current drawn at the current input terminal of the first sinking current mirror;

a first bias circuit having an input terminal coupled to the second current output terminal of the first sourcing current mirror, and having an output terminal coupled to the first current output terminal of the differential voltage to current converter circuit, the first bias circuit configured to provide a current on the output terminal of the first bias circuit that is appropriately equal to half the bias current minus the current received at the input terminal of the first bias circuit; and

a second bias circuit having an input terminal coupled to the second current output terminal of the second sourcing current mirror, and having an output terminal coupled to the second current output terminal of the differential voltage to current converter circuit, the second bias circuit configured to provide a current on the output terminal of the second bias circuit that is appropriately equal to half the bias current minus the current received at the input terminal of the second bias circuit;

wherein, the fourth current output terminal of the second sourcing current mirror is coupled to the third current output terminal of the transconductance amplifier, the third current output terminal of the second sourcing current mirror is coupled to one of the first or second current output terminals of the transconductance amplifier, and wherein the third current output terminal of the first sourcing current mirror is coupled to the other of the first or second current output terminals of the transconductance amplifier.

13. A current measurement circuit in accordance with claim 12 , wherein the third current output terminal of the second sourcing current mirror is coupled to the first current output terminal of the transconductance amplifier, and wherein the third current output terminal of the first sourcing current mirror is coupled to the second current output terminal of the transconductance amplifier.

14. A current measurement circuit in accordance with claim 12 , wherein the third current output terminal of the second sourcing current mirror is coupled to the second current output terminal of the transconductance amplifier, and wherein the third current output terminal of the first sourcing current mirror is coupled to the first current output terminal of the transconductance amplifier.

15. A current measurement circuit in accordance with claim 1 , wherein the transconductance amplifier comprises the following:

a differential voltage to current converter circuit having a first voltage input terminal that is coupled to the first voltage input terminal of the transconductance amplifier, having a second voltage input terminal that is coupled to the second voltage input terminal of the transconductance amplifier, having a first current output terminal that is configured to draw a first output current, and a second current output terminal that is configured to draw a second output current, wherein the sum of the first and second currents is equal to a bias current;

a first sourcing current mirror having a current input terminal, and first, second and third current output terminals, wherein the current provided at the current input terminal is provided to the first current output terminal of the differential voltage to current converter circuit, the first sourcing current mirror configured to generate a current on the first, second, and third current output terminals that is approximately equal to the current drawn from the current input terminal of the first sourcing current mirror;

a second sourcing current mirror having a current input terminal, and first, second, third and fourth current output terminals, wherein the current provided at the current input terminal of the second sourcing current mirror is provided to the second current output terminal of the differential voltage to current converter circuit, the second sourcing current mirror configured to generate a current on the first, second, third and fourth current output terminals that is approximately equal to the current drawn from the current input terminal of the first sourcing current mirror;

a first sinking current mirror having a current input terminal, and first and second current output terminal, wherein the current input terminal of the first sinking current mirror is coupled to the first current output terminal of the second sourcing current mirror, the first current output terminal of the first sinking current mirror is coupled to the second current output terminal of the first sourcing current mirror, the second current output terminal of the first sinking current mirror is coupled to the third current output terminal of the first sourcing current mirror, the first sinking current mirror configured to draw a current from the first and second current output terminals of the first sinking current mirror that is approximately equal to the current drawn at the current input terminal of the first sinking current mirror;

a second sinking current mirror having a current input terminal, and first and second current output terminal, wherein the current input terminal of the second sinking current mirror is coupled to the first current output terminal of the first sourcing current mirror, the first current output terminal of the second sinking current mirror is coupled to the second current output terminal of the second sourcing current mirror, the second current output terminal of the second sinking current mirror is coupled to the third current output terminal of the second sourcing current mirror, the third current output terminal of the second sinking current mirror is coupled to the fourth current output terminal of the second sourcing current mirror, the second sinking current mirror configured to draw a current from the first, second and third current output terminals of the second sinking current mirror that is approximately equal to the current drawn at the current input terminal of the first sinking current mirror;

a first bias circuit having an input terminal coupled to the second current output terminal of the first sourcing current mirror, and having an output terminal coupled to the first current output terminal of the differential voltage to current converter circuit, the first bias circuit configured to provide a current on the output terminal of the first bias circuit that is appropriately equal to half the bias current minus the current received at the input terminal of the first bias circuit; and

