∑Δ分数n频率合成器的闭环非线性建模

H. Hedayati, B. Bakkaloglu
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引用次数: 0

摘要

相位频率检测器(PFD)、电荷泵和分频器等合成器构件的非线性时变特性会增加近距离相位噪声,并由于高频量化噪声和音调内容的互调而增强杂散音;因此,精确的仿真模型对于环路参数和带宽增宽技术的成功实现至关重要。本文采用基于事件驱动的双迭代技术对PFD固有的非均匀采样进行建模。该技术产生一个分段线性时间电压对向量,定义压控振荡器的控制电压。采用0.13 μm CMOS工艺设计并制作了一种集成环路滤波器和LC-tank VCO的柔性三阶∑Δ调制射频合成器芯,并对该技术进行了实验验证。所提出的建模技术能够以1.8 dB的精度预测带内杂散功率电平,并且在启用了几个可编程非理想特性的情况下,杂散频率偏移的精度低于400Hz。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Closed-loop nonlinear modeling of ∑Δ fractional-N frequency synthesizers
Nonlinear, time-varying nature of synthesizer building blocks such as phase frequency detectors (PFD), charge pump and frequency dividers can increase close-in phase noise and enhance spurious tones due to intermodulation of high frequency quantization noise and tonal content; therefore, an accurate simulation model is critical for successful implementation of loop parameters and bandwidth widening techniques. In this paper inherent non-uniform sampling of the PFD is modeled through an event-driven dual-iteration based technique. The proposed technique generates a vector of piece-wise linear time-voltage pairs, defining the VCO control voltage. A flexible third-order ∑Δ modulated RF synthesizer core with integrated loop filter and LC-tank VCO is designed and fabricated in 0.13-μm CMOS process in order to validate the technique experimentally. The proposed modeling technique was able to predict in-band spur power levels with 1.8 dB accuracy, and spur frequency offsets with lower than 400Hz accuracy with several programmable non-idealities enabled.
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