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Augmented buck converter design using resonant circuits for fast transient recovery

机译:采用谐振电路的增强型降压转换器设计可实现快速瞬态恢复

摘要

High-performance buck converters are often required in modern power electronic applications. An augmented buck converter (a main buck converter with augmentation circuits) can achieve fast transient recovery and small output voltage deviation. Compared with other augmentation circuits, a resonant augmentation circuit offers potential electromagnetic interference reduction due to the relatively low didt value and compacts the circuit through a reduced inductance for resonance. In this paper, the performance analysis of an augmented buck converter constructed with the resonant circuit are described in detail in terms of voltage-deviation band and power loss. A circuit design and control principle is also proposed for achieving the required voltage deviation for a given transient-detection delay. A 12-to-5-V converter prototype is built to verify the analysis and effectiveness of the proposed methodology. It is demonstrated that the voltage deviation is reduced from 360 to 200 mV using the proposed resonant augmentation circuits and control scheme. The efficiency study shows that the power loss varies from 0.02 to 0.72 W, when the repetition frequency of 5-to-10-A transients changes from 100 to 5 kHz.
机译:在现代电力电子应用中通常需要高性能的降压转换器。增强型降压转换器(具有增强电路的主降压转换器)可以实现快速的瞬态恢复和小的输出电压偏差。与其他增强电路相比,谐振增强电路由于相对较低的杂散值而可以潜在地减小电磁干扰,并通过减小的电感来压缩电路以实现谐振。在本文中,从电压偏差带和功率损耗的角度详细描述了由谐振电路构成的增强型降压转换器的性能分析。还提出了一种电路设计和控制原理,用于在给定的瞬态检测延迟条件下实现所需的电压偏差。构建了一个12V至5V的转换器原型,以验证所提出方法的分析和有效性。结果表明,使用提出的谐振增强电路和控制方案,电压偏差从360 mV减小到200 mV。效率研究表明,当5至10A瞬态的重复频率从100 kHz变为5 kHz时,功率损耗在0.02至0.72 W之间变化。

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