Novel voltage balancing algorithm for single-phase cascaded multilevel inverter for post-module failure operation in solar photovoltaic applications

被引:20
|
作者
Rahman, Syed [1 ]
Meraj, Mohammad [1 ]
Iqbal, Atif [1 ]
Ben-Brahim, Lazhar [1 ]
机构
[1] Qatar Univ, Dept Elect Engn, Doha, Qatar
关键词
photovoltaic power systems; harmonic distortion; switching convertors; PWM invertors; solar power stations; power generation faults; failure analysis; power generation reliability; voltage-source convertors; power grids; power generation control; novel voltage balancing algorithm; post-module failure operation; nine-level output voltage waveform; nine-level four module qZSI; seven-level three modules; voltage levels; output voltage magnitude; harmonic profile; output voltage level; total harmonic distortion; seven-level qZSI output voltage; unwanted harmonic component; conventional cascaded H-bridge inverters; pre-fault condition; multilevel inverter operation; post-fault condition; control algorithm; DC voltage source; solar powered multilevel qZSI; post-fault performance; cascaded qZSI; single-phase cascaded multilevel inverter; solar photovoltaic applications; single-phase cascaded quasiimpedance source inverter modules; harmonic spectrum; CHB inverters; post-fault operation restoration; buck mode; boost modes; voltage balancing algorithm; module failure; DC voltage source powered multilevel qZSI; utility grid; pre-fault performance; RL load; FPGA Virtex 5 digital platform; H; CONVERTERS; TOPOLOGIES;
D O I
10.1049/iet-rpg.2018.5483
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Four cascaded quasi-impedance source inverter (qZSI) modules are required for achieving nine-level output voltage waveform. In case of one module failure, number of levels in output voltage are reduced to seven. This leads to decrease in the output voltage magnitude and increased THD (higher than conventional seven-level qZSI). This is due to the dominance of unwanted harmonic component introduced in the harmonic spectrum. To restore voltage magnitude and optimize THD performance, novel voltage balancing algorithm is proposed. To validate the control algorithm for off-grid and grid connected system, simulation results of the multilevel qZSI are discussed in two categories: (i) DC voltage source powered multilevel qZSI for RL load subjected to module failure and (ii) solar powered multilevel qZSI connected to utility grid subjected to module failure and variable solar irradiation. Pre-fault and post-fault performance of the system with the proposed control algorithm is discussed for both categories, which validates the effectiveness of the algorithm. Hardware results for proof-of-concept are discussed for DC voltage source fed cascaded qZSI connected to RL load during pre-fault and post-fault conditions. FPGA Virtex-5 is used for hardware implementation of the control algorithm. The results validate the improvement in output voltage both quantitatively and qualitatively.
引用
收藏
页码:427 / 437
页数:11
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