Title :
Modeling, Impedance Design, and Efficiency Analysis of Quasi-
Source Module in Cascaded Multilevel Photovoltaic Power System
Author :
Dongsen Sun ; Baoming Ge ; Xingyu Yan ; Daqiang Bi ; Hao Zhang ; Yushan Liu ; Abu-Rub, Haitham ; Ben-Brahim, L. ; Fang Zheng Peng
Author_Institution :
Sch. of Electr. Eng., Beijing Jiaotong Univ., Beijing, China
Abstract :
The quasi-Z source (qZS) cascaded multilevel inverter (CMI) (qZS-CMI) presents attractive advantages in application to photovoltaic (PV) power system. Each PV panel connects to an H-bridge qZS inverter (qZSI) to form a power generation module. The distributed maximum power point tracking and all modules´ dc-link peak voltage balance can be achieved. However, it is the same with the conventional CMI that the second-harmonic (2ω) voltage and current ripples exist in each qZSI module. It is crucial for a qZS-CMI to design the reasonable qZS network parameters to limit the ripples within a desired range. This paper proposes an analytic model to accurately calculate the 2ω voltage and current ripples of each qZSI module. A qZS impedance design method based on the built model is proposed to limit the 2ω ripples of dc-link voltage and inductor current. Simulated and experimental results through using the designed 1.5-kW prototype validate the proposed analytic model and the design method. Furthermore, this paper analyzes all of the operating states for a qZSI module and calculates the power loss. The measured efficiency from the prototype verifies the theoretical calculation, and the qZS-CMI-based grid-tie PV power system is tested in practical.
Keywords :
invertors; maximum power point trackers; photovoltaic power systems; power grids; DC-link peak voltage balance; H-bridge qZS inverter; PV power system; cascaded multilevel photovoltaic power system; distributed maximum power point tracking; inductor current; power 1.5 kW; power generation module; power loss; qZS impedance design method; qZS network parameters; qZS-CMI; quasi-Z source cascaded multilevel inverter; quasi-Z source module efficiency analysis; quasi-Z source module impedance design; Analytical models; Capacitors; Impedance; Inductors; Inverters; Mathematical model; Power systems; Circuit modeling; multilevel inverter; photovoltaic (PV) power generation; quasi- $Z$ source (qZS) inverter;
Journal_Title :
Industrial Electronics, IEEE Transactions on
DOI :
10.1109/TIE.2014.2304913