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An Analytic Circuit-Based Model for White and Flicker Phase Noise in LC Oscillators

机译:LC振荡器中基于分析电路的白噪声和闪变相位噪声模型

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A general circuit-based model of LC oscillator phase noise applicable to both white noise and 1/f noise is presented. Using the Kurokawa theory, differential equations governing the relationship between amplitude and phase noise at the tank are derived and solved. Closed form equations are obtained for the IEEE oscillator phase noise for both white and 1/f noise. These solutions introduce new parameters which take into account the correlation between the amplitude noise and phase noise and link them to the oscillator circuit operating point. These relations are then used to obtain the final expression for voltage noise power density across the output oscillator terminals assuming the noise can be modeled by stationary Gaussian processes. For white noise, general conditions under which the phase noise relaxes to closed-form Lorentzian spectra are derived for two practical limiting cases. Further, the buffer noise in oscillators is examined. The forward contribution of the buffer to the white noise floor for large offset frequency is expressed in terms of the buffer noise parameters. The backward contribution of the buffer to the 1/Delta f2 oscillator noise is also quantified. To model flicker noise, the Kurokawa theory is extended by modeling each 1 /f noise perturbation in the oscillator as a small-signal dc perturbation of the oscillator operating point. A trap-level model of flicker noise is used for the analysis. Conditions under which the resulting flicker noise relaxes to an 1/Delta f3 phase noise distribution are derived. The proposed model is then applied to a practical differential oscillator. A novel method of analysis, splitting the noise contribution of the various transistors into modes is introduced to calculate the Kurokawa noise parameters. The modes that contribute the most to white noise and flicker noise are identified. Further, the tail noise contribution is analyzed and shown to be mostly up-converted noise. The combined whi- te and flicker noise model exhibits the presence of a number of corner frequencies whose values depend upon the relative strengths of the various noise components. The proposed model is compared with a popular harmonic balance simulator and a reasonable agreement is obtained in the respective range of validity of the simulator and theory. The analytical theory presented which relies on measurable circuit parameters provides valuable insight for oscillator performance optimization as is discussed in the paper.
机译:提出了适用于白噪声和1 / f噪声的LC振荡器相位噪声的基于电路的通用模型。利用黑川理论,推导并求解了控制油箱振幅和相位噪声之间关系的微分方程。针对白噪声和1 / f噪声,针对IEEE振荡器相位噪声获得了封闭式方程。这些解决方案引入了新的参数,这些参数考虑了幅度噪声和相位噪声之间的相关性,并将它们链接到振荡器电路工作点。假设可以通过平稳的高斯过程对噪声进行建模,然后将这些关系用于获得输出振荡器两端的电压噪声功率密度的最终表达式。对于白噪声,针对两种实际的极限情况,得出了将相位噪声弛豫为闭合形式的洛伦兹谱的一般条件。此外,检查振荡器中的缓冲器噪声。对于大偏移频率,缓冲区对白噪声基底的前向贡献用缓冲区噪声参数表示。还量化了缓冲器对1 / Delta f2振荡器噪声的后向贡献。为了对闪烁噪声建模,通过将振荡器中的每个1 / f噪声扰动建模为振荡器工作点的小信号dc扰动来扩展Kurokawa理论。闪烁噪声的陷阱级模型用于分析。得出产生的闪烁噪声松弛到1 / Delta f3相位噪声分布的条件。然后将所提出的模型应用于实际的差分振荡器。引入了一种新颖的分析方法,将各种晶体管的噪声贡献分成多个模式,以计算黑川噪声参数。确定对白噪声和闪烁噪声影响最大的模式。此外,分析了尾部噪声的贡献,并显示出大部分为上变频噪声。白色和闪烁噪声组合模型显示出存在许多转折频率,这些转折频率的值取决于各种噪声分量的相对强度。将所提出的模型与流行的谐波平衡模拟器进行比较,并在模拟器和理论的有效范围内获得合理的一致。所提出的依赖可测电路参数的分析理论为振荡器性能优化提供了有价值的见解,如本文所述。

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