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Proceedings ArticleDOI

A single-switch three-phase boost rectifier to reduce the generator losses in wind energy conversion systems

TLDR
In this article, the use of a single-switch three-phase boost rectifier in the front end of the power electronic interface is discussed for low and medium power wind energy conversion systems (WECS).
Abstract
Low and medium power wind energy conversion systems (WECS) are expected to be simple, low cost and reliable. They are usually implemented with fixed pitch wind turbines. In such a case, operation with variable speed for increased capture of wind energy requires a power electronics converter capable of adjusting the shaft speed. This is done by controlling the active power drawn from the generator. Permanent magnet synchronous generators (PMSG) are a good option for low power variable speed WECS since they do not require external excitation nor reactive power to operate. Typically, an ac-dc converter composed of a diode rectifier and a capacitive filter, connected to a voltage source inverter is used as an interface to a grid or to a load. The highly distorted input currents of the diode rectifier with capacitive filters produce additional power losses in the generator that can reduce its lifetime. This paper discusses the use of a single-switch three-phase boost rectifier in the front end of the power electronic interface. It provides means for regulating the shaft speed by duty cycle variation while reducing the generator losses when compared to the standard diode and capacitive filter scheme. Simulation and experimental results show the effectiveness of the proposed scheme for reducing the generator copper and core losses and also the internal temperature.

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Citations
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Power electronics

Journal ArticleDOI

Analysis and Test of Diode Rectifier Solutions in Grid-Connected Wind Energy Conversion Systems Employing Modular Permanent-Magnet Synchronous Generators

TL;DR: This paper deals with the ac-dc interface conversion in grid-connected wind energy conversion systems based on modular permanent-magnet synchronous generators by considering several connections, which are allowed by the inherent modularity of the considered generators.

Adaptive network-based fuzzy inference systems for sensorless control of pmsg based wind turbine with power quality improvement features

TL;DR: In this article, an adaptive network-based fuzzy-inference system (ANFIS) architecture is proposed for rotor position and speed estimation over wide range of speed operation, which has well known advantages of modeling a highly nonlinear system, as it combines the capability of fuzzy reasoning in handling the uncertainties and capability of artificial neural network (ANN) in learning from processes.
Journal ArticleDOI

Rectifier topologies for permanent magnet synchronous generator on wind energy conversion systems: A review

TL;DR: A review of wind energy conversion topologies to permanent magnet synchronous generator is presented in this article, where the main rectifier topologies are included, along with their advantages and disadvantages, and a comparison between the main generators used in wind energy production related to the advantages of each one is also shown.
Journal ArticleDOI

Development of a Wind Interior Permanent-Magnet Synchronous Generator-Based Microgrid and Its Operation Control

TL;DR: In this article, a wind interior permanent-magnet synchronous generator (IPMSG)-based dc microgrid and its operation control is presented. But, the performance of the system is not analyzed.
References
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Book

Power Electronics: Converters, Applications and Design

TL;DR: In this paper, the authors present a simulation of power switch-mode converters for zero-voltage and/or zero-current switchings in power electronic converters and systems.
Book

Power Electronics

Rashid
Journal ArticleDOI

Power electronics as efficient interface in dispersed power generation systems

TL;DR: In this article, power electronics, the technology of efficiently processing electric power, play an essential part in the integration of the dispersed generation units for good efficiency and high performance of the power systems.

Power electronics

Journal Article

Power Electronics as Efficient Interface in Dispersed Power Generation Systems

TL;DR: In this article, power electronics, the technology of efficiently processing electric power, play an essential part in the integration of the dispersed generation units for good efficiency and high performance of the power systems.
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