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Measurement and control of current/voltage waveforms of microwave transistors using a harmonic load-pull system for the optimum design of high efficiency power amplifiers

机译:使用谐波负载牵引系统测量和控制微波晶体管的电流/电压波形,以优化高效功率放大器的设计

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One of the most important requirements that RF and microwave power amplifiers designed for radiocommunication systems must meet is an optimum power added efficiency (PAE) or an optimal combination of PAE and linearity. A harmonic active load-pull system which allows the control of the first three harmonic frequencies of the signal coming out of the transistor under test is a very useful tool to aid in designing optimized power amplifiers. In this paper, we present an active load-pull system coupled to a vectorial "nonlinear network" analyzer. For the first time, optimized current/voltage waveforms for maximum PAE of microwave field effect transistors (FET's) have been measured. They confirm the theory on high efficiency microwave power amplifiers. The proposed load-pull setup is based on the use of three separated active loops to synthesize load impedances at harmonics. The measurement of absolute complex power waves is performed with a broadband data acquisition unit. A specific phase calibration of the set-up allows the determination of the phase relationships between harmonic components. Therefore, voltage and current waveforms can be extracted. The measurement results of a 600 gate periphery GaAs FET (Thomson Foundry) exhibiting a PAE of 84% at 1.8 GHz are given. Such results were obtained by optimizing the load impedances at the first three harmonic components of the signal coming out of the transistor. Optimum conditions correspond to a class F operation mode of the FET (i.e., square wave output voltage and pulse shaped output current). A comparison between measured and simulated current/voltage waveforms is also presented.
机译:设计用于无线电通信系统的RF和微波功率放大器必须满足的最重要的要求之一是最佳功率附加效率(PAE)或PAE和线性度的最佳组合。谐波有源负载牵引系统允许控制从被测晶体管输出的信号的前三个谐波频率,这是帮助设计优化功率放大器的非常有用的工具。在本文中,我们提出了一种与矢量“非线性网络”分析仪耦合的有源负载-牵引系统。首次测量了微波场效应晶体管(FET)的最大PAE的最佳电流/电压波形。他们证实了有关高效微波功率放大器的理论。拟议的负载牵引设置基于使用三个分离的有源环路来合成谐波处的负载阻抗。绝对复数功率波的测量是通过宽带数据采集单元执行的。装置的特定相位校准允许确定谐波分量之间的相位关系。因此,可以提取电压和电流波形。给出了在1.8 GHz时具有84%PAE的600栅极外围GaAs FET(Thomson Foundry)的测量结果。通过优化从晶体管出来的信号的前三个谐波分量处的负载阻抗可以获得这些结果。最佳条件对应于FET的F级工作模式(即方波输出电压和脉冲状输出电流)。还介绍了测量和模拟的电流/电压波形之间的比较。

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