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April 1, 2026Applied Sciences0 citationsOpen Access

Integrated Mine Geophysics for Identifying Zones of Geological Instability

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NZNail ZamaliyevASAlexander SADCHIKOVDADenis Akhmatnurov

Key Points

  • To develop a reliable geophysical methodology for identifying geological instability zones in coal mining areas.
  • Utilized electrical prospecting to examine coal seams and surrounding rocks.
  • Analyzed conductivity anomalies to identify tectonic disturbances and lithological variations.
  • Conducted field investigations to validate findings against geological records.
  • Compared identified zones with documented tectonic features.
  • Identified anomalous zones correlated well with geological records.
  • Demonstrated method sensitivity to local environmental variations.
  • Validated the approach's consistent performance in detecting hazards.
  • Showed potential for integration into mine monitoring systems.

Abstract

The safety and stability of underground coal mining are largely determined by the structural features of coal seams and surrounding rocks. Geological heterogeneities such as faults, fracture zones, and lithological variations strongly influence the distribution of rock pressure and the occurrence of geodynamic hazards. This highlights the need for reliable geophysical methods capable of identifying such zones under mining conditions. Electrical prospecting represents a promising diagnostic approach, as it is highly sensitive to changes in the physical properties of rocks. Unlike conventional geological mapping, it enables the detection of hidden structures and weakened zones often invisible to direct observation. Advances in instrumentation and data processing have further expanded the applicability of electrical methods in complex environments. This study introduces a methodology of electrical prospecting observations for the diagnosis of coal seams. The analysis focuses on conductivity anomalies that reflect tectonic disturbances, fracture systems, and lithological heterogeneities. Field investigations demonstrated the sensitivity of the method to local environmental variations. Comparison with geological records confirmed the validity of the approach: the identified anomalous zones correlated well with documented tectonic features. The methodology showed a stable performance and revealed potential for integration into mine monitoring systems. It allows the identification of areas associated with elevated rock pressure and possible geodynamic activity, thereby contributing to safer underground operations. In the longer term, electrical prospecting may be applied to other coal deposits, including those with a high gas content and complex structure. The development of automated interpretation tools and machine learning algorithms could further increase processing efficiency and improve predictive reliability. Overall, the results confirm that electrical prospecting in mining environments can become an effective instrument for enhancing safety and building more accurate geological–geophysical models of coal seams.

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Cite This Study

Zamaliyev et al. (2026) studied this question.

synapsesocial.com/papers/69ccb72e16edfba7beb89025https://doi.org/10.3390/app16073303
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