面向未来微处理器的新型多交错转换器结构

D. Garinto
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引用次数: 4

摘要

在低电压和大电流应用中,特别是在未来的微处理器中,高效、高功率密度、快速瞬态响应和低成本的稳压器是一个严峻的挑战。如前所述,多相交错降压变换器由于占空比和开关频率的技术冲突影响了效率,无法满足功率挑战。为了消除技术冲突,本文提出了采用多重交错技术的新型转换器结构。采用多重交错技术的多相降压变换器比采用交错技术的多相降压变换器性能更好,因为多重交错技术可以改善电流纹波抵消效果。此外,多重交错技术可以延长占空比,在不增加每个单元电流纹波的情况下改善瞬态响应,并且可以在低开关、栅极驱动和体二极管损耗的情况下提高开关频率。损耗分析和仿真结果表明,所提出的转换器架构为解决功率挑战提供了机会。因此,可以实现在不增加功耗的情况下扩展摩尔定律
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New Converter Architectures with Multi-interleaving Technique for Future Microprocessors
In low voltage and high current application, specially for future microprocessors, there is a serious challenge to present voltage regulators with high efficiency, high power density, fast transient response and low-cost. As previously identified, multiphase interleaving buck converter is not enough to meet the power challenges because the technical conflicts of duty cycle and switching frequency impair the efficiency. In this paper, new converter architectures with multi-interleaving technique are proposed to remove the technical conflicts. Multiphase buck converters with multi-interleaving technique perform better than with interleaving technique because the multi-interleaving technique can improve current ripple cancellation effect. Moreover, the multi-interleaving technique can extend duty cycle, can improve transient response without increasing current ripple in each cell, and can raise the switching frequency with low switching, gate drive and body diode losses. Losses analysis and simulation results show that the proposed converter architectures provide an opportunity to resolve the power challenges. As a result, extending Moore's Law without increasing power consumption can be realized
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