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Optimal sequential node deployment in underground mines with partial map discovery

  • Patrick Duane
  • , Avery Christie
  • , Sihua Shao
  • , Vasilis Androulakis
  • , Hassan Khaniani
  • , Mostafa Hassanalian
  • , Pedram Roghanchi

Research output: Contribution to journalArticlepeer-review

1 Scopus citations

Abstract

In the event of a mine emergency, the inherently unstable environment poses significant risks and challenges to rescue operations. Intelligent robotic systems have emerged as a promising solution to aid in such rescues, yet their effectiveness is often limited by compromised or insufficient communication infrastructure. To address this, there is a critical need for a temporary, deployable wireless communication network that can support both time-sensitive environmental monitoring (e.g., toxic or flammable gases) and high-throughput data transmission, such as video and 3D mapping. Unlike above-ground environments, radio wave propagation in underground tunnels is highly affected by multipath and waveguide effects. This research proposes a sequential mesh node deployment strategy based on a ray-tracing propagation model that accounts for these unique characteristics. The objective is to maximize end-to-end throughput across the network without prior knowledge of the post-disaster map. A simplified path loss approximation is also introduced as a computationally efficient alternative to full ray-tracing. Both models are integrated into the OMNeT++ simulation framework and compared to a baseline binary coverage method. Results show that throughput-aware node placement significantly improves spatial average throughput, and that the approximation method offers a high-performance, real-time deployment solution with reduced computational overhead.

Original languageEnglish
Article number107198
Number of pages12
JournalTunnelling and Underground Space Technology
Volume168
DOIs
StatePublished - Feb 2026

Bibliographical note

Publisher Copyright:
© 2025 The Author(s)

Funding

This study was funded by the National Institute for Occupational Safety and Health (NIOSH), USA under the award # U60OH012351. The views, opinions, and recommendations expressed herein are solely those of the authors and do not necessarily reflect the views of NIOSH. Mentions of trade names, commercial products, or organizations does not imply endorsement by the authors nor the funding organization.

FundersFunder number
National Institute for Occupational Safety and HealthU60OH012351

    Keywords

    • Ray-tracing signal propagation
    • Sequential node deployment
    • Throughput optimization
    • Underground mine communication
    • Wireless mesh networks

    ASJC Scopus subject areas

    • Building and Construction
    • Geotechnical Engineering and Engineering Geology

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