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首页> 外文期刊>Advances in Electrical and Electronic Engineering >Switching Losses Analysis of a Constructed Solar DC-DC Static Boost Converter
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Switching Losses Analysis of a Constructed Solar DC-DC Static Boost Converter

机译:构造太阳能直流静态升压转换器的开关损耗分析

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摘要

The DC-DC converter is majorly used in several renewable energy applications. It is usually relevant in a hard-switching operating mode at the cost of increasing power losses and declining efficiency. Power losses are comprised of switching losses and conduction losses, which affect the reliability and speed up the aging of the switch. Therefore, soft-switching techniques are inescapable to reduce electromagnetic interference EMI, minimize losses, and enhance power conversion efficiency. Among the sundry techniques of soft-switching, passive snubbers are uncomplicated and vigorous, besides it has been spotlighted as a finer alternative compared to the active snubbers that involve extra switches and an additional control circuit. This paper investigates the power loss of a conventional solar DC-DC static converter designed and controlled through Maximum Power Point Tracking (MPPT). It evaluates the switch's temperature in the hard-switching operating mode. Besides, this paper presents a new research initiative that aims to allow a zero switching and stabilizing the temperature of the switch through a novel approach of design for RLD and RCD snubber cells. This new design allows the switch to achieve soft-switching, by abolishing the voltage stress, minimizing the power losses, and stabilizing the junction temperature. This snubber has a simple structure with a few components and ease of control, which helps to upgrade the power conversion efficiency through controlling the high voltage and current stress in the switch. In this treatise, elements of the snubber are designed and adjusted for maximum reliability through the simulation in OrCAD environment. Furthermore, the effectiveness of the model is approved through experimental results on a 1600 W conventional boost to validate the proposal.
机译:DC-DC转换器主要用于多种可再生能源应用。它通常以硬度切换的操作模式与增加功率损耗和效率下降的成本相关。功率损耗包括开关损耗和传导损耗,这会影响可靠性并加快开关的老化。因此,软切换技术是不可避免的,以减少电磁干扰EMI,最小化损耗,提高功率转换效率。在软切换的阳光技术中,被动缓冲器并不复杂和剧烈,除了与涉及额外开关的有源缓冲器和额外的控制电路的有源缓冲器相比,它已经被聚焦为更精细的替代品。本文调查了通过最大功率点跟踪(MPPT)设计和控制的传统Solar DC-DC静态转换器的功率损耗。它评估了在硬开关操作模式下的开关的温度。此外,本文介绍了一种新的研究举措,旨在通过对RLD和RCD缓冲细胞的新颖方法进行零切换和稳定开关的温度。这种新设计允许开关通过取消电压应力,最小化功率损耗并稳定结温来实现软切换。该缓冲器具有简单的结构,具有少量组件和易于控制,有助于通过控制开关中的高电压和电流应力来升级电源转换效率。在这项论述中,通过在orcad环境中的仿真中设计和调整缓冲器的元素,以获得最大可靠性。此外,通过对1600 W常规提升的实验结果批准了模型的有效性,以验证该提案。

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