研究目的
Investigating the radiation characteristics and sensitivity of a GPR antenna in a range of lossy dielectric environments using both physical measurements and a three-dimensional (3-D) ?nite-difference time-domain (FDTD) model.
研究成果
The investigation provided a better understanding of how the antenna radiates and receives energy, which is important for GPR applications. The results validated the numerical antenna model for use in more extensive studies, particularly for scenarios that are difficult to investigate experimentally, such as larger observation distances and other dielectric environments.
研究不足
The observation distance was limited by the physical constraints of the apparatus, and the need to clearly identify the wavelet reflected from the rebar in all responses. The FDTD antenna model does not capture the way in which lateral waves propagate from the real antenna, leading to discrepancies in the strength of the main lobe at shallow angles.
1:Experimental Design and Method Selection:
The study combined physical measurements and a 3-D FDTD model to investigate the radiation characteristics of a GPR antenna in different dielectric environments.
2:Sample Selection and Data Sources:
A series of oil-in-water emulsions and tap water were used to simulate materials with different permittivities and conductivities. A 12-mm steel rebar was used as a target to measure back-scattered responses.
3:List of Experimental Equipment and Materials:
The main components included a 50-litre galvanized steel tank, a plastic rig for positioning the antenna and target, a high-shear batch mixer, and a GPR system with a
4:5-GHz antenna. Experimental Procedures and Operational Workflow:
Measurements involved positioning the antenna on the surface of the liquid, recording responses with and without the target, and processing the data to analyze the antenna's radiation characteristics.
5:Data Analysis Methods:
The received energy was measured using a specific equation to analyze the radiation patterns and sensitivity of the antenna in different dielectric environments.
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