Startseite Technik Wavelength division multiplexing techniques based on multi transceiver in low earth orbit intersatellite systems
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Wavelength division multiplexing techniques based on multi transceiver in low earth orbit intersatellite systems

  • Aadel M. Alatwi , Ahmed Nabih Zaki Rashed EMAIL logo und Eman Mohsen El-Gammal
Veröffentlicht/Copyright: 29. Juni 2020
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Abstract

System performance, which depends on the data transmission rates and propagation distances between two satellites in low Earth orbit (LEO) based on wavelength division multiplexing (WDM) techniques, is thoroughly studied. This study demonstrates the effect of WDM techniques on multi transceiver inter-satellite wireless optical communications. The system performance parameters with propagation distance at a multiple transceiver system are discussed using two previous models. The system performance parameters are investigated with 250 Gb/s transmission bit rates and 5000 km propagation distances for 16 transceiver systems. The maximum quality factor (Q factor), light peak signal per noise ratio, and signal peak per noise ratio are the primary important performance parameters in this study.


Corresponding author: Ahmed Nabih Zaki Rashed, Electronics and Electrical Communications Engineering Department, Faculty of Electronic Engineering, Menoufia University, Menouf, 32951, Egypt, E-mail:

  1. Author contribution: All the authors have accepted responsibility for the entire content of this submitted manuscript and approved submission.

  2. Research funding: None declared.

  3. Conflict of interest statement: The authors declare no conflicts of interest regarding this article.

References

1. Singh, M. Performance evaluation of multiple transceiver optical wireless communication system. Int J Fut Generat Commun Netw 2016;9:191–8. https://doi.org/10.14257/ijfgcn.2016.9.4.16.Suche in Google Scholar

2. Singh, K, Singh, M. Performance improvement of inter-satellite optical wireless communication with multiple transmitters and receivers. Int J Eng Res Technol 2012;1:1–7. Available from: www.ijert.org.Suche in Google Scholar

3. Aggarwal, I, Chawla, P, Gupta, R. Performance evaluation of inter-satellite free space optical communication system with varied parameters and transceiver diversity. Adv Electron Electric Eng 2013;3:847–52.Suche in Google Scholar

4. Asmaa, ZM, Fayed, HA, El Aziz, AA, Aly, MH. The influence of varying the optical wavelength on ISL performance recognizing high transmission data rates. IOSR J Electron Commun Eng 2014;9:64–70. https://doi.org/10.9790/2834-09126470.Suche in Google Scholar

5. Rashed, ANZ, Mohamed, AEA, Tabbour, MSF, Ismail, AM. Performance improvement for 16×40 Gb/s DWDM system using Non Return to Zero (NRZ), Return-to Zero (RZ) and Modified Duo Binary RZ (MD-RZ) modulation formats. Int J Adv Res Comput Sci Electron Eng 2017;6:11–8.Suche in Google Scholar

6. Wahab, FA, Leong, TK, Zulkifili, H, Ibrahim, MIB, Talib, MAB, Zamri, NA, et al. Multiple transmitters & receivers for free space optical communication link performance analysis. J Telecommun Electron Comput Eng 2016;8:29–32.Suche in Google Scholar

7. Patnaik, B, Sahu, PK. Inter-satellite optical wireless communication system design and simulation. Inst Eng Technol Commun 2012;6:2561–7. https://doi.org/10.1049/iet-com.2012.0044.Suche in Google Scholar

8. Rashed, ANZ, Tabbour, MSF. Suitable optical fiber communication channel for optical nonlinearity signal processing in high optical data rate systems. Wireless Pers Commun J. Springer Publisher 2017;97:397–416. https://doi.org/10.1007/s11277-017-4511-x.Suche in Google Scholar

9. Zaki, A, Fayed, HA, EL-Aziz, AA, Aly, MH. The influence of varying the optical wavelength on ISL performance recognizing high transmission data rates. IOSR J Electron Commun Eng 2014;9:64–70. https://doi.org/10.9790/2834-09126470.Suche in Google Scholar

10. Sarath, VKK, Kumar, V, Turuk, AK, Das, SK. Performance analysis of inter-satellite optical wireless communication. I J Comput Netw Inform Security 2017;4:22–28. https://doi.org/10.5815/ijcnis.Suche in Google Scholar

11. Singh, Y. Performance analysis of optical wireless communication channel link at various transmission data rates. Int J Comput Sci Eng Technol 2014;5:26–30.Suche in Google Scholar

12. Kaplan, L. Optimization of satellite laser communication subject to Log-Square-Hoyt fading. IEEE Trans Aerospace Electron Syst 2011;47. https://doi.org/10.1109/TAES.2011.6034683.Suche in Google Scholar

