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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

Low-Voltage Ride-Through of Single-Phase Transformerless Photovoltaic Inverters

TL;DR: In this article, the LVRT capability of three mainstream single-phase transformerless PV inverters under grid faults is explored in order to map future challenges, and control strategies with reactive power injection are also discussed.
Journal ArticleDOI

Trends and Challenges of Grid-Connected Photovoltaic Systems – A Review

TL;DR: In this paper, a review of the existing and future standards that address the technical challenges associated with the growing number of Grid-Connected Photovoltaic Systems (GCPVS) is presented.
Journal ArticleDOI

Comparison and Analysis of Single-Phase Transformerless Grid-Connected PV Inverters

TL;DR: In this paper, a simple modified H-bridge zero-voltage state rectifier is proposed, to combine the benefits of the low-loss ac-decoupling method and the complete leakage current elimination of the CMV clamping method.
Journal ArticleDOI

Single phase transformerless inverter topologies for grid-tied photovoltaic system: A review

TL;DR: In this paper, the leakage current issues of transformerless inverter, which depends on the topology structure and modulation scheme, have to be addressed very carefully, and a performance comparison in MATLAB/Simulink environment is done among different topologies.
Journal ArticleDOI

An intelligent system architecture in home energy management systems (HEMS) for efficient demand response in smart grid

TL;DR: In this paper, the authors presented the outcome of a new system architecture and control algorithm that can use both battery storage and manage the temperature of thermal appliances, which is an important part of the smart grid that enables residential customers to execute demand response programs autonomously.
References
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Journal ArticleDOI

Highly Efficient Single-Phase Transformerless Inverters for Grid-Connected Photovoltaic Systems

TL;DR: This paper will propose a single-phase transformerless inverter circuit being composed of the association of two step-down converters, which is possible to achieve a high level of efficiency and reliability.
Proceedings ArticleDOI

Inverters for single-phase grid connected photovoltaic systems-an overview

TL;DR: An overview on developments and a summary of the state-of-the-art of inverter technology in Europe for single-phase grid-connected photovoltaic (PV) systems for power levels up to 5 kW is provided.
Journal ArticleDOI

Transformerless Single-Phase Multilevel-Based Photovoltaic Inverter

TL;DR: A new high-efficiency topology for transformerless systems is proposed, which does not generate common-mode currents and topologically guarantees that no dc is injected into the grid and has been verified in a 5-kW prototype with satisfactory results.
Journal ArticleDOI

Improved Transformerless Inverter With Common-Mode Leakage Current Elimination for a Photovoltaic Grid-Connected Power System

TL;DR: In this article, an improved single-phase inverter topology is presented to eliminate the common-mode leakage current in the transformerless photovoltaic grid-connected system, and the high efficiency and convenient thermal design are achieved thanks to the decoupling of two additional switches connected to the dc side.
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