IP Library › Granted Patent US 11,552,546
Granted Patent B2
US 11,552,546 · App. 17/526,589 · Granted Jan 10, 2023

Multi-phase power supply dynamic response control circuit and control method

Inventor: Shun-Gen Sun (Shanghai, CN)
Assignee: SHANGHAI BRIGHT POWER SEMICONDUCTOR CO., LTD.
H02M1/0019H03K7/08
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Quick Facts
Patent No.
US 11,552,546
App. No.
17/526,589
Granted
Jan 10, 2023
Kind
B2
Abstract

The present invention discloses a multi-phase power supply dynamic response control circuit and a control method. When a rapid rise of the load is detected, an output PWM signal is temporarily adjusted to enter a second operation mode from a first operation mode to supplement energy to the load and prevent the output voltage from decreasing. The present invention requires little modification to the existing circuit, and adopts simple, explicit and efficient detection method, realizing rapid dynamic response by providing sufficient energy for the load when the load current is suddenly increased.

Claims (14)

1. A multi-phase controller for controlling a plurality of power processors connected in parallel to output a load current;

wherein the multi-phase controller is configured to generate a plurality of pulse width modulation (PWM) signals based on the load current;

wherein the PWM signals are used for controlling the plurality of power processors respectively to be conducted and jointly supply the load current;

wherein the multi-phase controller is configured to adjust the plurality of PWM signals to enter a second operation mode from a first operation mode, if a rapid rise in the load current is detected.

2. The multi-phase controller according to claim 1 , the multi-phase controller being configured to change a pulse width of at least one of the plurality of PWM signals according to a change in the load current under the second operation mode.

3. The multi-phase controller according to claim 1 , wherein the first operation mode is a constant on time (COT) mode and the second operation mode is a COT mode with an increased on time compared to the first operation mode.

4. The multi-phase controller according to claim 1 , the multi-phase controller being configured to adjust the plurality of PWM signals to reenter the first operation mode after a preset time period.

5. The multi-phase controller according to claim 1 , further comprising:

an output voltage comparison unit, configured to compare a real-time output voltage of the plurality of power processors with at least one threshold voltage to generate at least one voltage comparison signal;

wherein the multi-phase controller is further configured to determine whether a rapid rise in the load current occurs or not according to the voltage comparison signal.

6. The multi-phase controller according to claim 5 , wherein the output voltage comparison unit is further configured to compare the real-time output voltage with a plurality of threshold voltages, respectively, to generate a plurality of voltage comparison signals;

wherein the multi-phase controller is further configured to determine whether the rapid rise in the load current occurs or not according to all of the plurality of voltage comparison signals, and is configured to adjust the plurality of PWM signals according to a maximum change amount of the output voltage if the rapid rise in the load current occurs, wherein the maximum change amount of the output voltage is a difference between the output voltage when the load current is at steady state and a minimum threshold voltage to which the real-time output voltage decreases.

7. The multi-phase controller according to claim 1 , the multi-phase controller being configured to detect whether the rapid rise in the load current occurs by detecting a change amount of a first delay time and/or by detecting a change amount of a frequency of one of the PWM signals within a preset time period, wherein the first delay time is a time difference between a falling edge of the PWM signal at a current phase and a rising edge of the PWM signal at a next phase, and the change amount of frequency is a change amount of a number of the rising edges of the PWM signals at a same phase in the preset time period or a change amount of the number of the rising edges of the plurality of PWM signals at all phases within the preset time period.

8. The multi-phase controller according to claim 7 , the multi-phase controller being configured to compare the first delay time with a plurality of time thresholds, respectively, to adjust the plurality of PWM signals according to a maximum change amount of the first delay time, wherein the maximum change amount of the first delay time is the smallest time threshold value to which the first delay time decreases.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 22, 2021
From: SUN, SHUN-GEN
To: SHANGHAI BRIGHT POWER SEMICONDUCTOR CO., LTD.
Reel/Frame 058179/0816 →
Priority Claims (1)
CN 202010617864.3 · Jun 30, 2020 · national
Continuity (2)
Continuation 17356737 · Jun 24, 2021
Related Publication 20220077760A1 · Mar 10, 2022
Cited By (1)
US 12,651,969