研究目的
To design a pattern reconfigurable wideband loop antenna for thorax imaging that can electronically steer the radiation beam without mechanical movement, addressing the need for compact and efficient electromagnetic imaging systems.
研究成果
The proposed pattern reconfigurable loop antenna successfully achieves wideband operation, compact size, and electronic beam steering from -40 to +40 degrees in the azimuth plane. It is effective for thorax imaging, as demonstrated by its ability to detect small volumes of water in lung phantoms, offering a potential solution for portable and affordable electromagnetic imaging systems.
研究不足
The antenna's performance may be affected by the non-uniform shape of the human thorax and the fixed feeding position, which can lead to impedance mismatches in some configurations. The use of FR4 substrate, while cost-effective, has higher losses compared to other materials, and the biasing circuit introduces shifts in resonance frequencies during measurements.
1:Experimental Design and Method Selection:
The antenna is designed as a square loop with capacitive gaps to achieve pattern reconfigurability. Simulations are conducted using ANSYS Electronics Desktop (AEDT) to analyze performance. The design includes PIN diodes for electronic switching of gap positions to change radiation direction.
2:Sample Selection and Data Sources:
A thorax phantom is used for experimental validation, emulating human tissues with a small volume of water (5 mL) to simulate pulmonary edema.
3:List of Experimental Equipment and Materials:
FR4 substrate, SMA connector, PIN diodes (MACOM MA4SPS402), inductors (RF chokes), capacitors (DC blocks), batteries, vector network analyzer, laptop, and thorax phantom.
4:Experimental Procedures and Operational Workflow:
The antenna is fabricated and measured in free space and near the thorax phantom. S-parameters and radiation patterns are recorded for different switching states. The imaging process involves transmitting signals, receiving backscattered data, and applying clutter removal and imaging algorithms.
5:Data Analysis Methods:
Data is processed using a two-step beamforming technique and fast frequency-based imaging method to construct images of the thorax, comparing healthy and unhealthy cases.
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