IP Library Granted Patent US 8,581,687
Granted Patent B2
US 8,581,687 · App. 13/127,838 · Granted Nov 12, 2013

Four-terminal resistor with four resistors and adjustable temperature coefficient of resistance

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Quick Facts
Patent No.
US 8,581,687
App. No.
13/127,838
Granted
Nov 12, 2013
Kind
B2
Abstract

Thermally stable four-terminal resistor (current sensor) is characterized by having the capacity to adjust both resistance and temperature coefficient of resistance (TCR), during manufacturing process. The four-terminal resistor includes 3 or 4 elementary resistors R 1 -R 3 forming a closed loop. Resistor R 1 is the principal low-ohmic value resistor. The terminals of resistor R 1 serve as “Force” terminals of the four-terminal resistor. Resistors R 2 , R 3 form a voltage divider intended to minimize the TCR of the four-terminal resistor and connected in parallel to resistor R 1 . The terminals of resistor R 3 serve as “Sense” terminals of the four-terminal resistor. Resistor R 2 may be split into two resistors: R 2 a , R 2 b to simplify the implementation of four-terminal resistor. Elementary resistors R 1 , R 2 must have the same sign of TCR. Target resistance and TCR minimization in four-terminal resistor are reached by adjustment of resistance of the elementary resistors.

Claims (32)

1. A four-terminal resistor, comprising:

a low-ohmic value principal resistor having a resistive element disposed between two force terminals, the force terminals being configured to carry an electrical current that is forced through the principal resistor;

a sensing resistor having a resistive element disposed between two sense terminals, the sense terminals being configured for measurement of a sense voltage measured over the sensing resistor;

a first dividing resistor having a resistive element disposed between a first force terminal and a first sense terminal; and

a second dividing resistor having a resistive element disposed between a second force terminal and a second sense terminal, wherein the principal, sensing and dividing resistors are configured in a closed loop;

wherein an absolute value of the TCR of the resistive materials from which the dividing resistors are made is higher than an absolute value of the TCR of the resistive material from which the sensing resistor is made;

wherein the sense voltage is proportional to the electrical current forced through the principal resistor.

2. The four-terminal resistor of claim 1 , wherein the first and second dividing resistors are combined into a single dividing resistor, wherein the single dividing resistor, electrically connects the first terminal of the principal resistor with the first terminal of the sensing resistor, and the second terminal of the principal resistor is directly connected to the second terminal of the sensing resistor, the single dividing resistor and the sensing resistor form a voltage divider.

3. The four-terminal resistor of claim 1 , wherein the TCR of the four-terminal resistor is adjusted changing the resistance of at least one of the principal, sensing or dividing resistors.

4. The four-terminal resistor of claim 3 , having a TCR absolute value that is lower than the absolute values of the TCR of the resistive materials of the principal, sensing and dividing resistors.

5. The four-terminal resistor of claim 1 , wherein the resistive materials from which the principal, sensing and dividing resistors are made have the same sign of TCR.

6. A method of making a four-terminal resistor, the method comprising:

providing a low-ohmic value principal resistor having a resistive element disposed between two force terminals, the force terminals being configured to carry an electrical current that is forced through the principal resistor;

providing a sensing resistor having a resistive element disposed between two sense terminals, the sense terminals being configured for measurement of a sense voltage measured over the sensing resistor;

providing a first dividing resistor having a resistive element disposed between a first force terminal and a first sense terminal; and

providing a second dividing resistor having a resistive element disposed between a second force terminal and a second sense terminal, wherein the principal, sensing and dividing resistors are configured in a closed loop;

wherein an absolute value of the TCR of the resistive materials from which the dividing resistors are made is higher than an absolute value of the TCR of the resistive material from which the sensing resistor is made; and

wherein the sense voltage is proportional to the electrical current forced across the force terminals.

7. The method of 6 , wherein the first and second dividing resistors are combined into a single dividing resistor, wherein the single dividing resistor electrically connects the first terminal of the principal resistor with the first terminal of the sensing resistor, and the second terminal of the principal resistor is directly connected to the second terminal of the sensing resistor, the single dividing resistor and the sensing resistor form a voltage divider.

