Mapping inland water bathymetry with Ground Penetrating Radar (GPR) on board Unmanned Aerial Systems (UASs)

被引:20
|
作者
Bandini, Filippo [1 ]
Kooij, Lukas [1 ]
Mortensen, Bjorn Karl [1 ]
Caspersen, Marie Boeskov [1 ]
Thomsen, Lasse Gammelby [1 ]
Olesen, Daniel [2 ]
Bauer-Gottwein, Peter [1 ]
机构
[1] Tech Univ Denmark, Dept Environm Engn, DK-2800 Lyngby, Denmark
[2] Tech Univ Denmark, Natl Space Inst, DK-2800 Lyngby, Denmark
关键词
UAS; Drone; Water depth; Bathymetry; Sonar; GPR; CHANNEL CHANGE; ICE-THICKNESS; MULTISPECTRAL SATELLITE; RIVER BATHYMETRY; AIRBORNE LIDAR; WOODY DEBRIS; RESOLUTION; SHALLOW; LAKE; IMAGERY;
D O I
10.1016/j.jhydrol.2022.128789
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
Bathymetry of inland water bodies is essential for river maintenance and flood risk management. Traditionally, in shallow water bodies, bathymetry is retrieved by operators wading through the water body with Real Time Kinematic (RTK) Global Navigation Satellite System (GNSS), whilst in deeper waters, it is retrieved with sonar instruments on manned or unmanned boats. In the past, researchers have documented the use of Ground Penetrating Radar (GPR) on boats (i.e. water-coupled GPR) for monitoring the bathymetry of frozen and non -frozen water bodies. Furthermore, GPR has been used on helicopters for monitoring ice and snow thickness. However, deployment of GPR on board Unmanned Aerial Systems (UASs) in non-frozen inland water bodies with electric conductivity higher than 100 mu S/cm (as is common in most inland waterbodies in non-polar regions) is unexplored. In this paper, we document the possibility to use drone-borne and water-coupled GPR in several cross-sections located in three different waterbodies (1 lake and 2 rivers) in Denmark. These waterbodies had different bed sediment materials and vegetation conditions, an electric conductivity varying from 200 to 340 mu S/ cm and depths up to 2.5 m. Drone-borne GPR showed accuracy similar to water-coupled GPR when compared to RTK GNSS ground-truth measurements, with a Mean Absolute Error (MAE) of approx. 8 cm. The only limitations of drone-borne GPR were i) more restrictive minimum depth requirement (typically 0.8-1.1 m for drone-borne GPR, while 0.3-0.4 m for water-coupled GPR) ii) requirement to fly the GPR antenna at altitudes of approx. 0.5 m above the water surface to avoid high spreading losses and strong surface clutter events hiding the signal. Finally, GPR measurements were benchmarked against traditional sonar measurements, showing that GPR measurements significantly outperform sonar measurements in waterbodies with medium or high density of aquatic vegetation.
引用
收藏
页数:15
相关论文
共 50 条
  • [21] Comparison of FMCW and pulse type ground-penetrating radar(GPR) for water leakage detection
    Kim, SW
    Kim, SY
    IGARSS 2005: IEEE International Geoscience and Remote Sensing Symposium, Vols 1-8, Proceedings, 2005, : 4596 - 4599
  • [22] Mapping water pipeline leakage by ground-penetrating radar diffraction imaging
    Liu, Yu
    Shi, Zhanjie
    GEOPHYSICS, 2022, 87 (04) : WB1 - WB7
  • [23] A Broadband CMOS Receiver for Multi-Channel Ground-Penetrating Radar (GPR) Systems
    Phong Nguyen
    Mandal, Soumyajit
    2020 IEEE 63RD INTERNATIONAL MIDWEST SYMPOSIUM ON CIRCUITS AND SYSTEMS (MWSCAS), 2020, : 109 - 112
  • [24] Recent Advancements in Mapping and Evaluation of Tree Root Systems with Ground Penetrating Radar
    Yeasmin, Dilruba
    Bushoven, John T.
    Krauter, Charles F.
    Mucciardi, Anthony
    Vizcarra, Allen
    HORTSCIENCE, 2018, 53 (09) : S102 - S103
  • [25] Detection of hidden mining-induced ground fissures via unmanned aerial vehicle infrared system and ground-penetrating radar
    Zhao, Yixin
    Ling, Chunwei
    Zhang, Kangning
    Gao, Yirui
    Sun, Bo
    Wang, Xiaoliang
    INTERNATIONAL JOURNAL OF ROCK MECHANICS AND MINING SCIENCES, 2022, 160
  • [26] Mapping of active faults in the Dehradun valley using Ground Penetrating Radar (GPR), NW Garhwal Himalaya, India
    Jayangondaperumal, R.
    Kumar, Senthil
    Sundriyal, Y. P.
    Chamayal, L. S.
    Patidhar, Atul K.
    Chaudhary, Shipra
    HIMALAYAN GEOLOGY, 2008, 29 (03): : 35 - 35
  • [27] Mapping Buried Karst Features with Capacitive-Coupled Resistivity System (CCR) and Ground Penetrating Radar (GPR)
    Neukum, C.
    Gruetzner, C.
    Azzam, R.
    Reicherter, K.
    ADVANCES IN RESEARCH IN KARST MEDIA, 2010, : 429 - 434
  • [28] Characterization of leakage signatures in buried water pipes by ground penetrating radar(GPR) and instantaneous frequency analysis
    Zhou, Yimin
    Lai, Wallace W. L.
    TUNNELLING AND UNDERGROUND SPACE TECHNOLOGY, 2024, 153
  • [29] Ground penetrating radar (GPR) models of the regolith and water reservoir of an underground dam in the Brazilian semiarid region
    Vasques, Gustavo M.
    Rodrigues, Hugo M.
    Huber, Emanuel
    Tavares, Silvio R. L.
    Marques, Flavio A.
    Silva, Maria Sonia L.
    JOURNAL OF APPLIED GEOPHYSICS, 2022, 206
  • [30] Technical note: Bathymetry observations of inland water bodies using a tethered single-beam sonar controlled by an unmanned aerial vehicle
    Bandini, Filippo
    Olesen, Daniel
    Jakobsen, Jakob
    Kittel, Cecile Marie Margaretha
    Wang, Sheng
    Garcia, Monica
    Bauer-Gottwein, Peter
    HYDROLOGY AND EARTH SYSTEM SCIENCES, 2018, 22 (08) : 4165 - 4181