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Power management techniques for micropower energy scavenging.

机译:用于微功耗节能的电源管理技术。

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摘要

Advances in semi-conductor technology have led to the reduction in size and power consumption of microelectronic circuits.;With the miniaturization and increased efficiency of these circuits there are more potential applications for wireless sensor networks and portable electronic equipment. These applications include structural integrity and environment monitoring such as aircraft wing health monitoring and forest fire and natural disaster detection. Biomedical devices have also benefited from the improved size and performance of microelectronics.;This thesis studies power management techniques to enable efficient energy scavenging at micropower input power levels from a number of power sources. These sources range from temperature gradients, radio frequency (RF) radiation, solar power, and mechanical vibrations. The scavenged energy is used to improve the performance and distribution of wireless sensors and devices by supplementing or potentially replacing the local power supply of the sensor or device.;The major focus of this thesis is to combine source characterization, power management theory, detailed power loss analysis, and ultra-low power circuit design to maximize the extraction of energy from source and deliver it to the wireless sensor or device. The resistor emulation techniques from power factor correction (PFC) are leveraged to load an RF rectifying antenna (rectenna) such that maximum power point tracking (MPPT) of the rectenna is achieved naturally. An application specific integrated circuit (ASIC) is developed to implement this technique after experimental verification with commercially available discrete circuitry. Experimental results show efficient energy scavenging at power levels below 2 microwatts. In addition to resistor emulation, synchronous electric charge extraction (SECE) for energy scavenging from piezoelectric generators is also investigated. The presented techniques allow for the scavenging of usable power for sensors at power levels significantly lower than previous research.
机译:半导体技术的进步导致微电子电路的尺寸和功耗的减小。随着这些电路的小型化和效率的提高,无线传感器网络和便携式电子设备的潜在应用越来越广泛。这些应用包括结构完整性和环境监控,例如飞机机翼健康监控以及森林火灾和自然灾害检测。生物医学设备还受益于微电子器件尺寸和性能的改善。;本文研究了电源管理技术,以实现从多种电源以微功率输入功率进行有效的能量清除。这些来源的范围包括温度梯度,射频(RF)辐射,太阳能和机械振动。清除的能量用于通过补充或潜在地替换传感器或设备的本地电源来改善无线传感器和设备的性能和分布。本论文的主要重点是将源特性,电源管理理论和详细的功率相结合。损耗分析和超低功耗电路设计,可最大程度地从能源中提取能量并将其传递给无线传感器或设备。利用功率因数校正(PFC)的电阻器仿真技术为RF整流天线(rectenna)加载,从而自然实现了整流天线的最大功率点跟踪(MPPT)。在使用商用分立电路进行实验验证之后,开发了一种专用集成电路(ASIC)来实施该技术。实验结果表明,在2微瓦以下的功率水平下可以有效地进行能量清除。除了电阻器仿真之外,还研究了用于从压电发电机中清除能量的同步电荷提取(SECE)。所提出的技术允许以明显低于先前研究的功率水平来清除传感器的可用功率。

著录项

  • 作者

    Paing, Thurein Soe.;

  • 作者单位

    University of Colorado at Boulder.;

  • 授予单位 University of Colorado at Boulder.;
  • 学科 Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 200 p.
  • 总页数 200
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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