8. The method of 6 , wherein the TCR of the four-terminal resistor is adjusted changing the resistance of at least one of the principal, sensing or dividing resistors.

9. The method of 6 , wherein the four-terminal resistor has a TCR absolute value that is lower than the absolute values of the TCR of the resistive materials of the principal, sensing and dividing resistors.

10. The method of 6 , wherein the resistive materials from which the principal, sensing and dividing resistors are made have the same sign of TCR.

11. A four-terminal resistor, comprising:

a low-ohmic value principal resistor having a resistive element disposed between two force terminals, the force terminals being configured to carry an electrical current that is forced through the principal resistor;

a sensing resistor having a resistive element disposed between two sense terminals, the sense terminals being configured for measurement of a sense voltage measured over the sensing resistor; and

a single dividing resistor, wherein the single dividing resistor electrically connects a first force terminal of the principal resistor with a first terminal of the sensing resistor, and a second terminal of the principal resistor is directly connected to a second terminal of the sensing resistor, the single dividing resistor and the sensing resistor forming a voltage divider;

wherein the sense voltage is proportional to the electrical current forced through the principal resistor.

12. A method of making a four-terminal resistor, the method comprising:

providing a low-ohmic value principal resistor having a resistive element disposed between two force terminals, the force terminals being configured to carry an electrical current that is forced through the principal resistor;

providing a sensing resistor having a resistive element disposed between two sense terminals, the sense terminals being configured for measurement of a sense voltage measured over the sensing resistor; and

providing a single dividing resistor, wherein the single dividing resistor electrically connects a first terminal of the principal resistor with a first terminal of the sensing resistor, and a second terminal of the principal resistor is directly connected to a second terminal of the sensing resistor, the single dividing resistor and the sensing resistor forming a voltage divider;

wherein the sense voltage is proportional to the electrical current forced across the force terminals.

Assignments (6)
RELEASE OF SECURITY INTEREST Recorded Jul 17, 2019
From: JPMORGAN CHASE BANK, N.A., AS ADMINISTRATIVE AGENT
To: VISHAY DALE ELECTRONICS, INC.; DALE ELECTRONICS, INC.; VISHAY DALE ELECTRONICS, LLC; VISHAY-DALE
Reel/Frame 049772/0898 →
RELEASE OF SECURITY INTEREST Recorded Jul 17, 2019
From: JPMORGAN CHASE BANK, N.A., AS ADMINISTRATIVE AGENT
To: VISHAY DALE ELECTRONICS, INC.; VISHAY INTERTECHNOLOGY, INC.; SILICONIX INCORPORATED
Reel/Frame 049785/0771 →
SECURITY INTEREST Recorded Jun 12, 2019
From: VISHAY DALE ELECTRONICS, INC.; DALE ELECTRONICS, INC.; VISHAY DALE ELECTRONICS, LLC; VISHAY-DALE, INC.; VISHAY INTERTECHNOLOGY, INC.; SILICONIX INCORPORATED; VISHAY-SILICONIX, INC.; VISHAY-SILICONIX; VISHAY SPRAGUE, INC.; VISHAY EFI, INC.; SPRAGUE ELECTRIC COMPANY; VISHAY GENERAL SEMICONDUCTOR, INC.
To: JPMORGAN CHASE BANK, N.A., AS ADMINISTRATIVE AGENT
Reel/Frame 049440/0876 →
SECURITY AGREEMENT Recorded Dec 10, 2015
From: VISHAY DALE ELECTRONICS, LLC
To: JPMORGAN CHASE BANK, N.A., AS ADMINISTRATIVE AGENT
Reel/Frame 037261/0616 →
SECURITY AGREEMENT Recorded Sep 5, 2013
From: VISHAY INTERTECHNOLOGY, INC.; VISHAY DALE ELECTRONICS, INC.; SILICONIX INCORPORATED
To: JPMORGAN CHASE BANK, N.A., AS ADMINISTRATIVE AGENT
Reel/Frame 031170/0001 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 4, 2013
From: BELMAN, MICHAEL
To: VISHAY DALE ELECTRONICS, INC.
Reel/Frame 030150/0003 →