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January 14, 2026Technologies0 citationsOpen Access

LiDAR-Based Skin Depth Analysis of Subterranean RF Propagation in Sandstone and Limestone Caves

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AJAtawit JantaupaleeKing Mongkut's University of Technology ThonburiSPSirigiet PhunklangSuranaree University of TechnologyPKPeerasan KhamsaleeSuranaree University of Technology

Key Points

  • This research aims to analyze RF wave propagation in sandstone and limestone caves using LiDAR technology.
  • Utilized LiDAR-derived 3D models to assess cave geometry.
  • Conducted RF transmission and reception measurements across various frequency bands.
  • Analyzed the effects of cave structures on RF attenuation behavior.
  • Found significant differences in RF attenuation based on cave geometry and electrical properties.
  • The sandstone cave showed lower attenuation due to more uniform geometry and higher conductivity.
  • The limestone cave exhibited higher attenuation due to irregular structure.

Abstract

This study investigates radio frequency (RF) wave propagation in sandstone and limestone cave environments, emphasizing the use of LiDAR-derived three-dimensional (3D) models to characterize cave geometry and support waveguide-based propagation analysis incorporating skin depth effects. RF transmission and reception measurements were conducted under line-of-sight (LOS) conditions across frequency bands from Low Frequency (LF) to Ultra-High Frequency (UHF). Comparative results reveal distinct attenuation behaviors governed by differences in cave geometry and electrical properties. The sandstone cave, with a more uniform geometry and relatively higher electrical conductivity, exhibits lower attenuation across most frequency bands, whereas the limestone cave shows higher attenuation due to its irregular structure. LiDAR-based 3D models are employed to extract key geometric parameters, including cavity dimensions, wall roughness, and wall inclination, which are incorporated into the proposed analytical framework. The model is further validated using experimental field measurements, demonstrating that the inclusion of LiDAR-derived geometry and skin depth effects enables a more realistic representation of underground RF propagation for communication system analysis.

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Cite This Study

Jantaupalee et al. (2026) studied this question.

synapsesocial.com/papers/6966f33213bf7a6f02c0113ahttps://doi.org/10.3390/technologies14010053
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