IP Library › Granted Patent US 11,522,457
Granted Patent B2
US 11,522,457 · App. 17/149,168 · Granted Dec 6, 2022

Buck-boost converter and control method

Inventors: Bo Yang (Allen, TX); Xiaoyu Xi (Dallas, TX); David Meng (Los Altos, CA)
Assignee: M3 Technology Inc.
H02M3/1582H02M1/08H02M1/38H02M3/157H02M1/0009
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Quick Facts
Patent No.
US 11,522,457
App. No.
17/149,168
Granted
Dec 6, 2022
Kind
B2
Abstract

An apparatus includes a buck-boost converter comprising a buck portion and a boost portion connected in cascade, and a controller comprising a first timer and a second timer, wherein the first timer is configured to determine a turn-on time of a high-side switch of the buck portion, and wherein the first timer determines the turn-on time of the high-side switch of the buck portion based on a comparison between a first signal and a second signal, and wherein the first signal is proportional to an output voltage of the buck-boost converter and the second signal is generated based on a signal proportional to an input voltage of the buck-boost converter, and the second timer is configured to determine a turn-on time of a low-side switch of the boost portion.

Claims (55)

1. An apparatus comprising:

a buck-boost converter comprising a buck portion and a boost portion connected in cascade; and

a controller comprising a first timer and a second timer, wherein:

the first timer is configured to determine a turn-on time of a high-side switch of the buck portion, and wherein the first timer determines the turn-on time of the high-side switch of the buck portion based on a comparison between a first signal and a second signal, and wherein the first signal is proportional to an output voltage of the buck-boost converter and the second signal is generated based on a signal proportional to an input voltage of the buck-boost converter; and

the second timer is configured to determine a turn-on time of a low-side switch of the boost portion.

2. The apparatus of claim 1 , wherein:

the second timer determines the turn-on time of the low-side switch of the boost portion based on a comparison between a third signal and a fourth signal, and wherein the third signal is proportional to a difference between the output voltage of the buck-boost converter and the input voltage of the buck-boost converter, and the fourth signal is generated based on a signal proportional to the output voltage of the buck-boost converter.

3. The apparatus of claim 2 , wherein the second timer comprises:

a second current source having a current level proportional to the output voltage of the buck-boost converter; and

a second capacitor and a second switch connected in parallel, and wherein the second current source is configured to charge the second capacitor, and the second switch is configured to reset the second capacitor.

4. The apparatus of claim 3 , further comprising:

a second bias source connected in series with the second capacitor, wherein the fourth signal is equal to a difference between a voltage across the second capacitor and an output voltage of the second bias source.

5. The apparatus of claim 2 , wherein:

the third signal is a second threshold; and

the fourth signal is a second ramp.

6. The apparatus of claim 1 , wherein the first timer comprises:

a first current source having a current level proportional to the input voltage of the buck-boost converter; and

a first capacitor and a first switch connected in parallel, and wherein the first current source is configured to charge the first capacitor, and the first switch is configured to reset the first capacitor.

7. The apparatus of claim 6 , further comprising:

a first bias source connected in series with the first capacitor, wherein the second signal is equal to a difference between a voltage across the first capacitor and an output voltage of the first bias source.

8. The apparatus of claim 1 , wherein:

the first signal is a first threshold; and

the second signal is a first ramp.

9. The apparatus of claim 1 , further comprising:

a comparator having a first input configured to receive a current signal representing a current flowing through the buck-boost converter, and a second input configured to receive an error voltage signal generated by comparing the output voltage of the buck-boost converter with a predetermined reference.

10. The apparatus of claim 9 , wherein:

the current signal is generated by a dc resistance (DCR) current sensing device.

11. A method comprising:

generating a first ramp using a first current source having a current level proportional to an input voltage of a buck-boost converter, and a second ramp using a second current source having a current level proportional to an output voltage of the buck-boost converter;

generating a first threshold voltage proportional to the output voltage of the buck-boost converter, and a second threshold voltage proportional to a difference between the output voltage and the input voltage of the buck-boost converter;

terminating a gate drive signal of a first high-side switch of the buck-boost converter based upon comparing the first ramp with the first threshold voltage; and

terminating a gate drive signal of a second low-side switch of the buck-boost converter based upon comparing the second ramp with the second threshold voltage.

12. The method of claim 11 , the buck-boost converter comprises:

the first high-side switch and a first low-side switch connected in series between two input terminals of the buck-boost converter;

a second high-side switch and the second low-side switch connected in series between two output terminals of the buck-boost converter; and

an inductor connected between a common node of the first high-side switch and the first low-side switch, and a common node of the second high-side switch and the second low-side switch.

13. The method of claim 12 , further comprising:

comparing the first threshold voltage with a difference between the first ramp and a first predetermined bias voltage to generate a termination signal for turning off the first high-side switch of the buck-boost converter; and

comparing the second threshold voltage with a difference between the second ramp and a second predetermined bias voltage to generate a termination signal for turning off the second low-side switch of the buck-boost converter.

14. The method of claim 11 , further comprising:

determining an on-time of a first low-side switch and an on-time of a second high-side switch of the buck-boost converter based upon comparing a current signal representing a current flowing through the buck-boost converter and an output signal of an error amplifier.

15. The method of claim 14 , wherein:

a first input of the error amplifier is configured to receive a predetermined reference; and

a second input of the error amplifier is configured to detect a voltage signal proportional to the output voltage of the buck-boost converter.

16. An apparatus comprising:

a buck-boost converter comprising a first high-side switch and a first low-side switch connected in series between two input terminals of the buck-boost converter, a second high-side switch and a second low-side switch connected in series between two output terminals of the buck-boost converter, and an inductor connected between a common node of the first high-side switch and the first low-side switch, and a common node of the second high-side switch and the second low-side switch; and

a controller comprising a first timer and a second timer, wherein the first timer is configured to determine a turn-on time of the first high-side switch, and the second timer is configured to determine a turn-on time of the second low-side switch, and wherein the second timer determines the turn-on time of the second low-side switch based on a comparison between a first signal and a second signal, and wherein the first signal is proportional to a difference between an output voltage and an input voltage of the buck-boost converter, and the second signal is generated based on a signal proportional to the output voltage of the buck-boost converter.

17. The apparatus of claim 16 , wherein:

the first timer determines the turn-on time of the first high-side switch based on a comparison between a third signal and a fourth signal, and wherein the third signal is proportional to the output voltage of the buck-boost converter, and the second signal is generated based on a signal proportional to the input voltage of the buck-boost converter.

18. The apparatus of claim 16 , further comprising:

a comparator having a first input configured to receive a current signal representing a current flowing through the buck-boost converter, and a second input configured to receive an error voltage signal, wherein an output signal of the comparator determines a turn-on time of the first low-side switch and a turn-on time of the second high-side switch.

19. The apparatus of claim 18 , wherein:

the error voltage signal is generated by an error amplifier having a first input configured to receive a predetermined reference and a second input configured to detect a voltage signal proportional to the output voltage of the buck-boost converter.

20. The apparatus of claim 18 , wherein:

the current signal is proportional to a current flowing through the inductor of the buck-boost converter, and the current signal is generated by a dc resistance (DCR) current sensing device.

Continuity (2)
Continuation 16716681 · Dec 17, 2019
Related Publication 20210184577A1 · Jun 17, 2021