IP Library › Granted Patent US 12,506,343
Granted Patent B2
US 12,506,343 · App. 18/321,894 · Granted Dec 23, 2025

Generator-rectifier system and grid interface

Inventors: Arijit Banerjee (Urbana, IL); Debranjan Mukherjee (Champaign, IL)
Assignee: The Board of Trustees of the University of Illinois
H02J3/381H02M1/0077H02M3/33507H02M7/219H02J2300/28
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 12,506,343
App. No.
18/321,894
Granted
Dec 23, 2025
Kind
B2
Abstract

A generator-rectifier system and grid interface includes an active rectifier that accepts an input from an ac port of a multi-port permanent magnet synchronous generator. Passive rectifiers are connected to the others of the plurality of ac ports. Connections provide outputs of the active and passive rectifiers. A first converter operates at a fixed duty ratio driven by the outputs to interface with a dc grid or at a low grid frequency switching waveform to create a grid frequency ac output to interface with an ac grid. A second converter is connected the output of the active rectifier, and is controlled at a variable duty ratio to interface with the dc grid or an above-grid frequency switching waveform to create an above-grid frequency ac waveform to interface with an ac grid. Connections provide a serial stack of outputs of the first and second converters.

Claims (24)

1 . A generator-rectifier system and grid interface, comprising:

an active rectifier configured to accept an input from one of a plurality of ac ports of a multi-port permanent magnet synchronous generator;

passive rectifiers connected to the others of the plurality of ac ports of the multi-port permanent magnet synchronous generator;

connections creating outputs of the active rectifier and the passive rectifiers;

a first converter controlled at a fixed duty ratio driven by the outputs to interface with a dc grid or at a grid frequency switching waveform to create a grid frequency ac output to interface with an ac grid;

a second converter connected the output of the active rectifier, the second converter being controlled at a variable duty ratio to interface with the dc grid or an above-grid frequency switching waveform to create an above-grid frequency ac waveform to interface with the ac grid; and

connections creating a serial stack of outputs of the first and second converters.

2 . The generator-rectifier system and grid interface of claim 1 , wherein the fixed duty ratio is set and the variable duty ratio is controlled to minimize a sum of volt-amp ratings of switches in the active rectifier, first converter and second converter.

3 . The generator-rectifier system and grid interface of claim 1 , wherein the first converter and the second converter comprise isolated dc-dc converters.

4 . The generator-rectifier system and grid interface of claim 1 , wherein the passive rectifiers comprise passive diode bridge rectifiers.

5 . The generator-rectifier system and grid interface of claim 4 , wherein the active rectifier comprises a multi-level rectifier.

6 . The generator-rectifier system and grid interface of claim 1 , wherein the passive rectifiers comprise line-commutated rectifiers operating at an ac fundamental frequency of the multi-port permanent magnet synchronous generator.

7 . A wind energy system comprising generator-rectifier system and grid interface of claim 1 , a wind turbine, and a grid connection, wherein the multi-port permanent magnet synchronous generator is driven by the wind turbine and the grid connection is connected to the serial stack of outputs of the first and second converters.

8 . The generator-rectifier system and grid interface of claim 1 , comprising a plurality of modules, wherein each module comprises an active rectifier configured to accept an input from one of the plurality of ac ports of a multi-port permanent magnet synchronous generator;

passive rectifiers connected to the others of the plurality of ac ports of the multi-port permanent magnet synchronous generator;

connections creating outputs of the active rectifier and the passive rectifiers;

a first converter controlled at a fixed duty ratio driven by the outputs to interface with a dc grid or at a grid frequency switching waveform to create a grid frequency ac output to interface with an ac grid;

a second converter connected the output of the active rectifier, the second converter being controlled at a variable duty ratio to interface with the dc grid or an above-grid frequency switching waveform to create an above-grid frequency ac waveform to interface with the ac grid.

9 . The generator-rectifier system and grid interface of claim 8 , wherein the others of the plurality of ac ports comprises the remainder of the plurality of ac ports.

10 . The generator-rectifier system and grid interface of claim 1 , wherein the others of the plurality of the ac ports comprises the remainder of the plurality of the ac ports.

11 . The generator-rectifier system and grid interface of claim 1 , wherein the fixed duty ratio is ˜0.5.

12 . The generator-rectifier system and grid interface of claim 1 , wherein the active rectifier is controlled such that serial stack of outputs of the first and second converters have a cubic relationship with a speed of a source driving multi-port permanent magnet synchronous generator.

