Imaging soil moisture using GPR tomography and reflection field experiments

被引:3
|
作者
El-Behiry, Mohamed G. [1 ,2 ]
Hanafy, Sherif M. [1 ,3 ]
机构
[1] Cairo Univ, Fac Sci, Dept Geophys, Giza, Egypt
[2] King Abdulaziz Univ, Fac Earth Sci, Dept Geophys, Jeddah 21441, Saudi Arabia
[3] KAUST, Jeddah, Saudi Arabia
关键词
GPR; Tomography; Moisture content; Poplar tree; GROUND-PENETRATING RADAR; WATER-CONTENT; INVERSION; VELOCITY;
D O I
10.1007/s12517-012-0577-7
中图分类号
P [天文学、地球科学];
学科分类号
07 ;
摘要
We performed GPR tomography and GPR reflection field experiments using a 500-MHz antenna to image relative soil moisture distribution around a poplar tree at the botanic garden of Kiel University, Kiel, Germany. The GPR tomography field experiment is carried out in two consecutive phases in order to obtain ray paths traveling from all directions and intensively covering the target. The radar tomographic data are inverted using the authors' developed software code SeismoRad based on the finite difference technique. The attained Root-Mean-Square (RMS) errors after 200 iterations between the measured and calculated times range between 1.066 and 5.7 % in the two tomography experiments. The estimated GPR velocities range between 5.3 and 15.1 cm/ns. Two low-GPR velocity zones could be delineated coinciding with the locations of the tree root zone and a previously excavated sector. The high water saturation zone around the tree root system is found to be the main reason for such a decrease in GPR velocity. Interpretation of the two phases proved that the coverage of ray paths from all directions is important to delineate the effect of the poplar tree root system and hence to obtain accurate tomographic results. Furthermore, four GPR reflection lines are performed along the sides of the four trenches such that the antenna is moved longitudinally in the trenches and the radargrams are recorded along the horizontal xy-plane parallel to the ground surface. On the processed GPR reflection radargrams, relatively high-amplitude GPR anomalies could be outlined and are attributed to the boundary between the saturated and wet zones where different water contents affect the GPR velocity. Comparable results are obtained between the tomogram and the radar reflection results with respect to zones of increase in water content.
引用
收藏
页码:3493 / 3503
页数:11
相关论文
共 50 条
  • [21] Imaging of water content distributions inside a lysimeter using GPR tomography
    Schmalholz, J
    Stoffregen, H
    Kemna, A
    Yaramanci, U
    VADOSE ZONE JOURNAL, 2004, 3 (04) : 1106 - 1115
  • [22] Off- and on-ground GPR techniques for field-scale soil moisture mapping
    Ardekani, Mohammad Reza Mahmoudzadeh
    GEODERMA, 2013, 200 : 55 - 66
  • [23] Soil Moisture Profile Retrievals Using Reflection of Multifrequency Electromagnetic Signals
    Voronovich, Alexander G.
    Lataitis, Richard J.
    IEEE TRANSACTIONS ON GEOSCIENCE AND REMOTE SENSING, 2022, 60
  • [24] Field demonstration and characterization of a 10.6 micron reflection tomography imaging system
    Hanes, SA
    Benham, VN
    Lasche, JB
    Rowland, KB
    ATMOSPHERIC PROPAGATION, ADAPTIVE SYSTEMS, AND LASER RADAR TECHNOLOGY FOR REMOTE SENSING, 2000, 4167 : 230 - 241
  • [25] Linking root traits and soil moisture redistribution under Achnatherum splendens using electrical resistivity tomography and dye experiments
    Zuo, Feng-Lin
    Li, Xiao-Yan
    Yang, Xiao-Fan
    Ma, Yu-Jun
    Shi, Fang-Zhong
    Liao, Qi-Wen
    Li, Dong-Sheng
    Wang, Yang
    Wang, Ru-Dong
    GEODERMA, 2021, 386
  • [26] Mapping the spatial variation of soil moisture at the large scale using GPR for pavement applications
    Benedetto, Andrea
    Tosti, Fabio
    Ortuani, Bianca
    Giudici, Mauro
    Mele, Mauro
    NEAR SURFACE GEOPHYSICS, 2015, 13 (03) : 269 - 278
  • [27] Assessment and monitoring of moisture content variation in compacted tropical soil using GPR data
    Marchenaa, J. Pizarro
    Francosob, M. T.
    Moraes, H.
    Stenicod, N. de Oliveira
    REVISTA INGENIERIA DE CONSTRUCCION, 2023, 38 (02): : 334 - 348
  • [28] SATELLITE-BASED SOIL MOISTURE VALIDATION AND FIELD EXPERIMENTS; SKYLAB TO SMAP
    Jackson, T. J.
    Wigneron, J. P.
    Kerr, Y.
    Cosh, M.
    Colliander, A.
    Walker, J.
    Bindlish, R.
    2016 IEEE INTERNATIONAL GEOSCIENCE AND REMOTE SENSING SYMPOSIUM (IGARSS), 2016, : 3462 - 3465
  • [29] Soil moisture-temperature relationships: results from two field experiments
    Lakshmi, V
    Jackson, TJ
    Zehrfuhs, D
    HYDROLOGICAL PROCESSES, 2003, 17 (15) : 3041 - 3057
  • [30] Field measurement of soil moisture using neutron probes
    Chanasyk, DS
    Naeth, MA
    CANADIAN JOURNAL OF SOIL SCIENCE, 1996, 76 (03) : 317 - 323