IP Library Granted Patent US 12689293
Granted Patent B2
US 12689293 · App. 18/364,175 · Granted Jul 21, 2026

Single inductor multiple output regulator

Inventor: Miroslav Hukel (Alling, DE)
Assignee: Renesas Design (UK) Limited
H02M3/158H02M1/0095H02M3/07
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 12689293
App. No.
18/364,175
Granted
Jul 21, 2026
Kind
B2
Abstract

A voltage regulator is described. The voltage regulator may comprise a first switch, an inductor, and a second switch coupled in series between the input port and a reference voltage port; at least one negative output rail coupled between a first intermediate node and a respective output port, where the first intermediate node is arranged between the first switch and the inductor; a capacitive element coupled between a second intermediate node and a third intermediate node, where the second intermediate node is arranged between the inductor and the second switch; a third switch coupled between the input port and the third intermediate node; at least one positive output rail coupled between the third intermediate node and a respective output port; a fourth switch coupled between the third intermediate node and the reference voltage port; and a fifth switch coupled between the first intermediate node and the reference voltage port.

Claims (66)

1 . A DC-DC voltage regulator for converting an input voltage at an input port into one or more output voltages at respective output ports, the DC-DC voltage regulator comprising:

a first switching element, an inductive element, and a second switching element coupled in series between the input port and a reference voltage port;

at least one negative output rail coupled between a first intermediate node and a respective output port, wherein the first intermediate node is arranged between the first switching element and the inductive element;

a capacitive element coupled between a second intermediate node and a third intermediate node, wherein the second intermediate node is arranged between the inductive element and the second switching element;

a third switching element coupled between the input port and the third intermediate node,

at least one positive output rail coupled between the third intermediate node and a respective output port;

a fourth switching element coupled between the third intermediate node and the reference voltage port; and

a fifth switching element coupled between the first intermediate node and the reference voltage port,

wherein during operation of a third phase of the DC-DC voltage regulator, the fourth switching element is in an ON state, and the first, second, third and fifth switching elements are in an OFF state, thereby coupling the inductive element to the at least one negative output rail and in series with the capacitive element to the reference voltage port.

2 . The DC-DC voltage regulator according to claim 1 , wherein:

the fourth switching element is configured for coupling the capacitive element in series with the inductive element for the at least one negative output rail during operation of the DC-DC voltage regulator; and/or

the fifth switching element is configured for coupling the capacitive element in series with the inductive element for the at least one positive output rail during operation of the DC-DC voltage regulator.

3 . The DC-DC voltage regulator according to claim 1 ,

wherein the third and fifth switching elements are configured for charging the capacitive element via the inductive element during operation of the DC-DC voltage regulator.

4 . The DC-DC voltage regulator according to claim 1 ,

wherein the fourth and fifth switching elements are configured for magnetizing the inductive element by using the capacitive element during operation of the DC-DC voltage regulator.

5 . The DC-DC voltage regulator according to claim 1 ,

wherein the first and fourth switching elements are configured for magnetizing the inductive element by using both the input voltage and the capacitive element at the same time during operation of the DC-DC voltage regulator.

6 . The DC-DC voltage regulator according to claim 1 , comprising a first phase for charging the capacitive element.

7 . The DC-DC voltage regulator according to claim 6 ,

wherein, during operation of the first phase, the third and fifth switching elements are in an ON state, and the first, second and fourth switching elements are in an OFF state, such that the capacitive element is charged via the inductive element.

8 . The DC-DC voltage regulator according to claim 1 , comprising a second phase for magnetizing the inductive element.

9 . The DC-DC voltage regulator according to claim 8 , wherein, during a first operation of the second phase, the first, second and third switching elements are in an ON state, and the fourth and fifth switching elements are in an OFF state, such that the capacitive element is charged and the inductive element is magnetized from the input voltage.

10 . The DC-DC voltage regulator according to claim 8 , wherein, during a second operation of the second phase, the fourth and fifth switching elements are in an ON state, and the first, second and third switching elements are in an OFF state, such that the inductive element is magnetized from the capacitive element.

11 . The DC-DC voltage regulator according to claim 8 , wherein, during a third operation of the second phase, the first and fourth switching elements are in an ON state, and the second, third and fifth switching elements are in an OFF state, such that the inductive element is magnetized from both the input voltage and the capacitive element.

12 . The DC-DC voltage regulator according to claim 1 ,

wherein, during operation of a fourth phase of the DC-DC voltage regulator, the fifth switching element is in an ON state, and the first, second, third and fourth switching elements are in an OFF state, thereby coupling the inductive element to the reference voltage port and in series with the capacitive element to the at least one positive output rail.

