IP Library Granted Patent US 10,432,085
Granted Patent B2
US 10,432,085 · App. 16/165,384 · Granted Oct 1, 2019

Digital control of switched boundary mode PFC power converter for constant crossover frequency

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Quick Facts
Patent No.
US 10,432,085
App. No.
16/165,384
Granted
Oct 1, 2019
Kind
B2
Abstract

A circuit arrangement for switched boundary mode power conversion, a corresponding signal processor and a method of switched boundary mode power conversion are provided. The circuit arrangement comprises an input for receiving an input voltage from a power supply, an output to provide an output voltage to a load, an energy storage device, a controllable switching device, and a signal processor. The signal processor is connected to the controllable switching device and being configured for zero-current switching of the switching device. The signal processor is further configured to determine an on-time period for the switching device in one or more switching cycles based on the output voltage and the output of a crossover frequency control module to provide an improved transient response characteristic of the circuit arrangement.

Claims (28)

1. A circuit arrangement for switched boundary mode power conversion, comprising at least:

an input for receiving an input voltage from a power supply;

an output to provide an output voltage to a load;

an energy storage device;

a controllable switching device; and

a signal processor, connected with the controllable switching device and being configured for zero-current switching of the switching device; wherein

the signal processor is further configured to determine an on-time period for the switching device in one or more switching cycles based on the output voltage and the output of a crossover frequency control module, which crossover frequency control module is configured to provide a constant open loop gain crossover frequency to improve a transient response characteristic of the circuit arrangement.

2. The circuit arrangement of claim 1 , wherein the crossover frequency control module is configured to provide the constant open loop gain crossover frequency substantially independent of changes of one or more of input voltage, switching frequency, and the load.

3. The circuit arrangement of claim 1 , wherein the input voltage is an AC voltage having a plurality of half-cycles and the crossover frequency control module is configured to determine a cycle peak voltage level of the input voltage in multiple half-cycles.

4. The circuit arrangement of claim 3 , wherein the crossover frequency control module calculates a voltage ratio of a predefined peak voltage reference to the cycle peak voltage level.

5. The circuit arrangement of claim 4 , wherein the crossover frequency control module sets the output of the crossover frequency control module corresponding to the voltage ratio.

6. The circuit arrangement of claim 4 , wherein the crossover frequency control module sets the output of the crossover frequency control module corresponding to the square of the voltage ratio.

7. The circuit arrangement of claim 3 , wherein the signal processor is configured to determine the on-time period for the switching device at a zero-crossing of the AC voltage.

8. The circuit arrangement of claim 1 , wherein the signal processor is configured to determine the on-time period for the switching device based on a comparison of the output voltage with a predefined reference output voltage and the output of the crossover frequency control module.

9. The circuit arrangement of claim 1 , wherein the signal processor is configured to determine the on-time period for the switching device based on a comparison of the output voltage with a reference output voltage, the result being multiplied with the output of the crossover frequency control module.

10. The circuit arrangement of claim 1 , wherein the signal processor during zero-current switching is configured to control the switching device at least at one zero-current point of the energy storage device.

11. The circuit arrangement of claim 10 , wherein the signal processor is configured to control the switching device from an off-state to an on-state at the at least one zero-current point.

12. The circuit arrangement of claim 1 , wherein the signal processor is configured to recurrently control the switching device at zero-current points.

13. The circuit arrangement of claim 1 , wherein the signal processor comprises a delay module, configured so that the at least one switching point is delayed for a predetermined delay time.

14. The circuit arrangement of claim 1 , wherein the signal processor comprises a PWM module for driving the switching device.

15. The circuit arrangement of claim 1 , wherein the signal processor further comprises a limiter, configured to provide maximum on-time information to the PWM module.

16. The circuit arrangement of claim 1 , wherein the signal processor is a digital signal processor comprising at least one analog-to-digital converter for converting at least one of a first or second voltage signal.

17. A signal processor for use in a circuit arrangement for switched boundary mode power conversion with at least a controllable switching device, said signal processor being connectable to the controllable switching device and being configured for zero-current switching of the switching device; wherein the signal processor is further configured to determine an on-time period for the switching device in one or more switching cycles based on the output voltage and the output of a crossover frequency control module, which crossover frequency control module is configured to provide a constant open loop gain crossover frequency to improve a transient response characteristic of the circuit arrangement.

18. A method of switched boundary mode power conversion with a circuit comprising an input for receiving an input voltage from a power supply; an output to provide an output voltage to a load; an energy storage device; and a controllable switching device; the method comprising

determining one or more zero-current points of the energy storage device;

determining one or more on-time periods based on the output voltage, wherein the one or more on-time periods are controlled for a constant open loop gain crossover frequency; and

controlling the switching device according to the determined one or more zero-current points and the determined one or more on-time periods.

19. A machine-readable medium including contents that are configured to cause a signal processor to conduct the method of claim 18 .

