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Development of monolithic switched-capacitor power converters for self-powered microsystems.

机译:用于自供电微系统的单片式开关电容器功率转换器的开发。

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摘要

Modern electronics continues to push past boundaries of integration and functional density toward elusive, completely autonomous, self-powered microsystems. As systems continue to shrink, however, less energy is available on board, leading to short device lifetimes (run-time or battery life). Extended battery life is particularly advantageous in the systems with limited accessibility, such as biomedical implants and structure-embedded micro-sensors. The power management process usually requires compact and efficient power converters to be embedded in these microsystems. This dissertation introduces switched-capacitor (SC) power converter designs that make all these techniques realizable on silicon.;Four different integrated SC power converters with multiple control schemes are designed here to provide low-power high-efficient power sources. First, a monolithic step-down power converter with subthreshold z-domain digital pulse-width modulation (DPWM) controller is proposed for ultra-low power microsystems. The subthreshold design significantly reduces the power dissipation in the controller. Second, an efficient monolithic master-slave complementary power converter with a feedback controller that purely operates in subthreshold operation region is discussed to tailor for the aforementioned ultra-low power applications. Third, we introduce an efficient monolithic step-down SC power stage with multiple-gain control and on-chip capacitor sizing for self-powered microsystems. The multiple-gain control helps the converter to constantly maintain high efficiency over a large input/output range. The size-adjustable pumping capacitors allow the output voltage to be regulated at different desired levels, with a constant 50% duty ratio. The monolithic implementations in these three integrated CMOS power converters effectively suppress noise and glitches caused by parasitic components due to bonding, packaging and PCB wiring. Fourth, an efficient step-up and step-down SC power converter with multiple-gain closed-loop controller is presented. The measurements and simulation results in these four power converters demonstrate the techniques proposed in this research. The approaches presented in this dissertation are evidently viable for realizing compact and high efficient SC power converters, contributing to next generation power-efficient microsystems designs.
机译:现代电子技术不断超越集成和功能密度的界限,走向难以捉摸的,完全自治的,自供电的微系统。但是,随着系统的不断缩小,板上可用的能量越来越少,从而导致设备寿命缩短(运行时间或电池寿命)。延长电池寿命在可访问性有限的系统(例如生物医学植入物和内置结构的微传感器)中特别有利。电源管理过程通常需要将紧凑而高效的电源转换器嵌入这些微系统中。本论文介绍了使所有这些技术都可以在硅上实现的开关电容器(SC)电源转换器设计。这里设计了四个具有多种控制方案的集成SC电源转换器,以提供低功率高效电源。首先,针对超低功耗微系统,提出了具有亚阈值z域数字脉宽调制(DPWM)控制器的单片式降压功率转换器。亚阈值设计大大降低了控制器的功耗。其次,讨论了一种具有纯粹在亚阈值工作区域工作的反馈控制器的高效单片主从互补功率转换器,以适应上述超低功率应用。第三,我们为自供电微系统引入了高效的单片降压SC功率级,具有多增益控制和片上电容器尺寸。多增益控制有助于转换器在较大的输入/输出范围内不断保持高效率。尺寸可调的抽运电容器允许以恒定的50%占空比将输出电压调节到不同的期望水平。这三个集成式CMOS功率转换器中的单片实施有效地抑制了由于键合,封装和PCB布线引起的寄生元件所引起的噪声和毛刺。第四,提出了一种具有多增益闭环控制器的高效升压和降压SC功率转换器。这四个功率转换器的测量和仿真结果证明了本研究中提出的技术。本文提出的方法对于实现紧凑,高效的SC功率转换器显然是可行的,有助于下一代节能微系统的设计。

著录项

  • 作者

    Su, Ling.;

  • 作者单位

    The University of Arizona.;

  • 授予单位 The University of Arizona.;
  • 学科 Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 169 p.
  • 总页数 169
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:37:58

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