多星座卫星导航接收机低噪声天线放大器多目标优化

J. Dobes, J. Míchal, Jakub Popp, M. Grábner, F. Vejražka, J. Kákona
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引用次数: 2

摘要

虽然卫星导航接收机功能模块的主要部分在大多数情况下完全集成在CMOS芯片中,但基于低噪声pHEMT创建天线前置放大器作为单独电路是方便的。这样的射频前端可以进行强优化,以实现噪声系数和换能器功率增益之间的权衡。此外,由于所有主要的导航系统(GPS, GLONASS, Galileo和Compass)工作在相似的频段(大约从1.1到1.7 GHz),因此为所有这些系统创建这种低噪声前置放大器是合理的。本文提出了一种基于多目标优化的放大器设计方法。首先,提取pHEMT模型参数,并对多个模型进行比较。提取过程采用原始的基于元启发式和直接优化方法相结合的三步鲁棒识别程序。其次,对多目标优化的标准方法进行了实质性改进。第三,仔细定义了电路中无源元件(包括传输线和T分路器)的方程,使用其参数Q、ESR等的频散度。第四,利用先前改进的目标实现方法对放大器工作点和基本无源元件进行优化选择。最后,测量了前置放大器的s参数和噪声系数,并对三阶互调积进行了检验。
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Multi-objective optimization of a low-noise antenna amplifier for multi-constellation satellite-navigation receivers
Although the major parts of function blocks for the satellite navigation receivers are fully integrated in a CMOS chip in most cases, it is convenient to create an antenna preamplifier as a separate circuit based on a low-noise pHEMT. Such an RF front end can be strongly optimized to attain a trade-off between the noise figure and transducer power gain. Furthermore, as all the principal navigation systems (GPS, GLONASS, Galileo, and Compass) work in similar frequency band (roughly from 1.1 to 1.7 GHz), it is reasonable to create this low-noise preamplifier for all of them. In the paper, a sophisticated method of the amplifier design is suggested based on multi-objective optimization. First, an extraction of pHEMT model parameters was performed, including comparisons among several models. The extraction was carried out by our original three-step robust identification procedure based on a combination of meta-heuristic and direct optimization methods. Second, a substantial improvement of a standard method for the multi-objective optimization is outlined. Third, the equations of passive elements of the circuit (including transmission lines and T splitters) were carefully defined using frequency dispersion of their parameters as Q, ESR, etc. Fourth, an optimal selection of the amplifier operating point and essential passive elements was performed using the previously improved goal attainment method. Finally, the s-parameters and noise figure of the proposed preamplifier were measured, and the third-order intermodulation products were also checked.
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