IP Library Granted Patent US 12712453
Granted Patent B2
US 12712453 · App. 18/674,836 · Granted Aug 18, 2026

Switching converter controller with adaptive slope compensation

Inventors: Narayanan Seetharaman (Freising, DE); Puneet Sareen (Freising, DE)
Assignee: TEXAS INSTRUMENTS INCORPORATED
H02M3/158H02M1/0009
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Quick Facts
Patent No.
US 12712453
App. No.
18/674,836
Granted
Aug 18, 2026
Kind
B2
Abstract

A system includes: a power stage having a first terminal, a second terminal, a third terminal, and a fourth terminal; and a controller having a first terminal, a second terminal, a third terminal, a fourth terminal, and a fifth terminal. The first terminal of the controller is coupled to the fourth terminal of the power stage. The second terminal of the controller is coupled to the third terminal of the power stage. The third terminal of the controller is coupled to the first terminal of the power stage. The fourth terminal of the controller is coupled to the second terminal of the controller. The controller includes an adaptive slope compensation circuit configured to: obtain input parameters; adjust a scaling factor responsive to the input parameters; adapt a slope compensation current responsive to the scaling factor; and output a slope compensation signal responsive to the adapted slope compensation current.

Claims (54)

1 . A system comprising:

a power stage having a first terminal, a second terminal, a third terminal, and a fourth terminal; and

a controller having a first terminal, a second terminal, a third terminal, a fourth terminal, and a fifth terminal, the first terminal of the controller coupled to the fourth terminal of the power stage, the second terminal of the controller coupled to the third terminal of the power stage, the third terminal of the controller coupled to the first terminal of the power stage, the fourth terminal of the controller coupled to the second terminal of the controller, the controller including an adaptive slope compensation circuit configured to:

obtain input parameters;

adjust a scaling factor responsive to the input parameters;

adapt a slope compensation current responsive to the scaling factor; and

output a slope compensation signal responsive to the adapted slope compensation current.

2 . The system of claim 1 , wherein the power stage is a boost converter, and the input parameters include an input voltage (VIN), an output voltage (VOUT), a current ripple metric (I_RIPPLE), and a switching frequency (FSW), and a slope compensation capacitance (C_SC).

3 . The system of claim 2 , wherein the adaptive slope compensation circuit is configured to adjust the scaling factor is a function of (VOUT/VIN)*FSW*I_RIPPLE*C_SC.

4 . The system of claim 1 , wherein the power stage is a buck converter, and the input parameters include an input voltage (VIN), an output voltage (VOUT), a current ripple metric (I_RIPPLE), and a switching frequency (FSW), and a slope compensation capacitance (C_SC).

5 . The system of claim 4 , wherein the adaptive slope compensation circuit is configured to adjust the scaling factor based as a function of (VIN/VOUT)*FSW*I_RIPPLE*C_SC.

6 . The system of claim 1 , wherein the adaptive slope compensation circuit has a first terminal, a second terminal, a third terminal, a fourth terminal, and a fifth terminal, the first terminal of the adaptive slope compensation circuit adapted to receive a first input parameter, the second terminal of the adaptive slope compensation circuit adapted to receive a second input parameters, the third terminal of the adaptive slope compensation circuit adapted to receive a third input parameter, the fourth terminal of the adaptive slope compensation circuit adapted to receive a fourth input parameter.

7 . The system of claim 6 , wherein the adaptive slope compensation circuit includes adjustable current source circuitry having a first terminal, a second terminal, a third terminal, a fourth terminal, and a fifth terminal, the first terminal of the adjustable current source circuitry coupled to the first terminal of the adaptive slope compensation circuit, the second terminal of the adjustable current source circuitry coupled to the second terminal of the adaptive slope compensation circuit, the third terminal of the adjustable current source circuitry coupled to the third terminal of the adaptive slope compensation circuit, the fourth terminal of the adjustable current source circuitry coupled to the fourth terminal of the adaptive slope compensation circuit.

8 . The system of claim 7 , wherein the adaptive slope compensation circuit includes:

a capacitor having a first terminal and second terminal; and

a switch having a first terminal, a second terminal, and a control terminal, the first terminal of the capacitor coupled to the fifth terminal of the adjustable current source circuitry and to the first terminal of the switch, the second terminal of the switch coupled to the fifth terminal of the adaptive slope compensation circuit.

