IP Library Granted Patent US 9,755,428
Granted Patent B2
US 9,755,428 · App. 14/854,169 · Granted Sep 5, 2017

Current limiter circuit system

Inventors: Joseph Brandon Witcher (Blackburg, VA); Michael V. Bredemann (Albuquerque, NM)
Assignee: National Technology & Engineering Solutions of Sandia, LLC
H02H9/025G05F1/573H02H3/087H02H7/1222H02H7/1227H02H9/02
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Quick Facts
Patent No.
US 9,755,428
App. No.
14/854,169
Granted
Sep 5, 2017
Kind
B2
Abstract

An apparatus comprising a steady state sensing circuit, a switching circuit, and a detection circuit. The steady state sensing circuit is connected to a first, a second and a third node. The first node is connected to a first device, the second node is connected to a second device, and the steady state sensing circuit causes a scaled current to flow at the third node. The scaled current is proportional to a voltage difference between the first and second node. The switching circuit limits an amount of current that flows between the first and second device. The detection circuit is connected to the third node and the switching circuit. The detection circuit monitors the scaled current at the third node and controls the switching circuit to limit the amount of the current that flows between the first and second device when the scaled current is greater than a desired level.

Claims (46)

1. An apparatus comprising:

a steady state sensing circuit comprising a first current mirror having a first input, a second input, a first output, and a second output, wherein the first input is connected to a first node, and the second input is connected to a second node; and a second current mirror having a first input, a second input, a first output, and a second output, wherein the first input of the second current mirror is connected to the first output of the first current mirror, the second input of the second current mirror is connected to the second output of the first current mirror, and the second output of the second current mirror is connected to a third node;

wherein the first node is connected to a first device, the second node is connected to a second device, and the steady state sensing circuit causes a scaled current to flow at the third node and the scaled current is proportional to a voltage difference between the first node and the second node;

a switching circuit, wherein the switching circuit limits an amount of current that flows between the first device and the second device; and

a detection circuit connected to the third node and the switching circuit, wherein the detection circuit monitors the scaled current at the third node and controls the switching circuit to limit the amount of the current that flows between the first device and the second device when the scaled current that is being monitored is greater than a desired level.

2. The apparatus of claim 1 further comprising:

a transient sensing circuit connected to the detection circuit, wherein the transient sensing circuit limits the amount of the current that flows between the first device and the second device when the current is a transient current.

3. The apparatus of claim 2 , wherein the transient sensing circuit comprises:

an inductor connected to the first node and the second node.

4. The apparatus of claim 2 , wherein the transient sensing circuit comprises:

a voltage clamp connected to the first node, the second node, and the detection circuit, wherein the voltage clamp redirects some of the current that flows between the first device and the second device through the detection circuit and bypasses the steady state sensing circuit when a voltage difference between the first node and the second node induced by the transient current exceeds a voltage threshold.

5. The apparatus of claim 1 further comprising:

an enable circuit connected to the steady state sensing circuit, the detection circuit, and the switching circuit, wherein the enable circuit enables and disables the current that flows between the first device and the second device.

6. The apparatus of claim 5 , wherein the enable circuit comprises:

a transistor having a collector resistively connected to the switching circuit and a base resistively connected to an enable signal, wherein the enable signal causes the current to flow to the switching circuit that enables a flow of the current between the first device and the second device.

7. The apparatus of claim 1 , wherein the scaled current flows at the third node in a direction selected from one of out of the steady state sensing circuit and into the steady state sensing circuit.

8. The apparatus of claim 1 , wherein the first device is a power source and the second device is a load.

9. The apparatus of claim 1 , wherein the apparatus controls a flow of the current in a direction selected from at least one of from the first device to the second device or from the second device to the first device.

