Sakthiram T, Yogesh L, Srikanth Rahul, Prabhakar M, Varesi Kazem
School of Electrical Engineering, Vellore Institute of Technology, Chennai Campus, Vellore, India.
Centre for Smart Grid Technologies, Vellore Institute of Technology, Chennai Campus, Vellore, India.
Sci Rep. 2025 Jan 2;15(1):216. doi: 10.1038/s41598-024-84015-w.
This research paper presents a high-gain DC-DC converter with ultra-step-up voltage gain capability. The proposed converter is synthesized from a two-phase interleaved boost converter (IBC), and its voltage gain is doubled by adopting a voltage lift capacitor. To enhance its voltage gain capability, a floating capacitor-based gain extension cell is adopted subsequently. This cell yields a voltage gain that is cubed times the output voltage obtained from a classical boost converter (CBC). By cascading the two stages, the voltage gain of the proposed converter is enhanced to quartic times (4th power) that of the CBC. The proposed gain extension concept is validated by conducting practical experiments on a 16 V to 400 V, 150 W prototype version. Practically, the prototype converter delivers 150 W to the load and operates at a full-load efficiency of 92.7% when its switches are operated at safe duty ratio values. Under dynamic conditions, the proposed converter regulates the output voltage to 400 V quickly over a wide range of input voltage and load current variations; the overshoots and undershoots are also negligible. The maximum voltage gain of the proposed converter momentarily increases to 37 when the input voltage is drastically reduced to 10.8 V while the switches are still operated at safe duty ratio values. The voltage stress on the semiconductor devices is only a fraction of the output voltage due to the hybrid voltage gain extension technique. The input current is also ripple-free as the switches in the IBC structure are always operated at a duty ratio of 50%, and only the third switch is controlled to meet the required voltage gain. The salient features of the proposed converter are clearly highlighted by comparing it with several converters that possess quadratic, cubic, and quartic voltage gain functions. The common-ground connection between the source and the load in the proposed converter is an added preferable feature for PV applications.
本研究论文提出了一种具有超升压电压增益能力的高增益直流-直流转换器。所提出的转换器由两相交错式升压转换器(IBC)合成,并且通过采用一个升压电容使其电压增益翻倍。为了增强其电压增益能力,随后采用了基于浮动电容的增益扩展单元。该单元产生的电压增益是经典升压转换器(CBC)输出电压的立方倍。通过将这两级级联,所提出的转换器的电压增益提高到了CBC的四次方倍。通过在一个16V至400V、150W的原型版本上进行实际实验,验证了所提出的增益扩展概念。实际上,当开关以安全占空比值运行时,原型转换器向负载提供150W功率,满载效率为92.7%。在动态条件下,所提出的转换器在很宽的输入电压和负载电流变化范围内能快速将输出电压调节到400V;过冲和下冲也可忽略不计。当输入电压急剧降至10.8V且开关仍以安全占空比值运行时,所提出的转换器的最大电压增益瞬间增至37。由于采用了混合电压增益扩展技术,半导体器件上的电压应力仅为输出电压的一小部分。输入电流也无纹波,因为IBC结构中的开关始终以50%的占空比运行,仅控制第三个开关以满足所需的电压增益。通过将所提出的转换器与几种具有二次、三次和四次电压增益函数的转换器进行比较,清楚地突出了其显著特点。所提出的转换器中源极与负载之间的共地连接是光伏应用中一个额外的可取特性。