About the Phase Noise of Frequency Synthesizers

Authors

  • Yaroslav Hrytsev State University "Kyiv Aviation Institute"

DOI:

https://doi.org/10.18372/1990-5548.85.20435

Keywords:

dielectric resonator oscillator, digital signal synthesis, frequency range, frequency synthesizer, functional circuit, phase noise, phase-locked loop

Abstract

The paper proposes a variant of implementing a partial synthesizer with a small frequency step and preserving a sufficient level of phase noise in the X-band frequency range, which provides high frequency stability and low phase noise by combining 3 methods. A brief review of common methods for constructing frequency synthesizers, such as phase-locked loop, digital signal synthesis (DDS), dielectric resonator oscillator, is given. Their advantages and disadvantages were used and taken into account in the development of a new method for constructing a frequency synthesizer. The article compares the characteristics of the phase-locked loop frequency synthesizer on the ADF5355 chip with the developed method. The proposed method, which includes all 3 proposed methods, is presented in the form of a functional circuit containing two phase-locked loops and one DDS. The first PLL contains a dielectric resonator oscillator with an output signal of 8 GHz and a working frequency bandwidth of 1 kHz with a minimum phase noise equal to –132.85 dBc/Hz at a 1 kHz offset. The low-noise DDS signal is fed to the second phase-locked loop. The output signal is in the range of 9-9.5 GHz with a phase noise of –98.32 dBc/Hz at a 10 kHz offset.

Author Biography

Yaroslav Hrytsev , State University "Kyiv Aviation Institute"

Postgraduate student

Faculty of Air Navigation, Electronics and Telecommunications

References

Venceslav F. Kroupa, Phase Lock Loops and Frequency Synthesis. John Wiley Ltd., 2003. ISBN 0-470-84866. https://doi.org/10.1002/0470014105

Lance Lascari, “Phase Noise Prediction in PLL Synthesizers,” Applied Microwave & Wireless, 12, 4 April (2000). Corpus ID:17800386

Xinyu Zhang, Qifei Du, Cheng Liu, Yue Ma, Yefei Li, and Jinhuan Li, “A Low Phase Noise Frequency Synthesizer with a Fourth-Order RLC,” Electronics, 12, 224, 2023. https://doi.org/10.3390/electronics12010224

Amin Walter Doerry, “Radar Receiver Oscillator Phase Noise,” Sandia National Laboratories, SAND2018-3614, (2018)

Gao Hiang, Klumperink Eric, Nauta Bram.: Sub-Sampling PLL Technology, Jan. (2020), doi: 10.1049/PBCS064E-ch21

Eric Loria, Samuel Prager, Ilgin Seker, Razi Axmed, Brain Hawkins, and Mario Lavalle, “Modelling the Effects of Oscillator Phase Noise and Synchronization on Multistatic SAR Tomography,” IEEE Trans. on Geoscience and Remote Sensing, 61 2023. https://doi: 10.1109/TGRS.2023.3249637

Tong Leri and Lia Liang, “Research and Design of Digital Unit for Direct Frequency Synthesizer. Journal of Physics,” Conference Series, 1907, 2021. https://doi: 10.1088/JSSC.2015.2468712

Stefan Leitner, Haibo Wang, Tragoudas Spyros.: Design Techniques for Direct Digital Synthesis Circuits with Improved Accuracy over Wide Frequency Ranges. Journal of Circuits, Systems and Computers, 26, 2, 2017. https://doi:10.1142/S0218126617500359

Direct Digital Synthesis. Analog Devices, Inc., 2024. https://www.analog.com/en/parametricsearch/11018#/

Microwave Wideband Synthesizer with Integrated VCO ADF5355. Analog Devices, 2017.

D. B. Leeson, “A simple model of feedback oscillator noise spectrum,” Proceedings of the IEEE, vol. 54, 2 1966. https://doi:10.1109/PROC.1966.4682

Liang Zhou, Wen Yan Yin, Jiang Wang, and Lin-Sheng Wu, “Dielectric Resonators With High Q-Factor for Tunable Low Phase Noise Oscillators,” EEE Trans. on Components, Packaging and Manufacturing Technology, vol. 3, no. 6, JUNE 2013. https://doi: 10.1109/TCPMT.2013.2258465

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Published

2025-09-29

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Section

TELECOMMUNICATIONS AND RADIO ENGINEERING