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Related Experiment Video

Updated: Apr 29, 2026

A Random-displacement Measurement by Combining a Magnetic Scale and Two Fiber Bragg Gratings
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Displacement parameter inversion for a novel electromagnetic underground displacement sensor.

Nanying Shentu1, Qing Li2, Xiong Li3

  • 1College of Mechatronics Engineering, China Jiliang University, Hangzhou 310018, Zhejiang, China. stnying_2@163.com.

Sensors (Basel, Switzerland)
|May 27, 2014
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Summary

This study introduces a new method for underground displacement monitoring using an H-type electromagnetic sensor. The EELA forward modeling-approximate inversion method accurately predicts horizontal displacement with less than 3 mm error, enhancing geological hazard forecasting.

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Area of Science:

  • Geotechnical Engineering
  • Geophysics
  • Sensor Technology

Background:

  • Underground displacement monitoring is crucial for geological hazard prediction.
  • Existing methods require advanced techniques for subsurface measurements.
  • Previous work developed an H-type electromagnetic sensor and the Equation-based Equivalent Loop Approach (EELA).

Purpose of the Study:

  • To present a novel underground displacement inversion approach.
  • To deduce underground horizontal displacement using the H-type sensor and EELA.
  • To validate the accuracy and robustness of the proposed inversion method.

Main Methods:

  • Developed the "EELA forward modeling-approximate inversion method".
  • Combined EELA forward simulation with approximate optimization inversion theory.
  • Conducted comparative studies between experimental and theoretical displacement values.

Main Results:

  • The inversion method achieved a horizontal displacement inversion discrepancy generally less than 3 mm.
  • Effective and robust prediction of underground horizontal displacement was demonstrated.
  • Performance was validated under varied tilt angles and initial axial distances.

Conclusions:

  • The proposed parameter inversion method effectively predicts underground horizontal displacement for the H-type sensor.
  • The technique shows applicability for practical geo-engineering applications.
  • This advancement contributes to more accurate geological disaster monitoring.