access icon free Recent advances in single-phase transformerless photovoltaic inverters

Photovoltaic (PV) power systems have been in the spotlight of scientific research for years. However, this technology is still undergoing developments, and several new architectures are proposed each year. This study describes the main challenges facing grid-connected PV systems without galvanic isolation, then carries out a review of the state-of-the-art of single-phase systems. The converter topology review is focused on the match between the different types of converters and the different PV panel technologies, determined by the common-mode voltage between the PV string terminals and the ground. The ground leakage current, due to time variations of this voltage, is a source of electric safety and electromagnetic interference (EMI)-related problems, and its amplitude is constrained by international standards. The basic principles of operation of the different solutions are described, along with their strengths and drawbacks. Conversion efficiency is evaluated qualitatively comparing the semiconductor power losses. Finally, the future trends regarding semiconductor devices, PV panels and international regulations for single-phase grid-connected equipment are discussed, and indications on how these might steer future research efforts in PV converters are inferred.

Inspec keywords: power semiconductor devices; power convertors; power grids; photovoltaic power systems; leakage currents; electromagnetic interference; invertors

Other keywords: photovoltaic power systems; ground leakage current; time variations; single-phase transformerless photovoltaic inverters; EMI; electromagnetic interference-related problems; electric safety; grid-connected PV power systems; semiconductor devices; common-mode voltage; international standards; PV string terminals; international regulations; single-phase grid-connected equipment; converter topology review; PV panel technologies; conversion efficiency evaluation

Subjects: Solar power stations and photovoltaic power systems; Power system protection; Electromagnetic compatibility and interference; Power semiconductor devices; DC-AC power convertors (invertors)

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