Design of Tracking, Telemetry, Command (TT&C) and Data Transmission Integrated Signal in TDD Mode
Abstract
:1. Introduction
- (1)
- High spectrum utilization;
- (2)
- Small amplitude fluctuation which can effectively resist nonlinear distortion;
- (3)
- The constellation is circular, which requires less power;
- (4)
- It is easy to realize variable rate modulation and meet the hierarchical transmission requirements of satellite communication.
- (1)
- Considering the lack of spectrum resources, this paper proposes the BOCcos and APSK integrated signal to achieve TT&C and data transmission services.
- (2)
- Considering the shortage of frequency resources in the case of large numbers of nodes, we propose the high precision measurement method for the TDD mode.
2. The Modulation System for the BOCcos and APSK Integrated Signal
2.1. Signal Mode
2.2. The Concept of Modulation and Demodulation
3. The Receiving Method of the Integrated Signal in the TDD Mode
3.1. The Acquisition Process of Integrated Signal
3.2. Motion Compensation Method in TDD Mode
4. Performance Analysis of the TT&C Signal and Data Transmission Signal
4.1. The Design of the Simulation Scenario
4.2. Acquisition Performance of the TT&C Signal
4.3. Tracking Performance for the TT&C Signal
5. Discussion
5.1. Ranging and Doppler Measurement Performance for Integrated Signals
5.2. Bit Error Rate (BER) for Integrated Signals
5.3. Summary of Error Suppression Methods
- (1)
- Improve the PN code rate, which will reduce .
- (2)
- Increase the length of the PN code. The method can increase the integration period.
- (3)
- Increase the integration period.
- (4)
- Reduce the bandwidth of the loop. However, the stability of the loop will be weakened, so the error and SNR in the extrapolation process should be considered comprehensively.
- (5)
- Reduce the switching period of the TDD mode. This method can effectively reduce the extrapolation errors.
6. Conclusions
Author Contributions
Funding
Conflicts of Interest
Appendix A
References
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Satellite number | 3364 |
Orbit inclination | |
Orbit altitude | 508 km |
Orbital plane | 58 |
The satellites in each plane | 58 |
Number | 3364 |
Process | Clock Cycle |
---|---|
Downsampling | 4096 |
FFT of the downsampled signal | 409612 |
Complex multiplication between the local PN code and downsampled signal | 4096 |
IFFT of the multiplication result | 409612 |
Maximum searches | 4096 |
Threshold calculation | 1280 |
Total | 111,872 |
Threshold | Whether the Tracking Process Requires Reacquisition |
---|---|
And | No |
Or | Yes |
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Xue, L.; Li, X.; Wu, W.; Yang, Y. Design of Tracking, Telemetry, Command (TT&C) and Data Transmission Integrated Signal in TDD Mode. Remote Sens. 2020, 12, 3340. https://doi.org/10.3390/rs12203340
Xue L, Li X, Wu W, Yang Y. Design of Tracking, Telemetry, Command (TT&C) and Data Transmission Integrated Signal in TDD Mode. Remote Sensing. 2020; 12(20):3340. https://doi.org/10.3390/rs12203340
Chicago/Turabian StyleXue, Linshan, Xue Li, Weiren Wu, and Yikang Yang. 2020. "Design of Tracking, Telemetry, Command (TT&C) and Data Transmission Integrated Signal in TDD Mode" Remote Sensing 12, no. 20: 3340. https://doi.org/10.3390/rs12203340
APA StyleXue, L., Li, X., Wu, W., & Yang, Y. (2020). Design of Tracking, Telemetry, Command (TT&C) and Data Transmission Integrated Signal in TDD Mode. Remote Sensing, 12(20), 3340. https://doi.org/10.3390/rs12203340