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Digital Radio Encoding and Power Amplifier Design for Multimode and Multiband Wireless Communications

机译:用于多模式和多频带无线通信的数字无线电编码和功率放大器设计

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摘要

The evolution of wireless technology has necessitated the support of multiple communication standards by mobile devices. At present, multiple chipsets/radios operating at predefined sets of modulation schemes, frequency bands, bandwidths and output power levels are used to achieve this objective. This leads to higher component counts, increased cost and limits the capacity to cope with future communication standards. In order to tackle different wireless standards using a single chipset, digital circuits have been increasingly deployed in radios and demonstrated re-configurability in different modulation schemes (multimode) and frequency bands (multiband). Despite efforts and progress made in digitizing the entire radio, the power amplifier (PA) is still designed using an conventional approach and has become the bottleneck in digital transmitters, in terms of low average power efficiency, poor compatibility with modern CMOS technology and limited re-configurability.This research addresses these issues from two aspects. The first half of the thesis investigates signal encoding issues between the modulator and PA. We propose, analyze and evaluate a new hybrid amplitude/time signal encoding scheme that significantly improves the coding efficiency and dynamic range of a digitally modulated power amplifier (DMPA) without significantly increasing design complexity. The proposed hybrid amplitude/time encoding scheme combines both the amplitude domain and the time domain to optimally encode information. Experimental results show that hybrid amplitude/time encoding results in a 35% increase in the average coding efficiency with respect to conventional time encoding, and is only 6.7% lower than peak efficiency when applied to a Wireless Local Area Network (WLAN) signal with a peak to average power ratio equal to 9.9 dB. A new DMPA architecture, based on the proposed hybrid encoding, is also proposed.The second half of this thesis presents the design, analysis and implementation of a CMOS PA that is amenable to the proposed hybrid encoding scheme. A multi-way current mode class-D PA architecture has been proposed and realized in 130 nm CMOS technology. The designed PA has satisfied the objectives of wide bandwidth (1.5 GHz - 2.7 GHz at 1 dB output power), and high efficiency (PAE 63%) in addition to demonstrating linear responses using the proposed digital encoding. A complete digital transmitter combining the encoder and the multi-way PA was also investigated. The overall efficiency is 27% modulating 7.3 dB peak to average power ratio QAM signals.
机译:随着无线技术的发展,移动设备必须支持多种通信标准。当前,使用以预定的调制方案,频带,带宽和输出功率水平的集合工作的多个芯片组/无线电设备来实现该目的。这导致更多的组件数量,增加的成本并限制了应付未来通信标准的能力。为了使用单个芯片组解决不同的无线标准,数字电路已越来越多地部署在无线电中,并在不同的调制方案(多模)和频带(多频带)中表现出可重新配置性。尽管在对整个无线电进行数字化方面已经做出了努力并取得了进展,但是功率放大器(PA)仍采用常规方法进行设计,并且由于平均功率效率低,与现代CMOS技术的兼容性差以及有限的重用性,已成为数字发射机的瓶颈。可配置性。这项研究从两个方面解决了这些问题。论文的前半部分研究了调制器和PA之间的信号编码问题。我们提出,分析和评估一种新的混合幅度/时间信号编码方案,该方案可以显着提高数字调制功率放大器(DMPA)的编码效率和动态范围,而不会显着增加设计复杂性。提出的混合幅度/时间编码方案结合了幅度域和时域两者,以最优地编码信息。实验结果表明,与传统的时间编码相比,混合幅度/时间编码可使平均编码效率提高35%,并且在应用于具有无线信号的无线局域网(WLAN)信号时,仅比峰值效率低6.7%。峰值与平均功率之比等于9.9 dB。还提出了一种基于所提出的混合编码的新的DMPA体系结构。本文的下半部分提出了一种适合所提出的混合编码方案的CMOS PA的设计,分析和实现。已经提出并以130nm CMOS技术实现了多路电流模式D类PA架构。除了使用建议的数字编码演示线性响应之外,设计的功率放大器还满足了宽带宽(在1 dB输出功率下为1.5 GHz-2.7 GHz)和高效率(PAE 63%)的目标。还研究了结合编码器和多路PA的完整数字发射机。整体效率为27%,可调制7.3 dB峰均功率QAM信号。

著录项

  • 作者

    Xia Jingjing;

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  • 年度 2013
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  • 原文格式 PDF
  • 正文语种 en
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