IP Library Granted Patent US 12712429
Granted Patent B2
US 12712429 · App. 18/446,888 · Granted Aug 18, 2026

Multiphase buck converters with integrated coupled inductors and controllable coupling

Inventors: Feiyang Zhu (Blacksburg, VA); Qiang Li (Blacksburg, VA); Fred C. Lee (Blacksburg, VA)
Assignee: VIRGINIA TECH INTELLECTUAL PROPERTIES, INC.
H02M1/0064H01F27/306H01F27/38H02M3/158
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Quick Facts
Patent No.
US 12712429
App. No.
18/446,888
Granted
Aug 18, 2026
Kind
B2
Abstract

Power converters with integrated controllable coupling inductors are described. An example power converter includes a number of converter stages and an integrated coupled inductor. The integrated coupled inductor includes a magnetic core having a first side leg, a first leg, a center leg, a second leg, and a second side leg. The integrated coupled inductor also includes a first and second windings for first and second converter stage among the converter stages. The first winding extends around the first leg, and the second winding extends around the second leg of the magnetic core. The integrated coupled inductor can also include a second magnetic core with third and fourth windings for additional converter stages and a coupling winding extending around center legs of the magnetic core and the second magnetic core. The integrated coupled inductor does not include a coupling inductor separate from the magnetic core and the second magnetic core.

Claims (65)

1 . A power converter, comprising:

a plurality of converter stages; and

an integrated coupled inductor for the plurality of converter stages, the integrated coupled inductor comprising:

a magnetic core comprising a first side leg, a first leg, a center leg, a second leg, and a second side leg;

a first winding for a first converter stage among the plurality of converter stages, the first winding extending around the first leg; and

a second winding for a second converter stage among the plurality of converter stages, the second winding extending around the second leg.

2 . The power converter according to claim 1 , wherein integrated coupled inductor further comprises:

a second magnetic core;

a third winding for a third converter stage among the plurality of converter stages, the third winding extending around a first leg of the second magnetic core; and

a fourth winding for a fourth converter stage among the plurality of converter stages, the fourth winding extending around a second leg of the second magnetic core.

3 . The power converter according to claim 2 , wherein the integrated coupled inductor further comprises a coupling winding extending around the center leg of the magnetic core and a center leg of the second magnetic core.

4 . The power converter according to claim 3 , wherein the integrated coupled inductor does not include a coupling inductor separate from the magnetic core and the second magnetic core.

5 . The power converter according to claim 3 , wherein:

the magnetic core comprises leakage inductances L k1 and L k2 ;

the second magnetic core comprises leakage inductances L k3 and L k4 ; and

the leakage inductances L k1 , L k2 , L k3 , and L k4 form a coupling inductor in the integrated coupled inductor and are coupled in series with the coupling winding.

6 . The power converter according to claim 5 , wherein:

inductance values of the leakage inductances L k1 and L k2 are set by a ratio of cross-sectional areas of the first side leg and the second side leg of the magnetic core to a cross-sectional area of the center leg of the magnetic core.

7 . The power converter according to claim 5 , wherein:

inductance values of the leakage inductances L k3 and L k4 are set by a ratio of cross-sectional areas of a first side leg and a second side leg of the second magnetic core to a cross-sectional area of the center leg of the second magnetic core.

8 . The power converter according to claim 1 , wherein:

the magnetic core further comprising a second center leg, a third leg, a third center leg, and a fourth leg; and

the integrated coupled inductor further comprises:

a third winding for a third converter stage among the plurality of converter stages, the third winding extending around the third leg; and

a fourth winding for a fourth converter stage among the plurality of converter stages, the fourth winding extending around the fourth leg.

9 . The power converter according to claim 8 , wherein integrated coupled inductor further comprises:

a second magnetic core;

a fifth winding for a fifth converter stage among the plurality of converter stages, the fifth winding extending around a first leg of the second magnetic core;

a sixth winding for a sixth converter stage among the plurality of converter stages, the sixth winding extending around a second leg of the second magnetic core;

a seventh winding for a seventh converter stage among the plurality of converter stages, the seventh winding extending around a third leg of the second magnetic core;

an eighth winding for an eighth converter stage among the plurality of converter stages, the eighth winding extending around a fourth leg of the second magnetic core.

10 . The power converter according to claim 9 , wherein the integrated coupled inductor further comprises a coupling winding extending around center legs of the magnetic core and center legs of the second magnetic core.

11 . The power converter according to claim 10 , wherein the integrated coupled inductor does not include a coupling inductor separate from the magnetic core and the second magnetic core.

12 . The power converter according to claim 1 , wherein:

the power converter comprises a multiphase buck power converter; and

the plurality of converter stages comprise a plurality of buck converter stages.

13 . The power converter according to claim 1 , wherein the integrated coupled inductor comprises a hybird indirect-coupled inductor.

14 . A multiphase buck power converter, comprising:

a plurality of buck converter stages; and

an integrated coupled inductor for the plurality of buck converter stages, the integrated coupled inductor comprising:

a first magnetic core comprising side legs;

a second magnetic core comprising side legs;

a first winding for a first buck converter stage among the plurality of buck converter stages, the first winding extending around the first magnetic core;

a second winding for a second buck converter stage among the plurality of buck converter stages, the second winding extending around the first magnetic core;

a third winding for a third buck converter stage among the plurality of buck converter stages, the first winding extending around the second magnetic core;

a fourth winding for a fourth buck converter stage among the plurality of buck converter stages, the fourth winding extending around the second magnetic core; and

a coupling winding extending around the magnetic core and the second magnetic core.

15 . The power converter according to claim 14 , wherein the integrated coupled inductor does not include a coupling inductor separate from the magnetic core and the second magnetic core.

16 . The power converter according to claim 15 , wherein:

the magnetic core comprises leakage inductances L k1 and L k2 ;

the second magnetic core comprises leakage inductances L k3 and L k4 ; and

the leakage inductances L k1 , L k2 , L k3 , and L k4 form a coupling inductor in the integrated coupled inductor and are coupled in series with the coupling winding.

17 . The power converter according to claim 16 , wherein:

inductance values of the leakage inductances L k1 and L k2 are set by a ratio of cross-sectional areas of the side legs of the magnetic core to a cross-sectional area of a center leg of the magnetic core; and

inductance values of the leakage inductances L k3 and L k4 are set by a ratio of cross-sectional areas of the side legs of the second magnetic core to a cross-sectional area of a center leg of the second magnetic core.

18 . The power converter according to claim 16 , wherein the integrated coupled inductor does not include a coupling inductor separate from the magnetic core and the second magnetic core.

19 . The power converter according to claim 14 , wherein the integrated coupled inductor comprises a hybird indirect-coupled inductor.

20 . A power converter, comprising:

a plurality of converter stages; and

an integrated coupled inductor for the plurality of converter stages, the integrated coupled inductor comprising:

a first magnetic core comprising a first side leg, a center leg, a first side leg segment, and a second side leg segment;

a first winding for a first converter stage among the plurality of converter stages, the first winding extending around the center leg of the first magnetic core;

a second magnetic core comprising a first side leg, a center leg, a first side leg segment, and a second side leg segment;

a second winding for a second converter stage among the plurality of converter stages, the second winding extending around a center leg of the second magnetic core; and

a coupling winding extending around the center leg and the first side leg segment of the first magnetic core and around the center leg and the first side leg segment of the second magnetic core.