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Design and performance optimization of 96 x 40 Gbps CSRZ based DWDM long-haul system

  • Jaswinder Singh Ghera EMAIL logo and Vikrant Sharma
Published/Copyright: July 1, 2022
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Abstract

In this paper, we have designed and presented a simulation analysis of 96 × 40 Gbps CSRZ based DWDM long-haul transmission system under the influence of Kerr non-linearities using hybrid dispersion compensation technique. The proposed system performance is measured at 50 GHz channel spacing in terms of BER, Q-factor and eye-diagram for the varied launched power ranging from −4 dB m to 12 dB m of CW laser array and various transmission distances. We have implemented pre-filtering before multiplexing the modulated data of all the channels and post-filtering after de-multiplexing for avoiding co-channel interference and to suppress the cross-talk. By optimizing the system parameters, the transmission distance of 16,500 km is achieved for BER value of 1.48,875E-14 with corresponding Q-factor value of 7.55,989 at 6 dB m input power. The CSRZ modulated system has shown much robustness against the occurred linear and non-linear degradation factors due to its narrow spectrum.

Keywords: DWDM; CD; CSRZ; DCF; EDFA; FWM

Corresponding author: Jaswinder Singh Ghera, Research Scholar, Electronics & Communication Engineering, GNA University, Phagwara, Punjab, India, E-mail:

  1. Author contributions: 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. Patnaik, B, Sahu, PK. Ultra high capacity 1.28 Tbps DWDM system design and simulation using optimized modulation format. Optik 2013;124:1567–73. https://doi.org/10.1016/j.ijleo.2012.04.019.Search in Google Scholar

2. Sabapathi, T, Sundaravadivelu, S. Analysis of bottlenecks in DWDM fiber optic communication system. Optic 2011;122:1453–7. https://doi.org/10.1016/j.ijleo.2010.08.023.Search in Google Scholar

3. Subhrajit, P, Patnaik, B, Rasmita, P. DP-QPSK based 400 Gbps/channel fiber optic DWDM system. In: IEEE 5th international conference on engineering technologies and applied sciences 22-23 Nov 2018, Bangkok Thailand; 2018.Search in Google Scholar

4. Ali, F, Khan, Y, Shahryar Shafique, Q, Ahmad, S, Muhammad, W. Effect of fiber-optics non-linearities in long- Haul and ultra-high speed DWDM optical transmission networks at 10, 40 and 100 Gb/s ultra-high speed data rates. DE GRUYTER J Opt Commun 2018;1–7.10.1515/joc-2018-0173Search in Google Scholar

5. Aggarwal, PG. Fiber-Optic communication systems, 3rd ed. New York: John Wiley & Sons; 2002:243–59 pp.Search in Google Scholar

6. Sharma, V, Sharma, A, Dalvir, K. Performance optimization of 45-channel super- dense wavelength-division-multiplexed (SDWDM) optical add–drop multiplexer (OADM) ring network. DE GRUYTER J Opt Commun 2015;36:131–5. https://doi.org/10.1515/joc-2014-0058.Search in Google Scholar

7. Tomas, I, Petr, I. Suppression of nonlinear XPM phenomenon by selection of appropriate transmit power levels in the DWDM system. Hindawi Int J Opt 2019;2019:1–8.10.1155/2019/9357949Search in Google Scholar

8. Rupindra, M, Ingrida, L, Andisand, S, Jurgis, P. Minimization of FWM effect in nonlinear optical fiber using variable channel spacing technique. In: IEEE invited paper 2016 advances in wireless and optical communications (RTUWO); 2016:1–4.10.1109/RTUWO.2016.7821844Search in Google Scholar

9. Huszanik, T, Jan, T, Ovsenik, L. Impact of optical fiber nonlinear phenomenon on the 16-channel DWDM OC-768 long-haul link. Elektrotehniski Vestn 2018;85:255–62.Search in Google Scholar

10. Ali, F, Khan, Y, Qureshi, SS. Transmission performance comparison of 16 *100 Gbps DWDM long-haul optical networks at different advance modulation formats under the Influence of non-linear impairments. DE GRUYTER Journal of Optical Communication 2019;1–10.10.1515/joc-2018-0185Search in Google Scholar

11. Fauja, K, Wayan, M, Fahmi, Dodi, Z, Fakhriy, H. Comparative analysis of dispersion compensating fiber in DWDM system using 10 Gbps and 40 Gbps bit rate. In: IEEE 2018 international conference on information technology and electrical engineering (ICITEE); 2018:412–7.10.1109/ICITEED.2018.8534851Search in Google Scholar

12. Anu, S, Sharma Ajay, K, Kaler, RS. Simulation of high capacity 40 Gb/s long haul DWDM system using different modulation formats and dispersion compensation schemes in the presence of Kerr’s effect. Sci Dir Optik 2010;121:739–49.10.1016/j.ijleo.2008.11.009Search in Google Scholar

13. Lucky, S, Chaubey, VK. Design and simulation of CSRZ modulated 40 Gbps DWDM system in presence of Kerr non linearity. In: IEEE 2012 international conference on wireless and optical communications networks (WOCN); 2012:1–5.Search in Google Scholar

