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光伏发电技术 ★ 5.0

多输出双开关反激式辅助电源的共模噪声建模与抑制

CM Noise Modeling and Reduction for Multi-Output Dual-Switch Flyback Auxiliary Power Supplies

作者 Dingkun Zhao · Xuejun Pei · Yi Yu · Jinzhou Yan
期刊 IEEE Transactions on Industry Applications
出版日期 2024年10月
技术分类 光伏发电技术
相关度评分 ★★★★★ 5.0 / 5.0
关键词 多输出反激变换器 共模模型 电磁干扰 插入电容法 光伏逆变器
语言:

中文摘要

多输出双开关反激式转换器作为辅助电源,在高压大功率光伏(PV)逆变器中被广泛应用,为电子电路供电。为维持独立供电,多个输出之间需要进行隔离。然而,在将多输出反激式转换器作为一个独立系统建立共模(CM)模型时,若忽略多个输出之间的隔离,该模型将无法准确描述逆变器系统内的共模电磁干扰(EMI)发射特性。为解决这一问题,本文提出了一种多输出反激式转换器的共模模型,该模型能有效表征其作为逆变器系统辅助电源时的共模电磁干扰发射特性。首先,利用变压器中用于隔离多个输出的集总电容模型,建立了多输出双开关反激式辅助电源的完整共模噪声路径模型。鉴于变压器共模模型中存在大量集总电容,本文提出了“插入电容法”来准确可靠地提取这些电容。随后,引入并调整用于抑制共模噪声的电容,以产生反向提取电流,抵消所产生的共模噪声。所建立的共模模型准确描述了共模电磁干扰从反激式辅助电源通过多个输出路径传输至光伏逆变器其他部分的过程。该方法的有效性在光伏逆变器实验平台上得到了验证。

English Abstract

The multi-output dual-switch flyback converter is extensively used as an auxiliary power supply in high-voltage and high-power photovoltaic (PV) inverters, providing power to electronic circuits. To maintain an independent power supply, isolation between the multiple outputs is necessary. However, when developing a common-mode (CM) model for the multi-output flyback converter as an independent system, neglecting the isolation between the multiple outputs renders the model incapable of accurately describing the CM electromagnetic interference (EMI) emission characteristics within the inverter system. To resolve this issue, this paper proposes a CM model for the multi-output flyback converter that effectively represents its CM EMI emission characteristics when used as an auxiliary power supply in an inverter system. First, a complete CM noise path model for the multi-output dual-switch flyback auxiliary power supply is established using the lumped capacitance model for isolating multiple outputs in transformers. Given the numerous lumped capacitors in the transformer's CM model, the “insertion capacitance method” has been proposed to accurately and reliably extract these capacitances. Subsequently, a capacitance designed for CM noise mitigation is implemented and adjusted to create a reverse extraction current, which offsets the generated CM noise. The established CM model accurately characterizes the transmission of CM EMI from the flyback auxiliary power supply through multiple output paths to other parts of the PV inverter. The effectiveness of this approach is validated on an experimental platform of a PV inverter.
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SunView 深度解读

从阳光电源光伏逆变器业务视角来看,这项研究针对多路输出双管反激式辅助电源的共模噪声建模与抑制技术,具有重要的工程应用价值。在我们的高压大功率光伏逆变器产品中,辅助电源为控制电路、驱动电路和保护电路提供独立供电,其电磁兼容性能直接影响整机的可靠性和并网质量。

该论文的核心贡献在于建立了考虑多路输出隔离特性的完整共模噪声传播模型。传统建模方法忽略输出间隔离,导致无法准确预测辅助电源通过多个输出路径向逆变器其他部分传导的共模干扰。论文提出的集总电容模型和"插入电容法"为精确提取变压器寄生参数提供了可行方案,这对我们优化逆变器EMI设计具有直接指导意义。特别是通过设计补偿电容产生反向抽取电流来抵消共模噪声的方法,为被动式噪声抑制提供了新思路,有望降低滤波器成本和体积。

从技术成熟度看,该方法已在光伏逆变器实验平台上得到验证,具备较好的工程化基础。对于阳光电源而言,应用机遇体现在:可提升逆变器EMC性能裕量,缩短产品认证周期;优化辅助电源设计,提高功率密度;在储能变流器等多电源系统中同样适用。

潜在挑战包括:不同功率等级产品的参数提取工作量较大,需要建立标准化流程;补偿电容的参数优化需要与具体产品结构深度结合;在极端环境下补偿效果的长期稳定性需进一步验证。建议将此技术纳入下一代逆变器平台的EMC设计工具链,形成差异化竞争优势。