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The development of a novel load-line translation algorithm for dynamic power control of power amplifiers during power back-off.

机译:功率回退期间用于功率放大器动态功率控制的新型负载线转换算法的开发。

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摘要

The need for highly reliable communication systems that are flexible and adaptable to the changing needs and requirements that occur during space exploration are essential. Output power and efficiency of the system's transmitter are two dynamic requirements that can be improved with an adaptable communication system. Bias adaptation updates the transmitter DC bias to optimize efficient use of power in the transmitter.;Within a wireless communication system, the RF power amplifier has significant consequence over the efficiency and linearity of the overall system. Further concern of non-linearity is increased for the power amplifier because the amplifier's best output power and efficiency performance occurs at points when the amplifier is exhibiting non-linear characteristics. These non-linear characteristics are produced by the amplifier entering a saturation region; as a result gain compression and signal distortion become noticed. Furthermore, with the integration of a bias adaption scheme into the amplifier design which uses voltage variation, there is also the additional concern of amplitude modulation to phase modulation distortion. A bias adaption approach was implemented that provides the amplifier with the ability to obtain better efficiency, over a static Class-A bias case, without additional degradation of the linearity performance. The approach also provides further insight into the non-linear behaviors of the amplifier and the measured results are in good agreement with the simulated linearity results provided via Agilent's Advance Design System design software.;The Cripps' Class-A Load-line method serves as the foundation for this analysis. The approach translates the original Class-A Load-line to compensate for the change in the input drive level. A load-line bisector was calculated to assist in the change of DC bias proportionately with the change in output RF power. As a result, the adaptable power amplifier showed an average improvement of 69% in power added efficiency (PAE) compared to a static Class-A bias over power levels below the 1dB compression point (P 1dB). The Carrier to Interference Ratio (C/I) increased by a maximum 7dB over the static Class-A bias case. Furthermore, the linear variation of DC bias, guided by the load-line bisector, resulted in the linear change of the P1dB. The efficiency performance of the adaptable power amplifier showed and average improvement of 70% when driven by BPSK and QPSK modulated input signals.
机译:至关重要的是,需要高度可靠的通信系统,该系统应灵活并且可适应太空探索过程中不断变化的需求和要求。系统变送器的输出功率和效率是两个动态要求,可通过自适应通信系统加以改进。偏置自适应更新了发射机的直流偏置,以优化发射机中功率的有效利用。在无线通信系统中,RF功率放大器对整个系统的效率和线性度具有重要影响。功率放大器对非线性的进一步关注增加了,因为放大器的最佳输出功率和效率性能出现在放大器表现出非线性特性时。这些非线性特性是由放大器进入饱和区而产生的。结果,增益压缩和信号失真变得明显。此外,通过将偏置自适应方案集成到使用电压变化的放大器设计中,还存在对幅度调制到相位调制失真的额外关注。实施了一种偏置自适应方法,使放大器能够在静态A类偏置情况下获得更好的效率,而不会进一步降低线性性能。该方法还可以进一步了解放大器的非线性行为,并且测量结果与通过安捷伦Advance Design System设计软件提供的模拟线性结果非常吻合; Crips的A类负载线方法可以用作分析的基础。该方法转换了原始的A类负载线,以补偿输入驱动水平的变化。计算了一条负载线平分线,以帮助DC偏置与输出RF功率的变化成比例地变化。结果,与低于1dB压缩点(P 1dB)的功率水平上的静态A类偏置相比,自适应功率放大器的功率附加效率(PAE)平均提高了69%。与静态A类偏置情况相比,载波干扰比(C / I)最高提高了7dB。此外,在负载线等分线的引导下,直流偏置的线性变化导致P1dB的线性变化。当由BPSK和QPSK调制的输入信号驱动时,自适应功率放大器的效率性能平均提高了70%。

著录项

  • 作者

    Ryan, Dontae LaMont.;

  • 作者单位

    Morgan State University.;

  • 授予单位 Morgan State University.;
  • 学科 Engineering Electronics and Electrical.
  • 学位 D.Eng.
  • 年度 2012
  • 页码 119 p.
  • 总页数 119
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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