a second bias circuit having an input terminal coupled to the second current output terminal of the second sourcing current mirror, and having an output terminal coupled to the second current output terminal of the differential voltage to current converter circuit, the second bias circuit configured to provide a current on the output terminal of the second bias circuit that is appropriately equal to half the bias current minus the current received at the input terminal of the second bias circuit;

wherein, the fourth current output terminal of the second sourcing current mirror is coupled to the third current output terminal of the transconductance amplifier, the third current output terminal of the second sourcing current mirror is coupled to one of the first or second current output terminals of the transconductance amplifier, and wherein the third current output terminal of the first sourcing current mirror is coupled to the other of the first or second current output terminals of the transconductance amplifier.

16. A transconductance amplifier comprising the following:

a first voltage input terminal;

a second voltage input terminal;

a first current input terminal;

a second current input terminal;

a differential voltage to current converter circuit having a first voltage input terminal that is coupled to the first voltage input terminal of the transconductance amplifier, having a second voltage input terminal that is coupled to the second voltage input terminal of the transconductance amplifier, having a first current output terminal that is configured to draw a first output current, and a second current output terminal that is configured to draw a second output current, wherein the sum of the first and second currents is equal to a bias current;

a first sourcing current mirror having a current input terminal, and first, second and third current output terminals, wherein the current provided at the current input terminal is provided to the first current output terminal of the differential voltage to current converter circuit, the first sourcing current mirror configured to generate a current on the first, second, and third current output terminals that is approximately proportional to the current drawn from the current input terminal of the first sourcing current mirror;

a second sourcing current mirror having a current input terminal, and first, second, third and fourth current output terminals, wherein the current provided at the current input terminal of the second sourcing current mirror is provided to the second current output terminal of the differential voltage to current converter circuit, the second sourcing current mirror configured to generate a current on the first, second, third and fourth current output terminals that is approximately proportional to the current drawn from the current input terminal of the first sourcing current mirror;

a first sinking current mirror having a current input terminal, and first and second current output terminal, wherein the current input terminal of the first sinking current mirror is coupled to the first current output terminal of the second sourcing current mirror, the first current output terminal of the first sinking current mirror is coupled to the second current output terminal of the first sourcing current mirror, the second current output terminal of the first sinking current mirror is coupled to the third current output terminal of the first sourcing current mirror, the first sinking current mirror configured to draw a current from the first and second current output terminals of the first sinking current mirror that is approximately proportional to the current drawn at the current input terminal of the first sinking current mirror;

a second sinking current mirror having a current input terminal, and first and second current output terminal, wherein the current input terminal of the second sinking current mirror is coupled to the first current output terminal of the first sourcing current mirror, the first current output terminal of the second sinking current mirror is coupled to the second current output terminal of the second sourcing current mirror, the second current output terminal of the second sinking current mirror is coupled to the third current output terminal of the second sourcing current mirror, the third current output terminal of the second sinking current mirror is coupled to the fourth current output terminal of the second sourcing current mirror, the second sinking current mirror configured to draw a current from the first, second and third current output terminals of the second sinking current mirror that is approximately proportional to the current drawn at the current input terminal of the first sinking current mirror;

a first bias circuit having an input terminal coupled to the second current output terminal of the first sourcing current mirror, and having an output terminal coupled to the first current output terminal of the differential voltage to current converter circuit, the first bias circuit configured to provide a current on the output terminal of the first bias circuit that is appropriately equal to half the bias current minus the current received at the input terminal of the first bias circuit; and

a second bias circuit having an input terminal coupled to the second current output terminal of the second sourcing current mirror, and having an output terminal coupled to the second current output terminal of the differential voltage to current converter circuit, the second bias circuit configured to provide a current on the output terminal of the second bias circuit that is appropriately equal to half the bias current minus the current received at the input terminal of the second bias circuit;

wherein, the fourth current output terminal of the second sourcing current mirror is coupled to the third current output terminal of the transconductance amplifier, the third current output terminal of the second sourcing current mirror is coupled to one of the first or second current output terminals of the transconductance amplifier, and wherein the third current output terminal of the first sourcing current mirror is coupled to the other of the first or second current output terminals of the transconductance amplifier.