13 . A method for operating a DC-DC voltage regulator for converting an input voltage at an input port into one or more output voltages respectively at respective output ports, the method comprising:

coupling a first switching element, an inductive element, and a second switching element in series between the input port and a reference voltage port,

coupling at least one negative output rail between a first intermediate node and a respective output port, wherein the first intermediate node is arranged between the first switching element and the inductive element,

coupling a capacitive element between a second intermediate node and a third intermediate node, wherein the second intermediate node is arranged between the inductive element and the second switching element,

coupling a third switching element between the input port and the third intermediate node,

coupling at least one positive output rail between the third intermediate node and a respective output port,

coupling a fourth switching element between the third intermediate node and the reference voltage port,

coupling a fifth switching element between the first intermediate node and the reference voltage port, and

during operation of a third phase of the DC-DC voltage regulator, switching the fourth switching element to an ON state, and switching the first switching element, the second switching element, the third switching element and the fifth switching element to an OFF state, for coupling the inductive element to the at least one negative output rail and in series with the capacitive element to the reference voltage port.

14 . The method according to claim 13 , further comprising, during operation of a first phase of the DC-DC voltage regulator for charging the capacitive element:

switching the third and fifth switching elements to an ON state, and switching the first, second and fourth switching elements to an OFF state, for charging the capacitive element via the inductive element.

15 . The method according to claim 13 , further comprising, during a first operation of a second phase of the DC-DC voltage regulator for magnetizing the inductive element:

switching the first, second and third switching elements to an ON state, and switching the fourth and fifth switching elements to an OFF state, for charging the capacitive element and magnetizing the inductive element from the input voltage.

16 . The method according to claim 13 , further comprising, during a second operation of a second phase of the DC-DC voltage regulator for magnetizing the inductive element:

switching the fourth and fifth switching elements to an ON state, and switching the first, second and third switching elements to an OFF state, for magnetizing the inductive element from the capacitive element.

17 . The method according to claim 13 , further comprising, during a third operation of a second phase of the DC-DC voltage regulator for magnetizing the inductive element:

switching the first and fourth switching elements to an ON state, and switching the second switching element, the third switching element and the fifth switching element to an OFF state, for magnetizing the inductive element from both the input voltage and the capacitive element.

18 . The method according to claim 13 , further comprising, during operation of a fourth phase of the DC-DC voltage regulator:

switching the fifth switching element to an ON state, and switching the first, second, third and fourth switching elements to an OFF state, for coupling the inductive element to the reference voltage port and in series with the capacitive element to the at least one positive output rail.

19 . The method according to claim 13 , further comprising, for generating a positive output voltage larger than two times the input voltage:

repeatedly operating the DC-DC voltage regulator according to a predetermined operation sequence that involves:

switching the third and fifth switching elements to an ON state, and switching the first, second and fourth switching elements to an OFF state;

switching the first and fourth switching elements to the ON state, and switching the second switching element, the third switching element and the fifth switching element to the OFF state; and

switching the first switching element to the ON state, and switching the second switching element, the third switching element, the fourth switching element and the fifth switching element to the OFF state.

20 . The method according to claim 13 , further comprising, for generating a positive output voltage larger than the input voltage but less than two times the input voltage:

repeatedly operating the DC-DC voltage regulator according to a predetermined operation sequence that involves:

switching the third and fifth switching elements to an ON state, and switching the first, second and fourth switching elements to an OFF state;

switching the first switching element to the ON state, and switching the second switching element, the third switching element, the fourth switching element and the fifth switching element to the OFF state; and

switching the fifth switching element to the ON state, and switching the first, second, third and fourth switching elements to the OFF state.

21 . The method according to claim 13 , further comprising, for generating a negative output voltage having an absolute magnitude larger than the input voltage:

repeatedly operating the DC-DC voltage regulator according to a predetermined operation sequence that involves:

switching the third and fifth switching elements to an ON state, and switching the first, second and fourth switching elements to an OFF state;

switching the fourth and fifth switching elements to the ON state, and switching the first, second and third switching elements to the OFF state; and

switching the fourth switching element to the ON state, and switching the first switching element, the second switching element, the third switching element and the fifth switching element to the OFF state.

22 . The method according to claim 13 , further comprising, for generating a negative output voltage having an absolute magnitude larger than 0 but less than the input voltage:

repeatedly operating the DC-DC voltage regulator according to a predetermined operation sequence that involves:

switching the third and fifth switching elements to an ON state, and switching the first, second and fourth switching elements to an OFF state;

switching the fourth switching element to the ON state, and switching the first switching element, the second switching element, the third switching element and the fifth switching element to the OFF state; and

switching the second and third switching elements to the ON state, and switching the first switching element, the fourth switching element and the fifth switching element to the OFF state.