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Design and optimization of a low power radio for WPAN/BAN.

机译:用于WPAN / BAN的低功耗无线电的设计和优化。

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摘要

This thesis investigates the design of high data rate and low-power wireless-links for RF applications of Wireless Private Area Network (WPAN)/Body Area Network (BAN). The primary goal is to identify suitable architectures and circuits, optimization algorithms and implementations of high energy efficient wireless-links. Three key enabling technologies are investigated in this work: high energy efficient circuit design, implementation algorithms and integrated circuit fabrication. Opportunities for convergence in these three areas are considered, and low power radio architectures are presented as a principal means to exploit this anticipated convergence.;In the first part, a wireless biotelemetry system operates in vivo, which requires low power consumption for long-lasting operation, high output power for long transferable distance, and high throughput for incorporating many recording electrodes and transmitting raw brain signals. An implantable 2.4-GHz on-off keying (OOK) transmitter with high throughput and high energy efficiency for wireless biotelemetry systems has been designed in a 0.18-microm CMOS process. To balance power consumption and output power, a complementary voltage-controlled oscillator for the proposed transmitter is employed. Power consumption of the transmitter is reduced by switching the oscillator on and off to generate an OOK modulated signal. The transient delay for the transmitter is derived and applied to implement a high throughput transmitter. Rat skin-mimic emulating the implant environment such as electrical properties of the skin is used to measure the proposed transmitter in vitro. To transmit 136 Mb/s of OOK data, the transmitter consumes 3 mW of dc power and generates an output power of 14 dBm. The transmitter achieves energy efficiency of 22 pJ/bit with an associated bit error rate of 1.7 x 10-3 without using an error correction scheme.;In the second part, the low power frequency synthesis is the most important building block to implement a low power radio because it is one of the most power hungry circuits on the transceiver. This thesis presents a voltage controlled oscillator (VCO) and a time-amplifier in order to generate the low power frequency synthesis. A power-minimized LC VCO with switched biasing and triode-region MOSFETs has been designed using a 0.18-microm CMOS process. The design strategy for an LC VCO suggested an inductance selection scheme to accommodate the trade-off between power consumption and phase noise. The Figure-Of-Merit with the normalized area of the proposed VCO is -198.2 dB, which is the lowest among the latest state-of-the-art sub-1mW VCOs. A high resolution time-amplifier has been simulated based on a 0.18-microm CMOS process. Based on the proposed low power VCO and the proposed high resolution time-amplifier with the variable delay buffer, the low power frequency synthesis can be implemented near future.
机译:本文研究了用于无线专用区域网(WPAN)/主体区域网(BAN)的RF应用的高数据速率和低功率无线链路的设计。主要目标是确定合适的体系结构和电路,优化算法和高能效无线链路的实现。本文研究了三种关键的使能技术:高能效电路设计,实现算法和集成电路制造。考虑了这三个领域的融合机会,并提出了低功率无线电架构,作为利用这种预期融合的主要方法。在第一部分中,无线生物遥测系统在体内运行,需要低功耗才能长期保持稳定操作,高输出功率可实现长距离传输,以及高吞吐量,可合并许多记录电极并传输原始脑信号。用于无线生物遥测系统的具有高吞吐率和高能效的可植入2.4 GHz开关键控(OOK)发射器采用0.18微米CMOS工艺设计。为了平衡功耗和输出功率,建议的发射器采用互补的压控振荡器。通过打开和关闭振荡器以生成OOK调制信号,可以降低发射机的功耗。导出发射机的瞬态延迟,并将其应用于实现高吞吐量的发射机。模拟皮肤的植入物环境(例如皮肤的电特性)的大鼠皮肤模拟物可用于体外测量拟议的发射器。为了发送136 Mb / s的OOK数据,发送器消耗3 mW的直流功率,并产生14 dBm的输出功率。发射机无需使用纠错方案即可实现22 pJ / bit的能效和1.7 x 10-3的相关误码率。第二部分,低功率频率合成是实现低功耗的最重要组成部分功率无线电,因为它是收发器中最耗电的电路之一。本文提出了一种压控振荡器(VCO)和一个时间放大器,以产生低功率频率合成。采用0.18微米CMOS工艺设计了具有开关偏置和三极管区域MOSFET的功耗最小的LC VCO。 LC VCO的设计策略提出了一种电感选择方案,以适应功耗和相位噪声之间的折衷。拟议VCO的归一化面积的品质因数为-198.2 dB,在最新的低于1mW的最新VCO中是最低的。已经基于0.18微米CMOS工艺模拟了高分辨率时间放大器。基于所建议的低功率VCO和所建议的具有可变延迟缓冲器的高分辨率时间放大器,可以在不久的将来实现低功率频率合成。

著录项

  • 作者

    Jung, Jaeyoung.;

  • 作者单位

    Washington State University.;

  • 授予单位 Washington State University.;
  • 学科 Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2011
  • 页码 116 p.
  • 总页数 116
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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