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Current-source Single-phase Module Integrated Inverters for PV Grid-connected Applications

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Current-source Single-phase Module Integrated Inverters for PV Grid-connected Applications. / Darwish, Ahmed; Alotaibi, Saud; Elgenedy, Mohamed A.
In: IEEE Access, Vol. 8, 17.03.2020, p. 53082 - 53096.

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Darwish A, Alotaibi S, Elgenedy MA. Current-source Single-phase Module Integrated Inverters for PV Grid-connected Applications. IEEE Access. 2020 Mar 17;8:53082 - 53096. Epub 2020 Mar 17. doi: 10.1109/ACCESS.2020.2981552

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@article{7b3ca47374034c0c9e11e864cd095180,
title = "Current-source Single-phase Module Integrated Inverters for PV Grid-connected Applications",
abstract = "This paper presents a modular grid-connected single-phase system based on series-connected current-source module integrated converters (MICs). The modular configuration improves the reliability, redundancy and scalability of photovoltaic (PV) distributed generators. In this system, each PV panel is connected to a dc/ac inverter to permit individual Maximum Power Point Tracking (MPPT) operation for each panel. Thus, the harvested power from the PV system will increase significantly. There are four different inverter topologies suitable to be used as MICs with different performances in terms of filtering elements size, power losses, efficiency, output voltage range, and high frequency transformers{\textquoteright} size. For the MPPT control, the oscillating even order harmonic components should be eliminated from the inverter{\textquoteright}s input side otherwise the maximum power cannot be extracted. The proposed modulation scheme in this paper will ease the control of inverter{\textquoteright}s input and output sides. Therefore, the 2nd order harmonic in the input current can be eliminated without adding new active semiconductor switches. A repetitive controller coupled with proportional-resonant controllers are employed to achieve accurate tracking for grid side as well as input side currents. Comparisons and performance evaluations for the proposed MICs are presented and validated with 1 kVA prototype controlled by TMS320F29335 DSP. ",
author = "Ahmed Darwish and Saud Alotaibi and Elgenedy, {Mohamed A.}",
year = "2020",
month = mar,
day = "17",
doi = "10.1109/ACCESS.2020.2981552",
language = "English",
volume = "8",
pages = "53082 -- 53096",
journal = "IEEE Access",
issn = "2169-3536",
publisher = "Institute of Electrical and Electronics Engineers Inc.",

}

RIS

TY - JOUR

T1 - Current-source Single-phase Module Integrated Inverters for PV Grid-connected Applications

AU - Darwish, Ahmed

AU - Alotaibi, Saud

AU - Elgenedy, Mohamed A.

PY - 2020/3/17

Y1 - 2020/3/17

N2 - This paper presents a modular grid-connected single-phase system based on series-connected current-source module integrated converters (MICs). The modular configuration improves the reliability, redundancy and scalability of photovoltaic (PV) distributed generators. In this system, each PV panel is connected to a dc/ac inverter to permit individual Maximum Power Point Tracking (MPPT) operation for each panel. Thus, the harvested power from the PV system will increase significantly. There are four different inverter topologies suitable to be used as MICs with different performances in terms of filtering elements size, power losses, efficiency, output voltage range, and high frequency transformers’ size. For the MPPT control, the oscillating even order harmonic components should be eliminated from the inverter’s input side otherwise the maximum power cannot be extracted. The proposed modulation scheme in this paper will ease the control of inverter’s input and output sides. Therefore, the 2nd order harmonic in the input current can be eliminated without adding new active semiconductor switches. A repetitive controller coupled with proportional-resonant controllers are employed to achieve accurate tracking for grid side as well as input side currents. Comparisons and performance evaluations for the proposed MICs are presented and validated with 1 kVA prototype controlled by TMS320F29335 DSP.

AB - This paper presents a modular grid-connected single-phase system based on series-connected current-source module integrated converters (MICs). The modular configuration improves the reliability, redundancy and scalability of photovoltaic (PV) distributed generators. In this system, each PV panel is connected to a dc/ac inverter to permit individual Maximum Power Point Tracking (MPPT) operation for each panel. Thus, the harvested power from the PV system will increase significantly. There are four different inverter topologies suitable to be used as MICs with different performances in terms of filtering elements size, power losses, efficiency, output voltage range, and high frequency transformers’ size. For the MPPT control, the oscillating even order harmonic components should be eliminated from the inverter’s input side otherwise the maximum power cannot be extracted. The proposed modulation scheme in this paper will ease the control of inverter’s input and output sides. Therefore, the 2nd order harmonic in the input current can be eliminated without adding new active semiconductor switches. A repetitive controller coupled with proportional-resonant controllers are employed to achieve accurate tracking for grid side as well as input side currents. Comparisons and performance evaluations for the proposed MICs are presented and validated with 1 kVA prototype controlled by TMS320F29335 DSP.

U2 - 10.1109/ACCESS.2020.2981552

DO - 10.1109/ACCESS.2020.2981552

M3 - Journal article

VL - 8

SP - 53082

EP - 53096

JO - IEEE Access

JF - IEEE Access

SN - 2169-3536

ER -