13. Resmi, SR, Rafeekha, MJ. Performance evaluation of optical inter-satellite links with varied parameters. Int J Eng Res Technol 2015;4:271–3.Suche in Google Scholar

14. Kaur, H. Review on inter-satellite optical wireless communication system. Int J Adv Res Comput Sci 2017;8:48–51.Suche in Google Scholar

15. Singh, S, Singh, G, Kaur, R, Singh, M. Inter-satellite optical wireless communication system design: a study. Trends Opto Electro Opt Commun 2018;8:20–4.Suche in Google Scholar

16. Sushank, C, Neha, C, Saurabh, S, Choudhary. High speed inter-satellite communication system by incorporating hybrid polarization-wavelength division multiplexing scheme. J Opt Commun 2017;39:87–92.10.1515/joc-2016-0107Suche in Google Scholar

17. Singh, K, Bhamrah, MS. Investigations of transmitted power in inter-satellite optical wireless communication. Int J Comput Sci Inform Technol Security 2012;2:568–73.Suche in Google Scholar

18. Rashed, ANZ, Elshamy, AM, Abd El-Samie, FE, Faragallah, OS, Elshamy, EM, El-sayed, HS, et al. Optical image cryptosystem using double random phase encoding and Arnold’s Cat map, Opt Quant Electron 2016;48:1–18.10.1007/s11082-016-0461-xSuche in Google Scholar

19. Kaur, P, Gupta, A, Ghaudhary, M, Comparative analysis of Inter satellite Optical Wireless Channel for NRZ and RZ modulation formats for different levels of input power. Proc Comput Sci 2015;58:572–7. https://doi.org/10.1016/j.procs.2015.08.075.Suche in Google Scholar

20. Rashed, ANZ, Mohamed, SEN, Mohamed, AEA, Abd El-Samie, FE. Performance enhancement of IM/DD optical wireless systems. Photonic Netw Commun J 2018;36:114–27. https://doi.org/10.1007/s11107-018-0761-0.Suche in Google Scholar

21. Xingxing, L, Jiang, Z, Fujian, M, Hongbo, L, Yuan, Y, Xin, L. LEO precise orbit determination with inter-satellite links. Remote Sens J 2019;11:2117. https://doi.org/10.3390/rs11182117.Suche in Google Scholar

22. Sharma, B, Thapa, VK, Sharma, A. Role of wavelength division multiplexing scheme in free space optical communication systems. Int J Comput Applic 2019;178:10–4. https://doi.org/10.5120/ijca2019919103.Suche in Google Scholar

23. Amiri, IS, Mahmoud Houssien, FMA, Rashed, ANZ, Mohammed, AEA. Temperature effects on characteristics and performance of near-infrared wide bandwidth for different avalanche photodiodes structures. Results Phys 2019;14:102399. https://doi.org/10.1016/j.rinp.2019.102399.Suche in Google Scholar

24. Amiri, IS, Rashed, ANZ, Yupapin, P. Mathematical model analysis of dispersion and loss in photonic crystal fibers. J Opt Commun 2019. https://doi.org/10.1515/joc-2019-0052.Suche in Google Scholar

25. Amiri, IS, Rashed, ANZ, Yupapin, P. Basic functions of fiber Bragg grating effects on the optical fiber systems performance efficiency. J Opt Commun 2019. https://doi.org/10.1515/joc-2019-0042.Suche in Google Scholar

26. Amiri, IS, Rashed, ANZ, Mohammed, AEA, Aboelazm, MB, Yupapin, P. Nonlinear effects with semiconductor optical amplifiers. J Opt Commun 2019. https://doi.org/10.1515/joc-2019-0053.Suche in Google Scholar

27. Amiri, IS, Rashed, ANZ, Yupapin, P. High-speed light sources in high-speed optical passive local area communication networks. J Opt Commun 2019. https://doi.org/10.1515/joc-2019-0070.Suche in Google Scholar

28. Amiri, IS, Rashed, ANZ, Mohammed, AEA, El-Din, ES, Yupapin, P. Spatial continuous wave laser and spatiotemporal VCSEL for high-speed long haul optical wireless communication channels. J Opt Commun 2019. https://doi.org/10.1515/joc-2019-0061.Suche in Google Scholar

29. Amiri, IS, Rashed, ANZ, Yupapin, P. Average power model of optical Raman amplifiers based on frequency spacing and amplifier section stage optimization. J Opt Commun 2019. https://doi.org/10.1515/joc-2019-0081.Suche in Google Scholar

