IP Library Granted Patent US 9,800,158
Granted Patent B2
US 9,800,158 · App. 13/754,791 · Granted Oct 24, 2017

Current-parking switching regulator downstream controller

Inventor: William J. Dally (Los Altos Hills, CA)
Assignee: NVIDIA Corporation
H02M3/1582H02M3/156H02M3/155H02M3/158H02M3/1584
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Quick Facts
Patent No.
US 9,800,158
App. No.
13/754,791
Granted
Oct 24, 2017
Kind
B2
Abstract

A system and method are provided for regulating a voltage level at a load. A current source generates a current and a voltage control mechanism provides a portion of the current to regulate the voltage level at the load. When the voltage level at the load is greater than a maximum voltage level, the current source is decoupled from the load and the current source is coupled to a current sink to reduce the voltage level at the load. An electric power conversion comprises the current source and the voltage control mechanism. A downstream controller is configured to control the voltage control mechanism to decouple the current source from the load and couple the current source to a current sink to reduce the voltage level at the load when the voltage level at the load is greater than a maximum voltage level.

Claims (36)

1. A method, comprising:

configuring a current source that is coupled to an electric power source to generate a current;

configuring a voltage control mechanism to provide a portion of the current to maintain a voltage level at a load within a predetermined range bounded by a minimum voltage level and a maximum voltage level, the voltage control mechanism comprising:

a first switching mechanism coupled between the current source and a current sink that is enabled and disabled by a first signal; and

a second switching mechanism coupled, at a drain of the first switching mechanism, between the current source and the load and that is enabled and disabled by a second signal, wherein the first switching mechanism and the second switching mechanism are switched at a first frequency that is higher than a second frequency while switching mechanisms within the current source are switched at the second frequency;

in response to determining that the voltage level at the load is less than the minimum voltage level, decoupling the current source from the current sink by disabling the first switching mechanism; and

waiting for the drain to reach a first voltage level while the first switching mechanism is disabled and the second switching mechanism is disabled before coupling the current source to the load by enabling the second switching mechanism to increase the voltage level at the load.

2. The method of claim 1 , further comprising:

determining that the voltage level at the load is greater than the maximum voltage level; and

decoupling the current source from the load and coupling the current source to the current sink to reduce the voltage level at the load.

3. The method of claim 1 , further comprising, prior to configuring the current source to generate the current, coupling the current source to the load and decoupling the current source from the current sink.

4. The method of claim 1 , wherein the current is greater than an average current that is needed to regulate the voltage level at the load.

5. The method of claim 1 , wherein the current source comprises an inductor coupled between the voltage control mechanism and a current control mechanism.

6. An electric power conversion device, comprising:

a current source that is coupled to an electric power source and configured to generate a current;

a voltage control mechanism that is coupled between the current source and a load, the voltage control mechanism comprising:

a first switching mechanism coupled between the current source and a current sink that is enabled and disabled by a first signal; and

a second switching mechanism coupled, at a drain of the first switching mechanism, between the current source and the load and that is enabled and disabled by a second signal, wherein the first switching mechanism and the second switching mechanism are switched at a first frequency that is higher than a second frequency while switching mechanisms within the current source are switched at the second frequency; and

a downstream controller that is coupled to the voltage control mechanism and is configured to:

control the voltage control mechanism to provide a portion of the current to maintain a voltage level at a load within a predetermined range bounded by a minimum voltage level and a maximum voltage level;

decouple the current source from the current sink by disabling the first switching mechanism in response to determining that the voltage level at the load is less than the minimum voltage level;

wait for the drain to reach a first voltage level while the first switching mechanism is disabled and the second switching mechanism is disabled before coupling the current source to the load by enabling the second switching mechanism to increase the voltage level at the load.

7. The electric power conversion device of claim 6 , wherein the downstream controller is further configured to decouple the current source from the load and couple the current source to the current sink to reduce the voltage level at the load when the voltage level at the load is greater than the maximum voltage level.

8. The electric power conversion device of claim 6 , wherein an auxiliary supply voltage is provided to the downstream controller before the electric power source provides a supply voltage to the current source.

9. The electric power conversion device of claim 6 , further comprising:

a third switching mechanism that is coupled between the current source and a second load; and

a second downstream controller that is coupled to the third switching mechanism and is configured to control the third switching mechanism to provide a second portion of the current to regulate a voltage level at the second load.

10. The method of claim 1 , further comprising:

configuring a second voltage control mechanism to provide a second portion of the current to regulate a voltage level at a second load, the second voltage control mechanism comprising a third switching mechanism coupled between the current source and the second load and that is enabled and disabled by a third signal; and

generating, by a second downstream controller, the third signal.

11. The method of claim 1 , wherein the downstream controller and the voltage control mechanism are fabricated as part of a die and the current source is positioned outside of a package that encloses the die.

12. The electric power conversion device of claim 6 , wherein the downstream controller and the voltage control mechanism are fabricated as part of a die and the current source is positioned outside of a package that encloses the die.

13. The method of claim 1 , wherein the first voltage level is the voltage level at the load.

14. The electric power conversion device of claim 6 , wherein the first voltage level is the voltage level at the load.

15. The method of claim 1 , wherein the first switching mechanism and the second switching mechanism are constructed as lower-level voltage switching devices and the switching mechanisms within the current source are constructed as higher-level voltage switching devices.

16. The electric power conversion device of claim 6 , wherein the first switching mechanism and the second switching mechanism are constructed as lower-level voltage switching devices and the switching mechanisms within the current source are constructed as higher-level voltage switching devices.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 22, 2013
From: DALLY, WILLIAM J.
To: NVIDIA CORPORATION
Reel/Frame 031456/0722 →
Continuity (1)
Related Publication 20140210434A1 · Jul 31, 2014