Assignments (13)
RELEASE OF SECURITY INTEREST Recorded Mar 14, 2022
From: WELLS FARGO BANK, NATIONAL ASSOCIATION, AS NOTES COLLATERAL AGENT
To: MICROCHIP TECHNOLOGY INCORPORATED; SILICON STORAGE TECHNOLOGY, INC.; ATMEL CORPORATION; MICROSEMI CORPORATION; MICROSEMI STORAGE SOLUTIONS, INC.
Reel/Frame 060894/0437 →
RELEASE OF SECURITY INTEREST Recorded Mar 11, 2022
From: WELLS FARGO BANK, NATIONAL ASSOCIATION, AS NOTES COLLATERAL AGENT
To: MICROCHIP TECHNOLOGY INCORPORATED; SILICON STORAGE TECHNOLOGY, INC.; ATMEL CORPORATION; MICROSEMI CORPORATION; MICROSEMI STORAGE SOLUTIONS, INC.
Reel/Frame 059363/0001 →
RELEASE OF SECURITY INTEREST Recorded Mar 10, 2022
From: WELLS FARGO BANK, NATIONAL ASSOCIATION, AS NOTES COLLATERAL AGENT
To: MICROCHIP TECHNOLOGY INCORPORATED; SILICON STORAGE TECHNOLOGY, INC.; ATMEL CORPORATION; MICROSEMI CORPORATION; MICROSEMI STORAGE SOLUTIONS, INC.
Reel/Frame 059863/0400 →
RELEASE OF SECURITY INTEREST Recorded Mar 9, 2022
From: WELLS FARGO BANK, NATIONAL ASSOCIATION, AS NOTES COLLATERAL AGENT
To: MICROCHIP TECHNOLOGY INCORPORATED; SILICON STORAGE TECHNOLOGY, INC.; ATMEL CORPORATION; MICROSEMI CORPORATION; MICROSEMI STORAGE SOLUTIONS, INC.
Reel/Frame 059358/0335 →
RELEASE OF SECURITY INTEREST Recorded Feb 28, 2022
From: JPMORGAN CHASE BANK, N.A., AS ADMINISTRATIVE AGENT
To: MICROCHIP TECHNOLOGY INCORPORATED; SILICON STORAGE TECHNOLOGY, INC.; ATMEL CORPORATION; MICROSEMI CORPORATION; MICROSEMI STORAGE SOLUTIONS, INC.
Reel/Frame 059263/0001 →
GRANT OF SECURITY INTEREST IN PATENT RIGHTS Recorded Nov 19, 2021
From: MICROCHIP TECHNOLOGY INCORPORATED; SILICON STORAGE TECHNOLOGY, INC.; ATMEL CORPORATION; MICROSEMI CORPORATION; MICROSEMI STORAGE SOLUTIONS, INC.
To: WELLS FARGO BANK, NATIONAL ASSOCIATION, AS NOTES COLLATERAL AGENT
Reel/Frame 058214/0625 →
SECURITY INTEREST Recorded Jun 4, 2021
From: MICROCHIP TECHNOLOGY INCORPORATED; SILICON STORAGE TECHNOLOGY, INC.; ATMEL CORPORATION; MICROSEMI CORPORATION; MICROSEMI STORAGE SOLUTIONS, INC.
To: WELLS FARGO BANK, NATIONAL ASSOCIATION, AS NOTES COLLATERAL AGENT
Reel/Frame 057935/0474 →
SECURITY INTEREST Recorded Dec 24, 2020
From: MICROCHIP TECHNOLOGY INCORPORATED; SILICON STORAGE TECHNOLOGY, INC.; ATMEL CORPORATION; MICROSEMI CORPORATION; MICROSEMI STORAGE SOLUTIONS, INC.
To: WELLS FARGO BANK, NATIONAL ASSOCIATION, AS COLLATERAL AGENT
Reel/Frame 055671/0612 →
SECURITY INTEREST Recorded Jun 5, 2020
From: MICROCHIP TECHNOLOGY INC.; SILICON STORAGE TECHNOLOGY, INC.; ATMEL CORPORATION; MICROSEMI CORPORATION; MICROSEMI STORAGE SOLUTIONS, INC.
To: JPMORGAN CHASE BANK, N.A., AS ADMINISTRATIVE AGENT
Reel/Frame 052856/0909 →
SECURITY INTEREST Recorded Jun 5, 2020
From: MICROCHIP TECHNOLOGY INC.; SILICON STORAGE TECHNOLOGY, INC.; ATMEL CORPORATION; MICROSEMI CORPORATION; MICROSEMI STORAGE SOLUTIONS, INC.
To: WELLS FARGO BANK, NATIONAL ASSOCIATION
Reel/Frame 053468/0705 →
RELEASE OF SECURITY INTEREST Recorded May 30, 2020
From: JPMORGAN CHASE BANK, N.A, AS ADMINISTRATIVE AGENT
To: MICROCHIP TECHNOLOGY INC.; SILICON STORAGE TECHNOLOGY, INC.; ATMEL CORPORATION; MICROSEMI CORPORATION; MICROSEMI STORAGE SOLUTIONS, INC.
Reel/Frame 053466/0011 →
SECURITY INTEREST Recorded Apr 24, 2020
From: MICROCHIP TECHNOLOGY INC.; SILICON STORAGE TECHNOLOGY, INC.; ATMEL CORPORATION; MICROSEMI CORPORATION; MICROSEMI STORAGE SOLUTIONS, INC.
To: JPMORGAN CHASE BANK, N.A., AS ADMINISTRATIVE AGENT
Reel/Frame 053311/0305 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 19, 2018
From: BHANDARKAR, SANTOSH MANJUNATH; DUMAIS, ALEX
To: MICROCHIP TECHNOLOGY INCORPORATED
Reel/Frame 047235/0716 →