30. Amiri, IS, Rashed, ANZ. Power enhancement of the U-shape cavity microring resonator through gap and material characterizations. J Opt Commun 2019. https://doi.org/10.1515/joc-2019-0108.Suche in Google Scholar

31. Rashed, ANZ, Mohammed, AEA, Zaky, WF, Amiri, IS, Yupapin, P. The switching of optoelectronics to full optical computing operations based on nonlinear metamaterials. Results Phys 2019;13:102152. https://doi.org/10.1016/j.rinp.2019.02.088.Suche in Google Scholar

32. Amiri, IS, Rashed, ANZ. Signal processing criteria based on electro-optic filters for fiber optic access transceiver systems. J Opt Commun 2019. https://doi.org/10.1515/joc-2019-0116.Suche in Google Scholar

33. Amiri, IS, Rashed, ANZ, Yupapin, P. Pump laser automatic signal control for Erbium-doped fiber amplifier gain, noise figure, and output spectral power. J Opt Commun 2019. https://doi.org/10.1515/joc-2019-0203.Suche in Google Scholar

34. Amiri, IS, Rashed, ANZ, Parvez, AHMS, Paul, BK, Ahmed, K. Performance enhancement of fiber optic and optical wireless communication channels by using forward error correction codes. J Opt Commun 2019. https://doi.org/10.1515/joc-2019-0191.Suche in Google Scholar

35. Amiri, IS, Rashed, ANZ, Yupapin, P. Comparative simulation study of multi stage hybrid all optical fiber amplifiers in optical communications. J Opt Commun 2020. https://doi.org/10.1515/joc-2019-0132.Suche in Google Scholar

36. Pakarzadeh, H, Taghizadeh, M, Hatami, M. Designing a photonic crystal fiber for an ultra-broadband parametric amplification in telecommunication region. J Nonlinear Opt Phys Mater 2016;25:1650023. https://doi.org/10.1142/s0218863516500235.Suche in Google Scholar

37. Othman, N, Tay, KG, Mohd Shah, NS, Talib, R, Pakarzadeh, H, Cholan, NA. Saturation behavior of a one pump fiber optical parametric amplifier in the presence of the fourth-order dispersion coefficient and dispersion fluctuation. Chin Optics Lett 2019;17:110603. https://doi.org/10.3788/col201917.110603.Suche in Google Scholar

Received: 2019-06-27
Accepted: 2020-06-02
Published Online: 2020-06-29
Published in Print: 2024-01-29

© 2020 Walter de Gruyter GmbH, Berlin/Boston

Artikel in diesem Heft

  1. Frontmatter
  2. Amplifiers
  3. A Multistage High Performance Amplification Approach for Improving WDM Communication System
  4. Devices
  5. Design and performance analysis of all optical 4-bit parity generator and checker using dual-control dual SOA terahertz optical asymmetric demultiplexer (DCDS-TOAD)
  6. Micro-Ring Resonator-Based Sensors for Detection of Different Chemicals
  7. Quaternary Bit-Swap Logic with QPSK Signal Using Four Wave Mixing
  8. Fibers
  9. Comparative crosstalk performance analysis of different configurations of heterogeneous multicore fiber
  10. A Novel and Simple Formalism for Study of Effect of Kerr Nonlinearity on Petermann I and II Spot Sizes of Single-Mode-Graded Index Fiber
  11. Networks
  12. A controlled deflection routing and wavelength assignment based scheme in Optical Burst Switched (OBS) networks
  13. Experiment Study of Downstream Traffic Balancing Strategy on 40G Long Reach Coherent PON
  14. Reduction of Blocking Probability in Generalized Multi-Protocol Label Switched Optical Networks
  15. Performance Evaluation of Bidirectional Wavelength Division Multiple Access Broadband Optical Passive Elastic Networks Operation Efficiency
  16. Systems
  17. Evaluation of Atmospheric Detrimental Effects on Free Space Optical Communication System for Delhi Weather
  18. Design and Performance Investigations with Ultra High Speed Optical ALU
  19. Enhancement of Signals Characteristics with Least Effect of Optical Communication Losses for Dense Optical Communication Systems
  20. Performance comparison of code division multiple access and orthogonal frequency division multiplexing over turbulent effected free space optics link under the impact of advance coding formats
  21. Wavelength division multiplexing techniques based on multi transceiver in low earth orbit intersatellite systems
  22. Selection of suitable wavelengths for the dual-wavelength model of free space optics (FSO) systems for high-speed trains
  23. Effects of Laser Linewidth on the Performance of DP-QPSK DWDM System
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