Department of Electrical and Electronic Engineering, Dhaka University of Engineering & Technology, Gazipur, Bangladesh.
UM Power Energy Dedicated Advanced Centre (UMPEDAC), HICoE, Wisma R&D, University of Malaya, Kuala Lumpur, Malaysia.
PLoS One. 2024 Aug 15;19(8):e0306906. doi: 10.1371/journal.pone.0306906. eCollection 2024.
High conversion ratio dc-dc converters have received significant attention in renewable energy systems, primarily due to their necessary high-gain characteristics. This research proposes a high step-up ratio full-bridge resonant cascaded (FBRC) dc-dc converter designed for use in photovoltaics (PV), fuel cells (FC), electric vehicles (EV), and other low-voltage output energy sectors to achieve high voltage gain. This converter contains a full-bridge cell with a boost input inductor, a diode-capacitor cascaded stage that replaces the transformer as a voltage multiplier and an inductor-capacitor (LC) parallel-series resonant network across the FB terminal. One of the strategic features of the converter is its high voltage step-up characteristic combined with lower duty cycle operation that limits the maximum current through the active devices, making it particularly suitable for systems that generate low output voltage. In addition, zero-voltage switching (ZVS) is achieved during the turn-off and turn-on operation of the FB switches from 25% to full load, thereby lessening the switching losses. Moreover, the diminished necessity for passive components and the decreased voltage stress on both active and passive devices lead to the use of smaller and more cost-effective components. The theoretical analysis of the proposed converter is validated using a 500 W laboratory-scale prototype wherein high-performance SiC-based MOSFETs have been utilized as switching devices. It offers reduced ripples, with input current ripple at 5% and output voltage ripple at 0.76%. When the load is 400 W and 60 V as the input voltage, the maximum efficiency is found 95.8% at 400 V output voltage. The proposed dc-dc converter, with its high voltage gain and reduced component stress, shows significant promise for application in renewable energy systems.
高转换率直流-直流转换器在可再生能源系统中受到了广泛关注,主要是因为它们需要具有高增益特性。本研究提出了一种用于光伏(PV)、燃料电池(FC)、电动汽车(EV)和其他低电压输出能源领域的高升压比全桥谐振级联(FBRC)直流-直流转换器,以实现高电压增益。该转换器包含一个带有升压输入电感的全桥单元、一个二极管-电容级联级,该级联级取代了变压器作为电压倍增器,以及一个跨 FB 端的电感-电容(LC)并联-串联谐振网络。该转换器的一个战略特点是其高电压升压特性与较低的占空比操作相结合,限制了通过有源器件的最大电流,使其特别适合生成低输出电压的系统。此外,在 FB 开关的关断和导通操作期间实现了零电压开关(ZVS),从而减少了开关损耗。此外,无源元件的需求减少以及有源和无源器件上的电压应力降低,导致使用更小和更具成本效益的元件。使用一个 500 W 的实验室规模原型对所提出的转换器进行了理论分析,其中使用了高性能 SiC 基 MOSFET 作为开关器件。它提供了减小的纹波,输入电流纹波为 5%,输出电压纹波为 0.76%。当负载为 400 W 且输入电压为 60 V 时,在 400 V 输出电压下,最大效率为 95.8%。所提出的直流-直流转换器具有高电压增益和降低的元件应力,在可再生能源系统中有很大的应用前景。