DocumentCode
1499490
Title
An investigation of acoustic-to-seismic coupling to detect buried antitank landmines
Author
Sabatier, James M. ; Xiang, Ning
Author_Institution
Nat. Center for Phys. Acoust., Mississippi Univ., MS, USA
Volume
39
Issue
6
fYear
2001
fDate
6/1/2001 12:00:00 AM
Firstpage
1146
Lastpage
1154
Abstract
When an acoustic wave strikes the ground surface, energy is coupled into the motion of the fluid/solid frame comprising the ground. This phenomenon is termed acoustic-to-seismic (A/S) coupling In the ground, the Biot Type Il or Biot slow waves travel with a speed well below the speed of sound in air. The porous nature of the ground causes the entering acoustic wave to bend toward the normal and the acoustic wave propagates downward into the ground. When an object is buried a few cm below the ground surface, it distinctly changes the A/S coupled motion. These changes can be sensed by measuring vibrational particle velocity on the ground surface. Taking advantage of a noncontact remote measurement technique, the A/S coupling measurements for antitank landmine detection are conducted using a laser Doppler-vibrometer (LDV). Recent field measurements in both calibration and blind mine lanes and the resulting data analysts, which demonstrate the effectiveness of this technique, are described in this paper
Keywords
acoustic variables measurement; buried object detection; measurement by laser beam; military equipment; vibration measurement; weapons; A/S coupling measurements; Biot Type Il waves; Biot slow waves; acoustic wave; acoustic-to-seismic coupling; antitank landmine detection; buried antitank landmines; laser Doppler-vibrometer; noncontact remote measurement technique; vibrational particle velocity; Acoustic measurements; Acoustic propagation; Acoustic signal detection; Acoustic waves; Measurement techniques; Particle measurements; Solids; Surface acoustic waves; Velocity measurement; Vibration measurement;
fLanguage
English
Journal_Title
Geoscience and Remote Sensing, IEEE Transactions on
Publisher
ieee
ISSN
0196-2892
Type
jour
DOI
10.1109/36.927429
Filename
927429
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