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首页> 外文期刊>IEEE Transactions on Power Electronics >Techniques for Analyzing and Reducing Voltage Conversion Ratio Transition Losses of Capacitive DC–DC Converters for Fast-DVS-Enabled Systems
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Techniques for Analyzing and Reducing Voltage Conversion Ratio Transition Losses of Capacitive DC–DC Converters for Fast-DVS-Enabled Systems

机译:用于分析和降低电容式DC-DC转换器的电压转换比转换器的电压转换比转换器的技术,用于快速DVS的系统

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摘要

Switched-capacitor (SC) converters have numerous advantages in supplying fast and fine-grained voltages to microprocessors. However, the losses associated with the voltage conversion ratio (VCR) transition, which has not been investigated in detail, may cause a significant efficiency drop. This letter presents a simple and accurate model for estimating energy losses during the VCR transition of many-ratio SC dc-dc converters. The loss model begins with the assumption that the charge redistribution among flying and load capacitors is the leading cause for the VCR transition losses. The analysis of different types of many-ratio SC dc-dc converters shows that the model is consistent with the simulated results. For more verification, a test chip containing a converter with an algorithmic voltage-feed-in topology was fabricated in a 0.18-mu m CMOS process, with the measured results also in good agreement with the model outcomes. Furthermore, to mitigate the VCR transition loss, several techniques are discussed and analyzed based on the presented model. In particular, the SC converter with flying capacitor reordering method shows 28.9% conversion efficiency improvement over the conventional SC converter with negligible circuit overhead.
机译:开关电容(SC)转换器在向微处理器提供快速和细粒度的电压方面具有许多优点。然而,与尚未详细研究的电压转换比(VCR)转变相关的损失可能导致显着的效率下降。这封信提出了一种简单准确的模型,用于在多比率SC DC-DC转换器的VCR转换期间估算能量损失。损耗模型始于假设飞行和负载电容器之间的电荷再分布是VCR转换损耗的主要原因。对不同类型的多功率SC DC-DC转换器的分析表明,该模型与模拟结果一致。有关更多验证,在0.18-mu M CMOS工艺中制造了包含具有算法电压拓扑的转换器的测试芯片,测量结果也与模型结果吻合良好。此外,为了减轻VCR转换损失,基于所呈现的模型讨论和分析了几种技术。特别是,具有飞行电容器重新排序方法的SC转换器显示了传统SC转换器的转换效率改进28.9%,电路开销可忽略不计。

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