IP Library Granted Patent US 12,633,843
Granted Patent B2
US 12,633,843 · App. 18/146,960 · Granted May 19, 2026

Dual multi-level inverter topology with reduced switch count and small DC-link capacitor

Inventors: Jinyeong Moon (Tallahassee, FL); Woongkul Lee (East Lansing, MI); Muhammad Alvi (Detroit, MI)
Assignees: The Florida State University Research Foundation, Inc.; The Board of Trustees of Michigan State University; GM Global Technology Operations LLC
H02M7/487H02M1/123H02M1/009
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Quick Facts
Patent No.
US 12,633,843
App. No.
18/146,960
Granted
May 19, 2026
Kind
B2
Abstract

A dual multi-level inverter topology with reduced switch count and small DC-link capacitor is provided. The inverter topology provides multi-level inverter operation without requiring a neutral point connection that is commonly present in a stacked capacitor topology (for example, a topology including two capacitors).

Claims (40)

1 . A multi-level inverter comprising:

a first circuit comprising a first set of one or more switches with a first output node and a second output node;

a second circuit comprising a second set of one or more switches with a third output node and a fourth output node;

a third circuit comprising a third set of one or more switches with a fifth output node and a sixth output node, wherein the first output node, the third output node, and the fifth output node form a first three-phase output, wherein each of the first, the third, and the fifth output nodes are configured to independently generate a first non-zero voltage, a second non-zero voltage, and a first zero voltage, wherein the second output node, the fourth output node, and the sixth output node form a second three-phase output, and wherein each of the second, the fourth, and the sixth output nodes are configured to independently generate a third non-zero voltage, a fourth non-zero voltage, and a second zero voltage;

a first balanced three-phase load configured to receive three outputs from the first three-phase output; and

a second balanced three-phase load configured to receive three outputs from a second three-phase output, wherein the first balanced three-phase load and the second balanced three-phase load form active neutral points.

2 . The multi-level inverter of claim 1 , wherein the first set of one or more switches, the second set of one or more switches, and the third set of one or more switches are each provided in a neutral-point-less (NPL) H-type configuration or an NPL X-type configuration.

3 . The multi-level inverter of claim 1 , further comprising:

a controller comprising:

memory that stores computer-executable instructions; and

one or more processors configured to access the memory and execute the computer-executable instructions to:

cause, at a first time, a first switch and second switch of the first set of one or more switches to close;

cause, at a second time, a third switch and fourth switch of the first set of one or more switches to close; and

cause, at a third time, at least one of a fifth switch and a sixth switch of the first set of one or more switches to close.

4 . The multi-level inverter of claim 1 , wherein the one or more switches are transistors.

5 . The multi-level inverter of claim 1 , wherein the first balanced three-phase load and the second balanced three-phase load are 180 degrees phase shifted with two separate neutral points, and wherein the first and second zero voltages are only generated by a combination of two or more instances of the first, the second, and the third circuits as well as both of the first and the second balanced three-phase loads.

6 . The multi-level inverter of claim 1 , further comprising one or more capacitors connected in parallel with an input of the multi-level inverter without a neutral point connection.

7 . A system comprising:

a direct current (DC) power source;

a multi-level inverter configured to receive a DC signal from the DC power source, the multi-level inverter comprising:

a first circuit comprising a first set of one or more switches with a first output node and a second output node;

a second circuit comprising a second set of one or more switches with a third output node and a fourth output node;

a third circuit comprising a third set of one or more switches with a fifth output node and a sixth output node, wherein the first output node, the third output node, and the fifth output node form a first three-phase output, wherein each of the first, the third, and the fifth output nodes are configured to independently generate a first non-zero voltage, a second non-zero voltage, and a first zero voltage, wherein the second output node, the fourth output node, and the sixth output node form a second three-phase output, and wherein each of the second, the fourth, and the sixth output nodes are configured to independently generate a third non-zero voltage, a fourth non-zero voltage, and a second zero voltage;

a first balanced three-phase load configured to receive three outputs from the first three-phase output; and

a second balanced three-phase load configured to receive three outputs from a second three-phase output, wherein the first balanced three-phase load and the second balanced three-phase load form active neutral points.

8 . The system of claim 7 , wherein the first set of one or more switches, the second set of one or more switches, and the third set of one or more switches are each provided in a neutral-point-less (NPL) H-type configuration or an NPL X-type configuration.

9 . The system of claim 7 , further comprising:

a controller comprising:

memory that stores computer-executable instructions; and

one or more processors configured to access the memory and execute the computer-executable instructions to:

cause, at a first time, a first and second switch of the first set of one or more switches to close;

cause, at a second time, a third and fourth switch of the first set of one or more switches to close; and

cause, at a third time, at least one of a fifth and a sixth switch of the first set of one or more switches to close.

10 . The system of claim 7 , wherein the one or more switches are transistors.

11 . A method comprising:

receiving a direct current (DC) signal at an input of a multi-level power inverter, wherein the multi-level power inverter includes a first circuit comprising a first set of one or more switches with a first output node and a second output node, a second circuit comprising a second set of one or more switches with a third output node and a fourth output node, and a third circuit comprising a third set of one or more switches with a fifth output node and a sixth output node, wherein the first output node, the third output node, and the fifth output node form a first three-phase output, and wherein the second output node, the fourth output node, and the sixth output node form a second three-phase output;

independently generating, by each of the first, the third, and the fifth output nodes, a third non-zero voltage, a fourth non-zero voltage, and a second zero voltage;

independently generating, by each of the second, the fourth, and the sixth output nodes, a third non-zero voltage, a fourth non-zero voltage, and a second zero voltage;

receiving, by a first balanced three-phase load, three outputs from the first three-phase output; and

receiving, by a second balanced three-phase load, three outputs from the second three-phase output, wherein the first three-phase load and the second three-phase load form active neutral points.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 2, 2024
From: THE FLORIDA STATE UNIVERSITY RESEARCH FOUNDATION, INC.
To: THE FLORIDA STATE UNIVERSITY RESEARCH FOUNDATION, INC.; THE BOARD OF TRUSTEES OF MICHIGAN STATE UNIVERSITY
Reel/Frame 067897/0538 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 21, 2023
From: MOON, JINYEONG; LEE, WOONGKUL
To: THE FLORIDA STATE UNIVERSITY RESEARCH FOUNDATION, INC.
Reel/Frame 064649/0512 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 7, 2023
From: ALVI, MUHAMMAD HUSSAIN
To: GM GLOBAL TECHNOLOGY OPERATIONS LLC
Reel/Frame 062612/0222 →
Continuity (2)
Provisional Application 63266101 · Dec 28, 2021
Related Publication 20230238895A1 · Jul 27, 2023
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