17. A current measurement circuit in accordance with claim 16 , wherein the third current output terminal of the second sourcing current mirror is coupled to the first current output terminal of the transconductance amplifier, and wherein the third current output terminal of the first sourcing current mirror is coupled to the second current output terminal of the transconductance amplifier.

18. A current measurement circuit in accordance with claim 16 , wherein the third current output terminal of the second sourcing current mirror is coupled to the second current output terminal of the transconductance amplifier, and wherein the third current output terminal of the first sourcing current mirror is coupled to the first current output terminal of the transconductance amplifier.

19. A transconductance amplifier comprising the following:

a first voltage input terminal;

a second voltage input terminal;

a first current input terminal;

a second current input terminal;

a differential voltage to current converter circuit having a first voltage input terminal that is coupled to the first voltage input terminal of the transconductance amplifier, having a second voltage input terminal that is coupled to the second voltage input terminal of the transconductance amplifier, having a first current output terminal that is configured to draw a first output current, and a second current output terminal that is configured to draw a second output current, wherein the sum of the first and second currents is equal to a bias current;

a first sourcing current mirror having a current input terminal, and first, second and third current output terminals, wherein the current provided at the current input terminal is provided to the first current output terminal of the differential voltage to current converter circuit, the first sourcing current mirror configured to generate a current on the first, second, and third current output terminals that is approximately equal to the current drawn from the current input terminal of the first sourcing current mirror;

a second sourcing current mirror having a current input terminal, and first, second, third and fourth current output terminals, wherein the current provided at the current input terminal of the second sourcing current mirror is provided to the second current output terminal of the differential voltage to current converter circuit, the second sourcing current mirror configured to generate a current on the first, second, third and fourth current output terminals that is approximately equal to the current drawn from the current input terminal of the first sourcing current mirror;

a first sinking current mirror having a current input terminal, and first and second current output terminal, wherein the current input terminal of the first sinking current mirror is coupled to the first current output terminal of the second sourcing current mirror, the first current output terminal of the first sinking current mirror is coupled to the second current output terminal of the first sourcing current mirror, the second current output terminal of the first sinking current mirror is coupled to the third current output terminal of the first sourcing current mirror, the first sinking current mirror configured to draw a current from the first and second current output terminals of the first sinking current mirror that is approximately equal to the current drawn at the current input terminal of the first sinking current mirror;

a second sinking current mirror having a current input terminal, and first and second current output terminal, wherein the current input terminal of the second sinking current mirror is coupled to the first current output terminal of the first sourcing current mirror, the first current output terminal of the second sinking current mirror is coupled to the second current output terminal of the second sourcing current mirror, the second current output terminal of the second sinking current mirror is coupled to the third current output terminal of the second sourcing current mirror, the third current output terminal of the second sinking current mirror is coupled to the fourth current output terminal of the second sourcing current mirror, the second sinking current mirror configured to draw a current from the first, second and third current output terminals of the second sinking current mirror that is approximately equal to the current drawn at the current input terminal of the first sinking current mirror;

a first bias circuit having an input terminal coupled to the second current output terminal of the first sourcing current mirror, and having an output terminal coupled to the first current output terminal of the differential voltage to current converter circuit, the first bias circuit configured to provide a current on the output terminal of the first bias circuit that is appropriately equal to half the bias current minus the current received at the input terminal of the first bias circuit; and

a second bias circuit having an input terminal coupled to the second current output terminal of the second sourcing current mirror, and having an output terminal coupled to the second current output terminal of the differential voltage to current converter circuit, the second bias circuit configured to provide a current on the output terminal of the second bias circuit that is appropriately equal to half the bias current minus the current received at the input terminal of the second bias circuit;

wherein, the fourth current output terminal of the second sourcing current mirror is coupled to the third current output terminal of the transconductance amplifier, the third current output terminal of the second sourcing current mirror is coupled to one of the first or second current output terminals of the transconductance amplifier, and wherein the third current output terminal of the first sourcing current mirror is coupled to the other of the first or second current output terminals of the transconductance amplifier.

20. A current measurement circuit in accordance with claim 19 , wherein the third current output terminal of the second sourcing current mirror is coupled to the first current output terminal of the transconductance amplifier, and wherein the third current output terminal of the first sourcing current mirror is coupled to the second current output terminal of the transconductance amplifier.

