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Modified Phase-Shifted PWM for Cascaded Half-Bridges of Photovoltaic Application

机译:用于光伏应用级联半桥的改装相移PWM

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摘要

Photovoltaic power plants are generally far away from loads such as cities and industrial zones. Moreover, long-distance power transmission for renewable energy will become an inevitable trend in the future. Cascaded dc & x2013;dc converters can reach a high voltage to collect and transport photovoltaic energy, with advantages such as lower costs and larger capacities. However, the input power mismatch may cause a large amount of switching harmonic components, resulting in dc-link voltage fluctuations, which will not only increase the volume of filter components, but also cause unreliable circuit breaker actions. To solve the aforementioned problems, a hierarchical phase-shifted pulse width modulation (HPS-PWM) is proposed. By rationally grouping and layering the modules, low-order harmonics generated by the switching process of the dc & x2013;dc converter can be eliminated. The fluctuation of dc-link voltage can be suppressed by HPS-PWM, according to simulation results. When the number of modules is 27 and 81, the weighted total harmonic distortion (WTHD) of the HPS-PWM method can be reduced by more than 60 & x0025; compared to the phase-shifted tracking pulse width modulation (PST-PWM) and fault tolerant adaptive phase-shifted pulse width modulation (FTA-PS-PWM). Finally, experiments verify the performance of HPS-PWM, agreeing with the simulation results.
机译:光伏发电厂通常远离诸如城市和工业区的负荷。此外,可再生能源的长途电力传输将成为未来不可避免的趋势。级联DC&X2013;直流转换器可以达到高电压以收集和运输光伏能量,具有较低的成本和更大的容量等优点。然而,输入功率不匹配可能导致大量的开关谐波分量,导致直流链路电压波动,这不仅会增加滤波器组件的体积,而且导致不可靠的断路器动作。为了解决上述问题,提出了一种层级移相脉冲宽度调制(HPS-PWM)。通过合理分组和分层模块,由DC&X2013的切换过程产生的低位谐波;可以消除DC转换器。根据仿真结果,HPS-PWM可以抑制直流链路电压的波动。当模块数为27和81时,HPS-PWM方法的加权总谐波失真(WTHD)可以减少超过60&x0025;与相移跟踪脉冲宽度调制(PST-PWM)和容错自适应相移脉冲宽度调制(FTA-PS-PWM)相比。最后,实验验证了HPS-PWM的性能,同意模拟结果。

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