Startseite Design and Parameter Analysis of Underwater Wireless Optical Communication with Different Water Samples
Artikel
Lizenziert
Nicht lizenziert Erfordert eine Authentifizierung

Design and Parameter Analysis of Underwater Wireless Optical Communication with Different Water Samples

  • P. Vijayakumari EMAIL logo und M. Sumathi
Veröffentlicht/Copyright: 12. April 2019
Veröffentlichen auch Sie bei De Gruyter Brill

Abstract

Underwater optical wireless communications (UOWC) have recently received considerable attention for both research and commercial use because of their facility to provide a much higher data rate than the traditional acoustic method within comparatively small distances. Many potential application of UWOC systems have been proposed for environmental monitoring, exploration, disaster precaution, and military operations. In all the above mentioned research works, high absorption and scattering of optical transmission in the water limits the benefits of UOWC systems to only few meters. In order to overcome these technical challenges, several new system design approaches proposed. This work is done in salt water. Salt water cannot be used for drinking because it causes dehydration. This paper analysis the performance of the system using different water samples like salt water, turbid water, normal water, etc.

References

1. Vijayakumari P. Study of performance factors of underwater Wi-Fi optical communication link. IEEE Conference, 2015.10.1109/ICCICCT.2015.7475392Suche in Google Scholar

2. Wen D. Design of underwater optical communication system. IEEE conference, OCEAN, 2016.10.1109/OCEANSAP.2016.7485659Suche in Google Scholar

3. Shinde S, Jadhav S. Solar-panel receiver design for optical wireless communication and simultaneous energy harvesting. IJARCCE. 2016;5:756–8.Suche in Google Scholar

4. Kaushal H. Underwater optical wireless communication. The North Cap University Gurgaon India, IEEE, 2017.10.1109/ACCESS.2016.2552538Suche in Google Scholar

5. Quevedo E, Delory. Underwater video enhancement using multi-camera super resolution. Oceanic Platform of the Canary Island, Spain, IEEE, 2017.10.1016/j.optcom.2017.06.054Suche in Google Scholar

6. Guo I, Ng TK, Park K-H, Alouini M-S, Ooi YBS. Bandwidth enhancement of wireless optical communication link using a near-infrared laser over turbid underwater channel. Conference on laser and Electro-Optics Pacific Rim (CLEO-2017).Suche in Google Scholar

7. Khalighi M-A, Hamza T, Bourennane S, Leon P, Opderbecke J. Underwater wireless optical communications using silicon photo-multipliers. IEEE Photonics soci J. 2017;9.10.1109/JPHOT.2017.2726565Suche in Google Scholar

8. Wang Z. On the design of a solar-pannel receiver for optical wireless communications with simultaneous energy harvesting. IEEE j selected areas in comm. 2015;33:1612–23.10.1109/JSAC.2015.2391811Suche in Google Scholar

9. Boucouvalas NC, Peppas KP, Yiannopoulos K, Ghassemlooy Z. Underwater optical wireless commnications with optical amplification and spatial diversity. IEEE, 2016.10.1109/LPT.2016.2607278Suche in Google Scholar

10. Majlesein B, Gholami A, Ghassemlooy Z. A complete model for underwater optical wireless communications system. All content following this page was uploaded by Zabih Ghassemlooy, IEEE on 17 November 2018.10.1109/CSNDSP.2018.8471869Suche in Google Scholar

11. Parmar A, Sharma A, Guleria C. Analysis of optical wireless communication systems. J Opt Commun. 2018. DOI:10.1515/joc-2018-0115.Suche in Google Scholar

12. Bhalerao MV, Sumathi M, Sonavane SS. Line of sight model for visible light communication using Lambertian radiation pattern of LED. Int J Commun Syst. 2016. DOI:10.1002/dac.3250.Suche in Google Scholar

13. Vasudevan B, Ayyadurai M, Maheswar R, Mahalakshmi PN, Ayyanar Irajs.Amiri. Numerical study on optical properties of non-circular meta material optical fiber. Results in Physics. 2018;10:55–60. https://doi.org/10.1016/j.rinp.2018.05.023.10.1016/j.rinp.2018.05.023Suche in Google Scholar

14. Shakthi Murugan KH, Sumathi, M. Millimeter Waves over Free Space Optics System for 5G Application. J opti Comm. 2018.10.1515/joc-2018-0159Suche in Google Scholar

15. Cornelius Neumann. Development in Illumination Optics, Advanced Optical Technologies. De Gruyter, 2019;8:1–84.Suche in Google Scholar

16. Parmar AS, Abhishek GC. Analysis of Optical Wireless Communication Systems. J Opti Comm. 2018. https://doi.org/10.1515/joc-2018-0115.Suche in Google Scholar

17. Rashed ANZ. Comparison between NRZ/RZ Modulation Techniques for Upgrading Long Haul Optical Wireless Communication Systems. J Opti Comm. 2019. https://doi.org/10.1515/joc-2019-0038.Suche in Google Scholar

18. Rashed ANZ., Tabbour MSF., Vijayakumari P. Numerical Analysis of Optical Properties Using Octagonal Shaped Photonic Crystal Fiber. J Opti Comm 2019.10.1515/joc-2019-0013Suche in Google Scholar

19. https://www.electronishub.org.Suche in Google Scholar

Received: 2019-01-30
Accepted: 2019-03-25
Published Online: 2019-04-12
Published in Print: 2023-01-27

© 2019 Walter de Gruyter GmbH, Berlin/Boston

Artikel in diesem Heft

  1. Frontmatter
  2. Amplifiers
  3. Unified Formalism for Erbium-Doped Fiber Amplifiers and Lasers
  4. Nonlinear Effects with Semiconductor Optical Amplifiers
  5. Average Power Model of Optical Raman Amplifiers Based on Frequency Spacing and Amplifier Section Stage Optimization
  6. Devices
  7. An Optical Half Adder Using Nonlinear Ring Resonator Based on Photonic Crystal
  8. Implementation of Polarization-Encoded Quantum Fredkin Gate Using Kerr Effect
  9. Lasers
  10. Spatial Continuous Wave Laser and Spatiotemporal VCSEL for High-Speed Long Haul Optical Wireless Communication Channels
  11. Measurements
  12. Graphene Oxide Effect on Improvement of Silver Surface Plasmon Resonance D-Shaped Optical Fiber Sensor
  13. Networks
  14. High-Speed Light Sources in High-Speed Optical Passive Local Area Communication Networks
  15. RSVP-TE Bilateral-Recursive Region Re-Routing Crankback Mechanism for Large-Scale Optical Networks
  16. An Intelligent Vehicle Control System for Enhancing Road Safety Using Optimal Visible Light Communication Network
  17. Systems
  18. Design and Parameter Analysis of Underwater Wireless Optical Communication with Different Water Samples
  19. Free Space Optical Communication System under Different Weather Conditions
  20. Windowing Techniques for Reducing PAPR of OFDM in Li-Fi Systems
  21. Effects of Order Super Gaussian Pulses on the Performance of High Data Rate Optical Fiber Channel in the Presence of Self Phase Modulation
  22. Evaluation of Proposed Coherent Optical OFDM Link Using X-QAM with Polarization Division Multiplexing
  23. Theory
  24. Mathematical Model Analysis of Dispersion and Loss in Photonic Crystal Fibers
  25. Simulation of Optical ISL with 48 Transponders and Performance Analysis Using Ber and Q-Factor
Heruntergeladen am 22.9.2025 von https://www.degruyterbrill.com/document/doi/10.1515/joc-2019-0035/html
Button zum nach oben scrollen