21. A current measurement circuit in accordance with claim 19 , wherein the third current output terminal of the second sourcing current mirror is coupled to the second current output terminal of the transconductance amplifier, and wherein the third current output terminal of the first sourcing current mirror is coupled to the first current output terminal of the transconductance amplifier.

Assignments (12)
RELEASE OF SECURITY INTEREST IN PATENTS RECORDED AT REEL 038620, FRAME 0087 Recorded Jun 22, 2023
From: DEUTSCHE BANK AG NEW YORK BRANCH, AS COLLATERAL AGENT
To: SEMICONDUCTOR COMPONENTS INDUSTRIES, LLC; FAIRCHILD SEMICONDUCTOR CORPORATION
Reel/Frame 064070/0001 →
CORRECTIVE ASSIGNMENT TO CORRECT THE INCORRECT PATENT NUMBER 5859768 AND TO RECITE COLLATERAL AGENT ROLE OF RECEIVING PARTY IN THE SECURITY INTEREST PREVIOUSLY RECORDED ON REEL 038620 FRAME 0087. ASSIGNOR(S) HEREBY CONFIRMS THE SECURITY INTEREST. Recorded Aug 25, 2016
From: SEMICONDUCTOR COMPONENTS INDUSTRIES, LLC
To: DEUTSCHE BANK AG NEW YORK BRANCH, AS COLLATERAL AGENT
Reel/Frame 039853/0001 →
RELEASE OF SECURITY INTEREST Recorded May 6, 2016
From: JPMORGAN CHASE BANK, N.A., AS ADMINISTRATIVE AGENT AND COLLATERAL AGENT
To: SEMICONDUCTOR COMPONENTS INDUSTRIES, LLC
Reel/Frame 038631/0345 →
RELEASE OF SECURITY INTEREST Recorded May 6, 2016
From: JPMORGAN CHASE BANK, N.A. (ON ITS BEHALF AND ON BEHALF OF ITS PREDECESSOR IN INTEREST, CHASE MANHATTAN BANK)
To: SEMICONDUCTOR COMPONENTS INDUSTRIES, LLC
Reel/Frame 038632/0074 →
SECURITY INTEREST Recorded Apr 15, 2016
From: SEMICONDUCTOR COMPONENTS INDUSTRIES, LLC
To: DEUTSCHE BANK AG NEW YORK BRANCH
Reel/Frame 038620/0087 →
RELEASE OF SECURITY INTEREST Recorded Apr 5, 2016
From: CREDIT SUISSE AG, CAYMAN ISLANDS BRANCH (F/K/A CREDIT SUISSE FIRST BOSTON)
To: AMI SEMICONDUCTOR, INC.; AMI SPINCO, INC.
Reel/Frame 038355/0131 →
PURCHASE AGREEMENT DATED 28 FEBRUARY 2009 Recorded Sep 25, 2009
From: AMI SEMICONDUCTOR, INC.
To: SEMICONDUCTOR COMPONENTS INDUSTRIES, LLC
Reel/Frame 023282/0465 →
SECURITY AGREEMENT Recorded Jun 23, 2008
From: SEMICONDUCTOR COMPONENTS INDUSTRIES, LLC; AMIS HOLDINGS, INC.; AMI SEMICONDUCTOR, INC.; AMIS FOREIGN HOLDINGS INC.; AMI ACQUISITION LLC
To: JPMORGAN CHASE BANK, N.A.
Reel/Frame 021138/0070 →
PATENT RELEASE Recorded Mar 21, 2008
From: CREDIT SUISSE
To: AMI SEMICONDUCTOR, INC.
Reel/Frame 020679/0505 →
SECURITY INTEREST Recorded Jun 1, 2005
From: AMI SEMICONDUCTOR, INC.
To: CREDIT SUISSE (F/K/A CREDIT SUISEE FIRST BOSTON), AS COLLATERAL AGENT
Reel/Frame 016290/0206 →
SECURITY INTEREST Recorded Oct 15, 2003
From: AMI SEMICONDUCTOR, INC.
To: CREDIT SUISSE FIRST BOSTON, AS COLLATERAL AGENT
Reel/Frame 014546/0868 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 20, 2003
From: LAYTON, KENT D.
To: AMI SEMICONDUCTOR, INC.
Reel/Frame 014104/0146 →