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Simulation of single phase photovoltaic system based on fuzzy logic control with multilevel inverter

机译:基于多级逆变器模糊逻辑控制的单相光伏发电系统仿真

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To control the solar power, reliability and stability are two main challenges. In addition, the total harmonic distortion (THD) must be within limits for optimal operation. In an inverter, the harmonics are produced during the conversion of DC power to AC power, which will affect the power electronic devices. Therefore, to overcome such challenges in high voltage and high power systems multilevel inverter (MLI) topology is more useful. Such type of inverters uses various DC voltage levels to generate the stepped AC at its output, approaching the sinusoidal shape. The cascaded H-bridge, capacitor-clamped, and diode-clamped are the most commonly used multilevel inverters topologies. For photovoltaic (PV) usage, cascaded H-bridge (CHB) MLI is more adaptive among the three topologies, where for each H-bridge unit; each PV model behaves as an isolated DC source. This paper specifically focused on the simulation of PV power as a source to the system and displayed the potential of a single-phase 11-level CHB inverter. For switching the IGBT devices, sinusoidal pulse width modulation (SPWM) is applied. Moreover, the fuzzy logic control (FLC) is introduced to improve the power quality. FLC reduce the THD via finding the appropriate set of IGBT switch signals. To show the improvement in the operation and reduction in the complex harmony signal effects of the CHB 11-level inverter, the proposed system is designed in Matlab/Simulink software. Finally, the results show that the dynamic behavior of the FLC is much better than the traditional proportional integral derivative (PID) controller.
机译:为了控制太阳能,可靠性和稳定性是两个主要挑战。另外,总谐波失真(THD)必须在最佳操作的限制之内。在逆变器中,在直流电转换为交流电的过程中会产生谐波,这会影响电力电子设备。因此,克服高压和高功率系统中的此类挑战,多电平逆变器(MLI)拓扑更为有用。这种类型的逆变器使用各种DC电压电平在其输出处生成接近正弦曲线形状的步进AC。级联的H桥,电容钳位和二极管钳位是最常用的多电平逆变器拓扑。对于光伏(PV)的使用,级联的H桥(CHB)MLI在三种拓扑中更自适应,其中每个H桥单元;每个PV模型都表现为隔离的DC源。本文专门针对作为系统电源的PV功率进行仿真,并展示了单相11级CHB逆变器的潜力。为了切换IGBT器件,应用了正弦脉冲宽度调制(SPWM)。此外,引入了模糊逻辑控制(FLC)以改善电能质量。 FLC通过找到适当的IGBT开关信号集来降低THD。为了显示CHB 11电平逆变器在操作方面的改进和在降低复杂和声信号影响方面的效果,该系统是在Matlab / Simulink软件中设计的。最后,结果表明,FLC的动态行为比传统的比例积分微分(PID)控制器好得多。

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