Skip to main content
Journal cover image

Field Trial of Coexistence and Simultaneous Switching of Real-Time Fiber Sensing and Coherent 400 GbE in a Dense Urban Environment

Publication ,  Journal Article
Wang, Z; Huang, YK; Ip, E; Qi, Z; Zussman, G; Kilper, D; Asahi, K; Kageshima, H; Aono, Y; Chen, T
Published in: Journal of Lightwave Technology
February 15, 2024

Recent advances in optical fiber sensing have enabled telecom network operators to monitor their fiber infrastructure while generating new revenue in various application scenarios including data center interconnect, public safety, smart cities, and seismic monitoring. However, given the high utilization of fiber networks for data transmission, it is undesirable to allocate dedicated fiber strands solely for sensing purposes. Therefore, it is crucial to ensure the reliable coexistence of fiber sensing and communication signals that co-propagate on the same fiber. In this article, we conduct field trials in a reconfigurable optical add-drop multiplexer (ROADM) network enabled by the PAWR COSMOS testbed, utilizing metro area fibers in Manhattan, New York City. We verify the coexistence of real-time constant-amplitude distributed acoustic sensing (DAS), coherent 400 GbE, and analog radio-over-fiber (ARoF) signals. Measurement results obtained from the field trial demonstrate that the quality of transmission (QoT) of the coherent 400 GbE signal remains unaffected during co-propagation with DAS and ARoF signals in adjacent dense wavelength-division multiplexing (DWDM) channels. In addition, we present a use case of this coexistence system supporting preemptive DAS-informed optical path switching before link failure.

Duke Scholars

Published In

Journal of Lightwave Technology

DOI

EISSN

1558-2213

ISSN

0733-8724

Publication Date

February 15, 2024

Volume

42

Issue

4

Start / End Page

1304 / 1311

Related Subject Headings

  • Optoelectronics & Photonics
  • 5102 Atomic, molecular and optical physics
  • 4008 Electrical engineering
  • 4006 Communications engineering
  • 1005 Communications Technologies
  • 0906 Electrical and Electronic Engineering
  • 0205 Optical Physics
 

Citation

APA
Chicago
ICMJE
MLA
NLM
Wang, Z., Huang, Y. K., Ip, E., Qi, Z., Zussman, G., Kilper, D., … Chen, T. (2024). Field Trial of Coexistence and Simultaneous Switching of Real-Time Fiber Sensing and Coherent 400 GbE in a Dense Urban Environment. Journal of Lightwave Technology, 42(4), 1304–1311. https://doi.org/10.1109/JLT.2023.3319166
Wang, Z., Y. K. Huang, E. Ip, Z. Qi, G. Zussman, D. Kilper, K. Asahi, H. Kageshima, Y. Aono, and T. Chen. “Field Trial of Coexistence and Simultaneous Switching of Real-Time Fiber Sensing and Coherent 400 GbE in a Dense Urban Environment.” Journal of Lightwave Technology 42, no. 4 (February 15, 2024): 1304–11. https://doi.org/10.1109/JLT.2023.3319166.
Wang Z, Huang YK, Ip E, Qi Z, Zussman G, Kilper D, et al. Field Trial of Coexistence and Simultaneous Switching of Real-Time Fiber Sensing and Coherent 400 GbE in a Dense Urban Environment. Journal of Lightwave Technology. 2024 Feb 15;42(4):1304–11.
Wang, Z., et al. “Field Trial of Coexistence and Simultaneous Switching of Real-Time Fiber Sensing and Coherent 400 GbE in a Dense Urban Environment.” Journal of Lightwave Technology, vol. 42, no. 4, Feb. 2024, pp. 1304–11. Scopus, doi:10.1109/JLT.2023.3319166.
Wang Z, Huang YK, Ip E, Qi Z, Zussman G, Kilper D, Asahi K, Kageshima H, Aono Y, Chen T. Field Trial of Coexistence and Simultaneous Switching of Real-Time Fiber Sensing and Coherent 400 GbE in a Dense Urban Environment. Journal of Lightwave Technology. 2024 Feb 15;42(4):1304–1311.
Journal cover image

Published In

Journal of Lightwave Technology

DOI

EISSN

1558-2213

ISSN

0733-8724

Publication Date

February 15, 2024

Volume

42

Issue

4

Start / End Page

1304 / 1311

Related Subject Headings

  • Optoelectronics & Photonics
  • 5102 Atomic, molecular and optical physics
  • 4008 Electrical engineering
  • 4006 Communications engineering
  • 1005 Communications Technologies
  • 0906 Electrical and Electronic Engineering
  • 0205 Optical Physics