用于线路频率隔离应用的极包负等效磁感结构变压器

Q1 Engineering
Yuanxi Chen;Weinong Fu;Shuangxia Niu;Hongjian Lin
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引用次数: 0

摘要

依赖隔离的应用要求变压器具有高效率、低磁化电流和抗直流偏置能力。千赫兹平面负磁阻结构具有磁频变化特性,可降低基本元件的磁阻,从而实现这一目标。然而,这种设计无法应用于低频变压器,因为其有限的自感和品质因数会导致高损耗。为解决这一问题,提出了一种极包负等效磁阻(PNEMR)结构。所提出的设计采用了一种包裹在磁极周围的铜基 PNEMR 结构,以增强基本磁通量并抑制磁通量的直流分量。因此,磁化电流减小,隔离变压器也不易受到直流偏压的影响。建议的设计可同时提高变压器的抗直流偏磁能力、效率和功率因数。为了验证所提设计的有效性,我们构建了一个 10 kW C 芯 PNEMR 结构变压器,用于依赖隔离的应用,并与通用结构和平面负磁阻结构变压器进行了比较。结果表明,在满负荷条件下,基于 PNEMR 结构的变压器可将效率和功率因数分别从 96.1% 和 0.87 提高到 96.6% 和 0.93。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Pole-Wrapped Negative Equivalent Magnetic Reluctance Structure-Based Transformer for Line-Frequency Isolation-Dependent Applications
Isolation-dependent applications require a transformer with high efficiency, low magnetizing current, and anti-DC bias capability. The kilohertz planar negative magnetic reluctance structure is used to achieve this target with its magnetic-frequency variation property, which reduces the magnetic reluctance of the fundamental component. However, this design cannot be applied to low-frequency transformers owing to the high loss caused by its limited self-inductance and quality factor. To solve this problem, a pole-wrapped negative equivalent magnetic reluctance (PNEMR) structure is presented. The proposed design employed a copper-based PNEMR structure wrapped around the magnetic poles to enhance the fundamental flux and suppress the DC component of flux. Accordingly, the magnetizing current is reduced, and the isolation transformer is less susceptible to the DC bias. The proposed design can simultaneously improve the anti-DC magnetic bias capability, efficiency, and power factor of the transformers. To verify the effectiveness of the proposed design, a 10 kW C-core PNEMR structure-based transformer for isolation-dependent applications was constructed and compared to the generalized structures and transformers with planar negative magnetic reluctance structures. Results indicate that the PNEMR-based transformer can enhance the efficiency and power factor from 96.1% and 0.87 to 96.6% and 0.93, respectively, under full load conditions.
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来源期刊
Chinese Journal of Electrical Engineering
Chinese Journal of Electrical Engineering Energy-Energy Engineering and Power Technology
CiteScore
7.80
自引率
0.00%
发文量
621
审稿时长
12 weeks
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