9 . The system of claim 8 , wherein the adaptive slope compensation circuit includes 4-quadrant multipliers.

10 . A switching converter controller comprising:

current sense circuitry having a first terminal and a second terminal;

adaptive slope compensation circuitry having a first terminal and a second terminal, the second terminal of the adaptive slope compensation circuitry coupled to the second terminal of the current sense circuitry, and the adaptive slope compensation circuitry including a multiplier;

a comparator having a first terminal, a second terminal, and a third terminal, the first terminal of the comparator coupled to second terminal of the current sense circuitry and to the second terminal of the adaptive slope compensation circuitry the adaptive slope compensation circuitry; and

mode control logic having a first terminal and a second terminal, the first terminal of the mode control logic coupled to the third terminal of the comparator.

11 . The switching converter controller of claim 10 , wherein the adaptive slope compensation circuitry includes a first voltage-to-current converter having a first terminal and a second terminal, a second voltage-to-current converter having a first terminal and a second terminal, the multiplier has a first terminal, a second terminal, and a third terminal, the second terminal of the first voltage-to-current converter coupled to the first terminal of the multiplier, and the second terminal of the second voltage-to-current converter coupled to the second terminal of the multiplier.

12 . The switching converter controller of claim 11 , wherein the multiplier is a first multiplier, the adaptive slope compensation circuitry includes a second multiplier having a first terminal, a second terminal, and third terminal, the first terminal of the second multiplier coupled to the third terminal of the first multiplier.

13 . The switching converter controller of claim 12 , wherein the adaptive slope compensation circuitry includes a third multiplier having a first terminal, a second terminal, and third terminal, the first terminal of the third multiplier coupled to the third terminal of the second multiplier.

14 . The switching converter controller of claim 13 , wherein the first voltage-to-current converter is configured to receive an input voltage to a power stage at the first terminal of the first voltage-to-current converter, the second voltage-to-current converter is configured to receive an output voltage from a power stage at the first terminal of the second voltage-to-current converter.

15 . The switching converter controller of claim 14 , wherein the second multiplier is configured to receive a current ripple metric at the second terminal of the second multiplier, and the third multiplier is configured to receive a switching frequency at the second terminal of the third multiplier.

16 . A switching converter controller comprising:

current sense circuitry;

adaptive slope compensation circuitry coupled to the current sense circuitry; and

a comparator coupled to the current sense circuitry and the adaptive slope compensation circuitry, the adaptive slope compensation circuitry including an adjustable current source circuitry, a capacitor, and a switch, and the adaptive slope compensation circuitry configured to:

obtain input parameters and a switch control signal;

use the adjustable current source circuitry to adapt a slope compensation current responsive to the input parameters;

control the switch to adjust a charge on the capacitor responsive to the adapted slope compensation current and the switch control signal; and

output a slope compensation signal based on the charge on the capacitor.

17 . The switching converter controller of claim 16 , wherein the adjustable current source circuitry is configured to:

convert an input voltage to a power stage to a first current;

convert and output voltage from a power stage to a second current; and

adapt the slope compensation current responsive to the first current and the second current.

18 . The switch converter controller of claim 17 , wherein the adjustable current source circuitry is configured to:

determine a ratio of the second current relative to the first current;

multiply the ratio by a current ripple metric to obtain a first multiplication result;

multiply the first multiplication result by a switching frequency to obtain a second multiplication result; and

adapt the slope compensation current responsive to the second multiplication result.

19 . The switch converter controller of claim 17 , wherein the adjustable current source is configured to:

determine a ratio of the second current relative to the first current;

multiply the ratio by a current ripple metric to obtain a first multiplication result;

multiply the first multiplication result by a switching frequency to obtain a second multiplication result; and

adapt the slope compensation current responsive to the second multiplication result.

20 . The switch converter controller of claim 17 , further comprising mode control logic, wherein the switch converter controller is configured to:

combine the adapted slope compensation current with a current sense signal from the current sense circuit to obtain a compensated current sense signal;

provide the compensated current sense signal to the comparator to obtain a comparison result;

provide the comparison result to the mode control logic; and

adjust switch control signals for a power stage responsive to the comparison result.