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Hybrid Buck–Boost Feedforward and Reduced Average Inductor Current Techniques in Fast Line Transient and High-Efficiency Buck–Boost Converter

机译:快速线路瞬态和高效Buck-Boost转换器中的混合Buck-Boost前馈和降低平均电感器电流技术

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摘要

This paper presents a buck-boost converter with high efficiency and small output ripple to extend the battery life of portable devices. Besides, the hybrid buck-boost feedforward (HBBFF) technique is integrated in this converter to achieve fast line response. The new control topology minimizes the switching and conduction losses at the same time even when four switches are used. Therefore, over a wide input voltage range, the proposed buck-boost converter with minimum switching loss like the buck or boost converter can reduce the conduction loss through the use of the reduced average inductor current (RAIC) technique. Moreover, the HBBFF technique minimizes the voltage variation at the output of error amplifier. Consequently, a fast line transient response can be achieved with small dropout voltage at the output. Especially, the converter can offer good line and load regulations to ensure a regulated output voltage without being affected by the decreasing battery voltage. Experimental results show that the output voltage is regulated over a wide battery lifetime, and the output ripple is minimized during mode transition. The peak efficiency is 97% and the transient dropout voltage can be improved substantially.
机译:本文提出了一种具有高效率和小输出纹波的降压-升压转换器,以延长便携式设备的电池寿命。此外,混合降压-升压前馈(HBBFF)技术集成在该转换器中,以实现快速的线路响应。即使使用四个开关,新的控制拓扑也可以同时将开关损耗和传导损耗降至最低。因此,在较宽的输入电压范围内,所提出的具有最小开关损耗的降压-升压转换器(例如降压或升压转换器)可以通过使用降低的平均电感器电流(RAIC)技术来降低传导损耗。此外,HBBFF技术可将误差放大器输出端的电压变化降至最低。因此,在输出端的压差很小的情况下可以实现快速的线路瞬态响应。特别是,该转换器可以提供良好的线路和负载调节率,以确保调节后的输出电压不受电池电压下降的影响。实验结果表明,输出电压在很宽的电池寿命内得到调节,并且在模式转换期间将输出纹波最小化。峰值效率为97%,瞬态压降电压可以大大提高。

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