10. A current limiter circuit system comprising:

a steady state sensing circuit comprising:

a first current mirror having a first input, a second input, a first output, and a second output, wherein the first input is connected to a first node, and the second input is connected to a second node; and

a second current mirror having a first input, a second input, a first output, and a second output, wherein the first input of the second current mirror is connected to the first output of the first current mirror, the second input of the second current mirror is connected to the second output of the first current mirror, and the second output of the second current mirror is connected to a third node;

wherein the first node is connected to a power source, the second node is connected to a load, and a scaled current flows at the third node and the scaled current is proportional to a voltage difference between the first node and the second node;

a switching circuit, wherein the switching circuit limits an amount of current that flows between the power source and the load;

a detection circuit connected to an output of the steady state sensing circuit and the switching circuit, wherein the detection circuit monitors the scaled current at the third node and controls the switching circuit to limit the amount of the current that flows between the power source and the load when the scaled current that is being monitored is greater than a desired level;

a transient sensing circuit connected to the first node, the second node, and the detection circuit, wherein the transient sensing circuit limits the amount of the current that flows between the power source and the load when the current is a transient current that has a level that is greater than desired; and

an enable circuit connected to the steady state sensing circuit, the detection circuit, and the switching circuit, wherein the enable circuit enables and disables the current that flows between the power source and the load.

11. The current limiter circuit system of claim 10 , wherein the scaled current flows in a direction selected from one of into the third node and out of the third node.

12. The current limiter circuit system of claim 10 , wherein the transient sensing circuit comprises:

an inductor connected to the first node and the second node.

13. The current limiter circuit system of claim 10 , wherein the transient sensing circuit comprises:

a voltage clamp connected to the first node, the second node, and the detection circuit, wherein the voltage clamp redirects some of the current that flows between a first device and a second device through the detection circuit and bypasses the steady state sensing circuit when a voltage difference between the first node and the second node induced by the transient current exceeds a voltage threshold.

14. An apparatus comprising:

a steady state sensing circuit comprising a first current mirror having a first input, a second input, a first output, and a second output, wherein the first output is connected to a first node, and the second output is connected to a second node; and a second current mirror having a first input, a second input, a first output, and a second output, wherein the first output of the second current mirror is connected to the first output of the first current mirror, the second output of the second current mirror is connected to the second input of the first current mirror, and the second output of the second current mirror is connected to a third node;

wherein the first node is connected to a first device, the second node is connected to a second device, and the steady state sensing circuit causes a scaled current to flow at the third node and the scaled current is proportional to a voltage difference between the first node and the second node;

a switching circuit, wherein the switching circuit limits an amount of current that flows between the first device and the second device; and

a detection circuit connected to the third node and the switching circuit, wherein the detection circuit monitors the scaled current at the third node and controls the switching circuit to limit the amount of the current that flows between the first device and the second device when the scaled current that is being monitored is greater than a desired level.

15. A current limiter circuit system comprising:

a steady state sensing circuit comprising:

a first current mirror having a first input, a second input, a first output, and a second output, wherein the first output is connected to a first node and the second output is connected to a second node; and

a second current mirror having a first input, a second input, a first output, and a second output, wherein the first output of the second current mirror is connected to the first input of the first current mirror, the second output of the second current mirror is connected to the second input of the first current mirror, and the second output of the second current mirror is connected to a third node;

wherein the first node is connected to a power source, the second node is connected to a load, and a scaled current flows at the third node and the scaled current is proportional to a voltage difference between the first node and the second node;

a switching circuit, wherein the switching circuit limits an amount of current that flows between the power source and the load;

a detection circuit connected to an output of the steady state sensing circuit and the switching circuit, wherein the detection circuit monitors the scaled current at the third node and controls the switching circuit to limit the amount of the current that flows between the power source and the load when the scaled current that is being monitored is greater than a desired level;

a transient sensing circuit connected to the first node, the second node, and the detection circuit, wherein the transient sensing circuit limits the amount of the current that flows between the power source and the load when the current is a transient current that has a level that is greater than desired; and

an enable circuit connected to the steady state sensing circuit, the detection circuit, and the switching circuit, wherein the enable circuit enables and disables the current that flows between the power source and the load.

Assignments (3)
CHANGE OF NAME Recorded Jul 19, 2017
From: SANDIA CORPORATION
To: NATIONAL TECHNOLOGY & ENGINEERING SOLUTIONS OF SANDIA, LLC
Reel/Frame 043243/0737 →
CONFIRMATORY LICENSE Recorded Nov 5, 2015
From: SANDIA CORPORATION
To: U.S. DEPARTMENT OF ENERGY
Reel/Frame 036965/0463 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 27, 2015
From: WITCHER, JOSEPH BRANDON; BRENDEMANN, MICHAEL V.
To: SANDIA CORPORATION
Reel/Frame 036893/0781 →
Continuity (2)
Provisional Application 62112767 · Feb 6, 2015
Related Publication 20160233666A1 · Aug 11, 2016