13 . The generator-rectifier system and grid interface of claim 1 , wherein the active rectifier is controlled such that the first converter processes all power from the input at a rated condition the multi-port permanent magnet synchronous generator and a most of the power from the input at a minimum speed of the multi-port permanent magnet synchronous generator.

14 . The generator-rectifier system and grid interface of claim 13 , wherein the active rectifier is controlled such that the second converter processes a small fraction of the power from the input at the minimum speed.

Assignments (2)
CONFIRMATORY LICENSE Recorded Jul 31, 2026
From: UNIVERSITY OF ILLINOIS AT URBANA-CHAMPAIGN
To: U.S. DEPARTMENT OF ENERGY
Reel/Frame 076105/0831 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 27, 2023
From: BANERJEE, ARIJIT; MUKHERJEE, DEBRANJAN
To: THE BOARD OF TRUSTEES OF THE UNIVERSITY OF ILLINOIS
Reel/Frame 065373/0222 →
Continuity (2)
Provisional Application 63344990 · May 23, 2022
Related Publication 20240006889A1 · Jan 4, 2024
References Cited (40)
US 6184593B1 · Jungreis · 2001 [cited by examiner]
US 7459889B2 · Ganev · 2008 [cited by examiner]
US 10122306B2 · Rozman · 2018 [cited by examiner]
US 11183946B2 · Huynh et al. · 2021 [cited by applicant]
US 20070247004A1 · Tan · 2007 [cited by examiner]
US 20120126758A1 · Fang · 2012 [cited by examiner]
US 20130002022A1 · McMullen · 2013 [cited by examiner]
US 20150349655A1 · Petersen · 2015 [cited by examiner]
US 20180262137A1 · Rozman · 2018 [cited by examiner]
US 20200295671A1 · Huynh · 2020 [cited by examiner]
US 20220416700A1 · Gehret · 2022 [cited by examiner]
US 20230299659A1 · Banerjee · 2023 [cited by examiner]
US 20240063635A1 · Wilhide · 2024 [cited by examiner]
US 20250125624A1 · Farb · 2025 [cited by examiner]
Barrera-Cardenas, et al., “Comparative Study of Wind Turbine Power Converters Based on Medium-Frequency AC-Link for Offshore DC-Grids”, IEEE Journal of Emerging and Selected Topics in Power Electronics, 2015, vol. 03, N… [cited by applicant]
Chen, et al., “Analysis and Comparison of Medium Voltage High Power DC/DC Converters for Offshore Wind Energy Systems”, IEEE Transactions on Power Electronics, 2013, vol. 28, No. 4, pp. 2014-2023. [cited by applicant]
Chuangpishit, et al., “Topology Design for Collector Systems of Offshore Wind Farms With Pure DC Power Systems”, IEEE Transactions on Industrial Electronics, 2014, vol. 61, No. 1, pp. 320-328. [cited by applicant]
Fu, et al., “Collection System Topology for Deep-Sea Offshore Wind Farms Considering Wind Characteristics”, IEEE Transactions on Energy Conversion, 2022, vol. 37, No. 1, pp. 631-642. [cited by applicant]
Guan, Minyuan, “A Series-Connected Offshore Wind Farm Based on Modular Dual-Active-Bridge (DAB) Isolated DC-DC Converter”, IEEE Transactions on Energy Conversion, 2019, vol. 34, No. 3, pp. 1422-1431. [cited by applicant]
Guo, et al., “HB and FB MMC Based Onshore Converter in Series-Connected Offshore Wind Farm”, IEEE Transactions on Power Electronics, 2020, vol. 35, No. 3, pp. 2646-2658. [cited by applicant]
Guo, et al., “Series-Connected-Based Offshore Wind Farms With Full-Bridge Modular Multilevel Converter as Grid- and Generator-side Converters”, IEEE Transactions on Industrial Electronics, 2020, vol. 67, No. 4, pp. 2798… [cited by applicant]
Hu, et al., “Modular Isolated LLC DC/DC Conversion System for Offshore Wind Farm Collection and Integration”, IEEE Journal of Emerging and Selected Topics in Power Electronics, 2021, vol. 9, No. 6, pp. 6713-6725. [cited by applicant]
