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Journal ArticleDOI

High Reliability and Efficiency Single-Phase Transformerless Inverter for Grid-Connected Photovoltaic Systems

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TLDR
In this article, a high-reliability single-phase transformerless grid-connected inverter that utilizes superjunction MOSFETs to achieve high efficiency for photovoltaic applications is presented.
Abstract
This paper presents a high-reliability single-phase transformerless grid-connected inverter that utilizes superjunction MOSFETs to achieve high efficiency for photovoltaic applications. The proposed converter utilizes two split ac-coupled inductors that operate separately for positive and negative half grid cycles. This eliminates the shoot-through issue that is encountered by traditional voltage source inverters, leading to enhanced system reliability. Dead time is not required at both the high-frequency pulsewidth modulation switching commutation and the grid zero-crossing instants, improving the quality of the output ac-current and increasing the converter efficiency. The split structure of the proposed inverter does not lead itself to the reverse-recovery issues for the main power switches and as such superjunction MOSFETs can be utilized without any reliability or efficiency penalties. Since MOSFETs are utilized in the proposed converter high efficiency can be achieved even at light load operations achieving a high California energy commission (CEC) or European union efficiency of the converter system. It also has the ability to operate at higher switching frequencies while maintaining high efficiency. The higher operating frequencies with high efficiency enables reduced cooling requirements and results in system cost savings by shrinking passive components. With two additional ac-side switches conducting the currents during the freewheeling phases, the photovoltaic array is decoupled from the grid. This reduces the high-frequency common-mode voltage leading to minimized ground loop leakage current. The operation principle, common-mode characteristic and design considerations of the proposed transformerless inverter are illustrated. The total losses of the power semiconductor devices of several existing transformerless inverters which utilize MOSFETs as main switches are evaluated and compared. The experimental results with a 5 kW prototype circuit show 99.0% CEC efficiency and 99.3% peak efficiency with a 20 kHz switching frequency. The high reliability and efficiency of the proposed converter makes it very attractive for single-phase transformerless photovoltaic inverter applications.

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Citations
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Journal ArticleDOI

A Grid-Connected Single-Phase Transformerless Inverter Controlling Two Solar PV Arrays Operating Under Different Atmospheric Conditions

TL;DR: A grid-connected single-phase transformerless inverter that can operate two serially connected solar photovoltaic subarrays at their respective maximum power points while each one of them is exposed to different atmospheric conditions is proposed in this paper.
Journal ArticleDOI

Minimization of the DC Component in Transformerless Three-Phase Grid-Connected Photovoltaic Inverters

TL;DR: In this article, the authors proposed a software-based approach to minimize the dc component in three-phase ac currents and developed a virtual capacitor that mimics the blocking capacitors used for the DC component minimization, the so-called virtual capacitor is achieved by adding an integral of the dc components in the current feedback path.
Journal ArticleDOI

A Review on Recent Advances and Future Trends of Transformerless Inverter Structures for Single-Phase Grid-Connected Photovoltaic Systems

TL;DR: In this paper, the basic operational principles of all single-phase transformerless grid-connected photovoltaic (SPTG-CPV) inverters are presented in details for positive, negative, and zero cycles.
Journal ArticleDOI

A Family of Zero-Current-Transition Transformerless Photovoltaic Grid-Connected Inverter

TL;DR: In this article, a zero-current transition (ZCT) concept for the single-phase full-bridge transformerless PV grid-connected inverters is presented, where the zero current turnoff for high-frequency main switches of the inverters and the zerocurrent turn-on for auxiliary switches added are achieved by introducing two resonant tanks.
Journal ArticleDOI

Analysis and Design of Improved Weighted Average Current Control Strategy for LCL-Type Grid-Connected Inverters

TL;DR: In this article, an improved WAC damping method with an additional capacitor current feedback loop is proposed to overcome the inherent resonance of the LCL filter, and a systematic parameter design guideline for the optimal selection of the current loop proportional resonant controller and the additional capacitance feedback coefficient are presented for the improved weighted average current feedback control strategy.
References
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Journal ArticleDOI

A review of single-phase grid-connected inverters for photovoltaic modules

TL;DR: In this article, the authors focus on inverter technologies for connecting photovoltaic (PV) modules to a single-phase grid and categorize the inverters into four classifications: 1) the number of power processing stages in cascade; 2) the type of power decoupling between the PV module(s) and the single phase grid; 3) whether they utilizes a transformer (either line or high frequency) or not; and 4) the kind of grid-connected power stage.
Journal ArticleDOI

A Review of the Single Phase Photovoltaic Module Integrated Converter Topologies With Three Different DC Link Configurations

TL;DR: In this paper, a topology study of the PV MICs in the power range below 500 W and covers most topologies recently proposed for MIC applications is presented, where the MIC topologies are classified into three different arrangements based on the dc link configurations.
Journal ArticleDOI

Topologies of single-phase inverters for small distributed power generators: an overview

TL;DR: In this paper, an overview of single-phase inverters developed for small distributed power generators is presented, compared, and evaluated against the requirements of power decoupling and dual-grounding, the capabilities for grid-connected or/and stand-alone operations, and specific DG applications.
Journal ArticleDOI

A New High-Efficiency Single-Phase Transformerless PV Inverter Topology

TL;DR: This paper proposes a new topology, based on the H-bridge with a new ac bypass circuit consisting of a diode rectifier and a switch with clamping to the dc midpoint, which achieves high conversion efficiency and low leakage current.
Journal ArticleDOI

Transformerless Inverter for Single-Phase Photovoltaic Systems

TL;DR: In this article, the authors proposed a new high-efficiency topology that generates no varying common-mode voltage and requires the same low-input voltage as the bipolar PWM full bridge.
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