论文标题

使用GAAS技术的宽带准空气对称doherty功率放大器,具有两段匹配相差补偿器网络设计

A Wideband Quasi-Asymmetric Doherty Power Amplifier with a Two-Section Matching-Phase Difference Compensator Network Design Using GaAs Technology

论文作者

Rouhani, Seyedehmarzieh, Ghanaatian, Ahmad, Abrishamifar, Adib, Tayarani, Majid

论文摘要

在本文中,使用GAAS0.25μmPHEMT技术设计了准对称Doherty功率放大器(PA),而无需负载调制,以实现使用电路解决方案的扩大输出功率向后(OPBO),以克服技术限制。为了防止辅助PA(PAAUX)的电源泄漏由于其极大的外国阻抗,将威尔金森电力组合机添加到输出中。此外,输入不对称的功率分隔线旨在确保在高功率区域中不会将大量功率传递到主PA(Pamain)以使其饱和。提出了一个针对Pamain的两段匹配网络,该网络同时补偿了主要和辅助扩增路径的相位差异。为了控制PAAUX与扫描功率的显着阻抗变化以及主要和辅助放大路径的不同阻抗轨迹,分析了PAAUX的偏差和维度选择,以达到所需的输出功率概况与输入功率。这些方法克服了阻抗变化和线性降解。为了获得目标10%的分数带宽,选择适当的低质量LC-NETWORKS作为匹配网络。模拟结果表明了微波链路应用程序所提出的结构的实用性。连续波模拟意味着Doherty PA具有33dBm的最大输出功率和13.5DB功率增益,在所需的频率范围内(7.6-8.4GHz),且功率增强小于1DB功率增益。还获得了最高输入功率的30%的排水效率,-140dBM和-130dBM的最低和第三个谐波功率,也获得了7.5dB的OPBO。

In this paper, a quasi-asymmetric Doherty power amplifier (PA) is designed without load modulation using the GaAs 0.25μm pHEMT technology to reach an enlarged output power back-off (OPBO) with circuitry solutions in order to overcome technology restrictions. To prevent power leakage in auxiliary PA (PAaux) due to its extremely large off-state impedance, a Wilkinson power combiner is added to the output. Moreover, an input asymmetric power divider is designed to guarantee that no considerable power is delivered to main PA (PAmain) in the high-power region to make it saturated. A two-section matching network is proposed for PAmain, which simultaneously compensates for phase differences of the main and auxiliary amplification paths. To control the significant impedance variation of PAaux versus sweeping power and the different impedance trajectories of the main and auxiliary amplification paths, the bias and dimension selection of PAaux are analyzed to reach the desired output power profile versus input power. These methods overcome impedance variations and linearity degradation. To achieve the aimed 10% fractional bandwidth, appropriate low-quality LC-networks are selected as matching networks. The simulation results indicate the utility of the proposed structure for microwave link applications. Continuous-wave simulations imply that the Doherty PA has a 33dBm maximum output power and a 13.5dB power gain with less than 1dB power gain compression in the desired frequency range (7.6-8.4GHz). The drain efficiency of 30% at the highest input power, minimum of second and third harmonic powers of -140dBm and -130dBm, respectively, and OPBO of 7.5dB are also obtained.

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