4.2一种提高深度退变效率的宽带开关变压器数字功率放大器

Liang Xiong, Tong Li, Yun Yin, Hao Min, N. Yan, Hongtao Xu
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引用次数: 10

摘要

在现代无线通信系统中,复杂的OFDM调制方案具有较高的频谱效率和数据吞吐量,往往导致较高的峰均功率比(PAPR)。此外,LTE、WLAN、NB-IoT等无线标准要求较宽的传输功率范围,以适应各种通信环境,设备通常在较低的平均输出功率下工作。为了获得更好的电池寿命,在深度功率回退(PBO)水平(例如12/18dB或更高)下提高功率放大器(PA)的效率至关重要。最近,一些数字风格的技术被用于提高PA PBO效率,如动态功率控制[1]、Class-G和Doherty[2-4],以及多级同相[5]。g类或Doherty技术通常在6dB PBO处提供效率峰值,当组合在一起[2,3]或级联[6]时,它们可以通过在6/ 12db PBO处引入两个效率峰值,进一步提高效率,超过6dB PBO。然而,大多数g类Doherty PAs都有两个供电路径的大面积开销,并且由于模式转换而出现故障。动态功率控制或多级同相放大器需要多个相位调制器和幅值级转换,这会导致固有的不连续和线性度降低。在这项工作中,提出了一种开关变压器数字pa技术,用于大范围提高PBO效率。这种拓扑结构不需要多个电源,也不会引入AM/PM不连续。该放大器在0/6/12/18dB PBOs处实现多个效率峰值,并在单变压器占地面积和只有一个电源电压的情况下实现宽频率覆盖。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
4.2 A Broadband Switched-Transformer Digital Power Amplifier for Deep Back-Off Efficiency Enhancement
Sophisticated OFDM modulation schemes with high spectrum efficiency and data throughput in modern wireless communication systems often result in a large peak-to-average power ratio (PAPR). Besides, wireless standards like LTE, WLAN, NB-IoT, etc., require wide transmission power range to accommodate various communication environments, and devices often function at low average output power. For better battery lifetime, it is critical to improve the power amplifier (PA) efficiency at deep power back-off (PBO) levels (e.g., 12/18dB or higher). Recently, several digital-style techniques have been employed to enhance PA PBO efficiency, such as dynamic power control [1], Class-G, and Doherty [2–4], as well as multilevel outphasing [5]. Class-G or Doherty techniques usually provide an efficiency peaking at 6dB PBO, and when combined together [2,3] or cascaded [6] they can further enhance the efficiency beyond 6dB PBO by introducing two efficiency peaks at 6/12dB PBOs. However, most of the Class-G Doherty PAs suffer from large area overhead with two power supply paths and glitches due to mode transitions. The dynamic power control or multi-level outphasing PA requires multiple phase modulators and amplitude-level transitions, which cause inherent discontinuities and degrade the linearity. In this work, a switched-transformer digital-PA technique is proposed for wide-range PBO efficiency enhancement. This topology does not require multiple power supplies and does not introduce AM/PM discontinuities. The PA achieves multiple efficiency peaks at 0/6/12/18dB PBOs and wide frequency coverage with a single-transformer footprint and only one supply voltage.
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