Research on a Miniaturized Digital Servo System for Passive Hydrogen Masers
Highlights
- A digital servo architecture for a passive hydrogen maser based on SDR and the FPGA was developed, using the AD9364 transceiver to integrate microwave interrogation signal generation, microwave receiver down-conversion, and analog-to-digital conversion, and stable closed-loop locking of the atomic transition spectrum was achieved.
- By combining dual-frequency time-division probing with outlier rejection and averaging decimation, the atomic and cavity discriminator signals were separated effectively, enabling frequency stability at at a 1 s averaging time while substantially reducing the power consumption and size of the servo electronics.
- The results demonstrate that passive hydrogen maser servo electronics can be shifted from conventional discrete analog implementations to a highly integrated digital architecture, providing a feasible route toward compact, low-power, and reconfigurable spaceborne frequency reference systems.
- The proposed architecture confirms the potential of SDR technology for precision time–frequency measurement and atomic clock servo control and provides an electronics foundation for the future engineering and miniaturization of spaceborne passive hydrogen masers.
Abstract
1. Introduction
2. Servo Principle and Overall Architecture of PHM
2.1. Timekeeping Principle of Hydrogen Maser
2.2. Overall Structure of Dual-Frequency Digital Servo
3. Software-Defined Radio Servo System Design
3.1. Interrogation Signal Generation and Transmission Chain
3.2. Digitization and Quadrature Demodulation in the Receiver Front End
3.3. Oversampling and Decimation Filtering Design for Error Signal Processing
3.4. Error Signal Extraction and Incremental PI Servo Control
4. Experiment and Analysis
4.1. Atomic Spectral-Line Evaluation and Operating Point Determination
4.2. Noise Suppression and Equivalent Resolution Improvement in Error Signal
4.3. Comparison of Frequency Stability
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Abbreviations
| PHM | Passive Hydrogen Maser |
| SDR | Software Defined Radio |
| FPGA | Field-Programmable Gate Array |
| PI | Proportional–Integral |
| SWaP | Size, Weight, and Power |
| ENOB | Effective Number of Bits |
| ADC | Analog-to-Digital Converter |
| CAT | Cavity Varactor Diode |
| VLBI | Very Long Baseline Interferometry |
| ILA | Internal Logic Analyzer |
| DDS | Direct Digital Synthesizer |
| NCO | Numerically Controlled Oscillator |
| VCXO | Voltage-Controlled Crystal Oscillator |
| FSMC | Flexible Static Memory Controller |
| SPI | Serial Peripheral Interface |
| low-IF | Low-Intermediate-Frequency |
| PSD | Power Spectral Density |
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| Parameter Name | Symbol | Design Value |
|---|---|---|
| Atomic interrogation duration | 4 s | |
| Cavity interrogation duration | 0.4 s | |
| Total interrogation cycle | 4.4 s | |
| Frequency Switching Interval | T | 40 ms |
| Atomic Modulation Depth | 12.5 Hz | |
| Cavity Frequency Modulation Depth | 50 kHz |
| Time Domain | 3 Hz Measuring Bandwidth |
|---|---|
| 1 s | |
| 10 s | |
| 100 s | |
| 1000 s |
| Mass (kg) | Volume (cm3) | Power (W) | |
|---|---|---|---|
| SDR-based PHM | 2.5 | 3801.6 | 34 |
| Spaceborne PHM | 6.21 | 7075.6 | 36 |
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Guo, S.; Cao, M.; Chen, P.; Shuai, T.; Hu, W.; Pei, Y. Research on a Miniaturized Digital Servo System for Passive Hydrogen Masers. Sensors 2026, 26, 2279. https://doi.org/10.3390/s26072279
Guo S, Cao M, Chen P, Shuai T, Hu W, Pei Y. Research on a Miniaturized Digital Servo System for Passive Hydrogen Masers. Sensors. 2026; 26(7):2279. https://doi.org/10.3390/s26072279
Chicago/Turabian StyleGuo, Siyuan, Meng Cao, Pengfei Chen, Tao Shuai, Wangwang Hu, and Yuxian Pei. 2026. "Research on a Miniaturized Digital Servo System for Passive Hydrogen Masers" Sensors 26, no. 7: 2279. https://doi.org/10.3390/s26072279
APA StyleGuo, S., Cao, M., Chen, P., Shuai, T., Hu, W., & Pei, Y. (2026). Research on a Miniaturized Digital Servo System for Passive Hydrogen Masers. Sensors, 26(7), 2279. https://doi.org/10.3390/s26072279