14. Mishra, P, Panda, T, Rout, SS, Palai, G. Investigation of a 16 channel 40 Gbps varied GVD DWDM system using dispersion compensating fiber. In: IEEE 2020. international conference on computer science, engineering and applications (ICCSEA); 2020:1–5.10.1109/ICCSEA49143.2020.9132934Search in Google Scholar

15. Bhatia, R, Sharma, AK, Saxena, J. Performance evaluation of N × 80 Gb/s DWDM optical system over SSMF for CSRZ-DPSK and RZ-DPSK signals with optimized alternate polarization. J Opt Commun 2015;36:155–9. https://doi.org/10.1515/joc-2014-0052.Search in Google Scholar

16. Lucky, S, Shanbhag Akshay, G, Chaubey, VK. Design and simulation of modified duobinary modulated 40 Gbps 32 channel DWDM optical link for improved non-linear performance. Cogent Eng 2016;3:1–12.10.1080/23311916.2016.1256562Search in Google Scholar

17. Rajesh, M, Atif Mohd, Shukla, NK, Dwivedi, CK. Performance analysis of 8 channel DWDM systems via dispersion compensation fiber using NRZ, RZ, CSRZ modulation schemes. In: IEEE international conference on computer communication and informatics (ICCCI-2018), India, Coimbatore; 2018:1–5.Search in Google Scholar

18. Sharma, D, Prajapati, YK. Analytical study of DWDM optical long haul network with symmetrical dispersion compensation. Indian J Sci Technol 2018;11:1–12. https://doi.org/10.17485/ijst/2018/v11i17/102339.Search in Google Scholar

19. Bhatia, R, Sharma, AK, Saxena, J. Optimized alternate polarization and Four wave mixing in 60-Gb/s DWDM transmission system. In: 2014 recent advances in engineering and computational sciences (RAECS); 2014:1–4. https://doi.org/10.1109/raecs.2014.6799541.Search in Google Scholar

20. Sharma, D, Prajapati, YK, Upadhyay, A. 16 × 40 GB/s, 32 × 40 GB/s and 64 × 40 GB/s DWDM Network. In: International conference on computational and characterization techniques in engineering & sciences (CCTES); 2018:173–176.10.1109/CCTES.2018.8674065Search in Google Scholar

21. Bhatia, R, Sharma, AK, Saxena, J. Effect of optimized alternate polarization on performance of N x 60 Gb/s WDM transmission system In: 2013 high capacity optical networks and emerging/enabling technologies; 2013:170–174.10.1109/HONET.2013.6729780Search in Google Scholar

22. Sharma, D, Prajapati, YK. Performance analysis of DWDM system for different modulation schemes using variations in channel spacing. DE GRUYTER J Opt Commun 2016:1–3; aop. https://doi.org/10.1515/joc-2016-0011.Search in Google Scholar

23. Mohammad, F, Tahsin, F, Khan Rahman, MA. Post mitigation performance comparison of RZ-DPSK and CSRZ-DPSK DWDM systems. In: IEEE 8th international conference on electrical and computer engineering, 20–22 December, 2014, Dhaka, Bangladesh; 2014:433–6 pp.10.1109/ICECE.2014.7026971Search in Google Scholar

24. Tomas, H, Jan, T, Lubos, O. Comparative analysis of optical modulation in four-channel DWDM system in the presence of fiber non-linearities. IEEE 2018:468–73.Search in Google Scholar

25. Kumar, C, Ghanendra, K. Performance analysis of SD-WDM system using alternate polarization for RZ-DPSK and CSRZ-DPSK signals. Wireless Pers Commun 2021;121:1–11. https://doi.org/10.1007/s11277-021-08621-x.Search in Google Scholar

26. Bhatia, R, Sharma, AK, Saxena, J. Performance improvement for N × 80-Gb/s WDM transmission link with optimized alternate polarization. Optik 2013;124:6013–6. https://doi.org/10.1016/j.ijleo.2013.04.109.Search in Google Scholar

27. Zhu, Y, Cordina, K, Jolley, N, Feced, R, Kee, H, Rickard, R, et al.. 1.6 bit/s/Hz orthogonally polarized-CSRZ-DQPSK transmission of 8x40 Gbit/s over 320 km NDSF. In: Optical fiber communication conference, technical digest (CD). Optica Publishing Group; 2004.Search in Google Scholar

28. Randhawa, R, Sohalb, JS, Kaler, RS. Pre, post and hybrid dispersion mapping techniques for CSRZ optical networks with non-linearities. Optik 2010;121:1274–9.10.1016/j.ijleo.2009.01.032Search in Google Scholar

29. Mynbaev Djafar, K, Scheiner Lowell, L. Fiber-optic communications technology, Chapter-12, Fiber-Optic Networks. Pearson Education Asia (New Delhi); ISBN 81-7808-317-5, 2001:508–511 pp.Search in Google Scholar

30. Sabapathi, T, Poorvitha, R. Combating the Effect of non-linearities in DWDM system. In: 2017 IEEE 4th international conference on electronics and communication systems (ICECS); 2017:38–42 pp.10.1109/ECS.2017.8067876Search in Google Scholar

Received: 2021-10-29
Accepted: 2022-06-07
Published Online: 2022-07-01
Published in Print: 2024-10-28

© 2022 Walter de Gruyter GmbH, Berlin/Boston

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