Huynh, Phuc, “Active Voltage-Ripple Compensation in an Integrated Generator-Rectifier System”, IEEE Transactions on Power Electronics, 2021, vol. 36, No. 2, pp. 2270-2282. [cited by applicant]
Huynh, et al., “Maximum Power Point Tracking for Wind Turbine Using Integrated Generator-Rectifier Systems”, IEEE Transactions on Power Electronics, 2021, vol. 36, No. 1, pp. 504-512. [cited by applicant]
Huynh, et al., “An Integrated Permanent-Magnet-Synchronous Generator-Rectifier Architecture for Limited-Speed-Range Applications”, IEEE Transactions on Power Electronics, 2020, vol. 35, No. 5, pp. 4767-4779. [cited by applicant]
Jia, et al., “Control Strategy for an Open-End Winding Induction Motor Drive System for Dual-Power Electric Vehicles”, IEEE Access, 2020, Bol. 8, pp. 8844-8860. [cited by applicant]
Kolar, et al., “A Novel Three-Phase Utility Interface Minimizing Line Current Harmonics of High-Power Telecommunications Rectifier Modules”, IEEE Transactions on Industrial Electronics, 1997, vol. 44, No. 4, pp. 456-467. [cited by applicant]
Krishnamoorthy, et al., “Isolated AC-DC Converter Using Medium Frequency Transformer for Off-Shore Wind Turbine DC Collection Grid”, IEEE Transactions on Industrial Electronics, 2017, vol. 64, No. 11, pp. 8939-8947. [cited by applicant]
Meyer, et al., “Control and Design of DC Grids for Offshore Wind Farms”, IEEE Transactions on Industry Applications, 2007, vol. 43, No. 6, pp. 1475-1482. [cited by applicant]
Mukherjee, et al., “A Reduced Switch Hybrid Multilevel Unidirectional Rectifier”, IEEE Transactions on Power Electronics, 2019, vol. 34, No. 3, pp. 2070-2081. [cited by applicant]
Mukherjee, et al., “A Minimum Switch Five-Level Unidirectional Rectifier Without Any Voltage Balancing and Pre-Charging Circuitry”, IEEE Transactions on Power Electronics, 2019, vol. 34, No. 12, pp. 11605-11615. [cited by applicant]
Nabae, et al., “A New Neutral-Point-Clamped PWM Inverter”, IEEE Transactions on Industry Applications, 1981, vol. IA-17, No. 5., pp. 518-523. [cited by applicant]
Pape, et al., “A Generic Power Converter Sizing Framework for Series-Connected DC Offshore Wind Farms”, IEEE Transactions on Power Electronics, 2022, vol. 37, No. 2, pp. 2307-2320. [cited by applicant]
Popat, et al., “A Novel Decoupled Interconnecting Method for Current-Source Converter-Based Offshore Wind Farms”, IEEE Transactions on Power Electronics, 2012, vol. 27, No. 10, pp. 4224-4233. [cited by applicant]
Rodríguez, et al., “Multilevel Voltage-Source-Converter Topologies for Industrial Medium-Voltage Drives”, IEEE Transactions on Industrial Electronics, 2007, vol. 54, No. 6, pp. 2930-2945. [cited by applicant]
Rong, et al., “ALL-DC Offshore Wind Farm With Series-Connected Wind Turbines to Overcome Unequal Wind Speeds”, IEEE Transactions on Power Electronics, 2019, vol. 34, No. 2, pp. 1370-1381. [cited by applicant]
Rong, et al., “The study of different unidirectional input parallel output series connected DC-DC converters for wind farm based multi-connected DC system”, Int Trans Electr Energ Syst., 2021, pp. 1-16. [cited by applicant]
Wei, et al., “A Medium-Frequency Transformer-Based Wind Energy Conversion System Used for Current-Source Converter-Based Offshore Wind Farm”, IEEE Transactions on Power Electronics, 2017, vol. 32, No. 1, pp. 248-259. [cited by applicant]
Wei, et al., “Bipolar Operation Investigation of Current Source Converter Based Wind Energy Conversion Systems”, IEEE Transactions on Power Electronics, 2018, vol. 33, No. 2, pp. 1294-1302. [cited by applicant]
Zhang, et al., “Overvoltage Limitation Method of an Offshore Wind Farm with DC Series-Parallel Collection Grid”, IEEE Transactions on Sustainable Energy, 2019, vol. 10, No. 1, pp. 204-213. [cited by applicant]