In this paper, the design of a proportional integral controller (PIC) plus fuzzy logic controller (FLC) for the negative output elementary super lift Luo converter (NOESLLC) operated in discontinuous conduction mode (...In this paper, the design of a proportional integral controller (PIC) plus fuzzy logic controller (FLC) for the negative output elementary super lift Luo converter (NOESLLC) operated in discontinuous conduction mode (DCM) is presented. In spite of the many benefits viz. the high voltage transfer gain, the high efficiency, and the reduced inductor current and the capacitor voltage ripples, it natured with non-minimum phase. This characteristic makes the control of NOESLLC cumbersome. Any attempt of direct controlling the output voltage may erupt to instability. To overcome this problem, indirect regulation of the output voltage based on the two-loop controller is devised. The savvy in the inductor current control improves the dynamic response of the output voltage. The FLC is designed for the outer (voltage) loop while the inner (current) loop is controlled by the PIC. For the developed ?19.6 V NOESLLC, the dynamic performances for different perturbations (line, load and component variations) are obtained for PIC plus FLC and compared with PIC plus PIC. The study of two cases is performed at various operating regions by developing the MATLAB/Simulink model.展开更多
基于断续模式串并联(Discontinuous Current Mode LCC,简称DCM LCC)谐振变换器的数学模型,提出了LCC谐振变换器在DCM下的优化控制方法的数字化控制程序实现,使原来断续的谐振电流达到了临界断续的工作模态。根据LCC谐振变换器数学模型...基于断续模式串并联(Discontinuous Current Mode LCC,简称DCM LCC)谐振变换器的数学模型,提出了LCC谐振变换器在DCM下的优化控制方法的数字化控制程序实现,使原来断续的谐振电流达到了临界断续的工作模态。根据LCC谐振变换器数学模型中关于临界断续频率的公式,利用现代高速数字化控制芯片,实时采样电路的运行状态,在此基础上以临界断续频率为上限,调整电路工作频率,实现了优化控制方式下的调频调压。在搭建的实验样机上完成了优化控制方式的实验,其结果验证了控制方法的可行性。展开更多
文摘In this paper, the design of a proportional integral controller (PIC) plus fuzzy logic controller (FLC) for the negative output elementary super lift Luo converter (NOESLLC) operated in discontinuous conduction mode (DCM) is presented. In spite of the many benefits viz. the high voltage transfer gain, the high efficiency, and the reduced inductor current and the capacitor voltage ripples, it natured with non-minimum phase. This characteristic makes the control of NOESLLC cumbersome. Any attempt of direct controlling the output voltage may erupt to instability. To overcome this problem, indirect regulation of the output voltage based on the two-loop controller is devised. The savvy in the inductor current control improves the dynamic response of the output voltage. The FLC is designed for the outer (voltage) loop while the inner (current) loop is controlled by the PIC. For the developed ?19.6 V NOESLLC, the dynamic performances for different perturbations (line, load and component variations) are obtained for PIC plus FLC and compared with PIC plus PIC. The study of two cases is performed at various operating regions by developing the MATLAB/Simulink model.
文摘基于断续模式串并联(Discontinuous Current Mode LCC,简称DCM LCC)谐振变换器的数学模型,提出了LCC谐振变换器在DCM下的优化控制方法的数字化控制程序实现,使原来断续的谐振电流达到了临界断续的工作模态。根据LCC谐振变换器数学模型中关于临界断续频率的公式,利用现代高速数字化控制芯片,实时采样电路的运行状态,在此基础上以临界断续频率为上限,调整电路工作频率,实现了优化控制方式下的调频调压。在搭建的实验样机上完成了优化控制方式的实验,其结果验证了控制方法的可行性。