采用 65 纳米 CMOS 技术的多尔蒂和包络跟踪射频 ULP 功率放大器的 PVT 分析和行为建模

Muhammad Ovais Akhter, Najam M. Amin, Aurangzeb Rashid Masud
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摘要

这项研究包括对工艺-电压-温度(PVT)的考虑,以及对两个拟议的无线通信系统功率放大器(PA)设计的行为建模。工艺变化、电源电压变化和温度变化给无线通信系统功率放大器的设计和优化带来了困难,并可能对其有效性产生重大影响。为了应对上述挑战,并描述功率放大器在实际工作条件下的行为和性能,我们进行了 PVT 分析和行为建模。它研究了工艺变化、电源电压变化和温度变化对功率放大器性能的影响。从这一分析中获得的见解有助于加深对功率放大器性能、效率和特定无线通信标准适用性的理解,为未来射频功率放大器设计的进步奠定基础。第一个设计侧重于为符合 IEEE 无线个人局域网 (WPAN) 标准的低功耗短程应用量身定制的 Doherty 功率放大器 (DPA)。第二个设计探讨了包络跟踪 (ET) 电源偏置控制,适用于符合 IEEE 无线局域网 (WLAN) 标准的低功率长距离应用。通过检查这些因素,研究确保功率放大器在实际工作条件下表现出可靠和最佳的性能。PVT 角显示,DPA 的增益变化仅为 0.4 dB,ET PA 的增益变化仅为 0.9 dB。此外,还采用了行为建模来描述包络跟踪功率放大器的功率效率,以及负载电流刻度上的电流效率和商电流。这些模型在更高的抽象层次上为功率放大器的行为和性能提供了宝贵的见解。这些结果和发现有助于深入了解功率放大器的性能、效率和对特定无线通信标准的适用性,为射频功率放大器设计的未来发展奠定了基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
PVT Analysis and Behavioral Modeling of Doherty and Envelope Tracking RF ULP Power Amplifiers using 65 nm CMOS Technology
This research encompasses both Process-Voltage-Temperature (PVT) considerations and behavioral modeling of two proposed Power Amplifier (PA) designs for wireless communication systems. Process variations, supply voltage changes, and temperature changes provide difficulties for the design and optimization of power amplifiers for wireless communication systems and may have a substantial influence on their effectiveness. PVT analysis and behavioral modeling have been conducted to address the aforementioned challenges and characterize the behavior and performance of the power amplifiers under real-world operating conditions. It investigates the impact of process variations, supply voltage variations, and temperature variations on the performance of the PAs. The insights gained from this analysis contribute to a deeper understanding of the power amplifiers' performance, efficiency, and suitability for specific wireless communication standards, laying the foundation for future advancements in RF power amplifier design. The first design focuses on a Doherty PA (DPA) tailored for low-power short-range applications complying with the IEEE Wireless Personal Area Network (WPAN) standard. The second design explores an Envelope Tracking (ET) supply bias control for low-power long-range applications conforming to the IEEE Wireless Local Area Network (WLAN) standard. By examining these factors, the research ensures that the PAs exhibit reliable and optimal performance under real-world operating conditions. The PVT corners show a change in gain of only 0.4 dB for DPA and 0.9 dB for ET PA. Furthermore, behavioral modeling is employed to characterize the power efficiency of the envelope tracking PA, along with the current efficiency and quotient current on the load current scale. These models provide valuable insights into the behavior and performance of the PAs at a higher level of abstraction. The results and findings contribute to a deeper understanding of the PA’s performance, efficiency, and suitability for specific wireless communication standards, laying the foundation for future advancements in RF power amplifier design.
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