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小型養殖池配置水中低頻RFID天線系統之磁電特性視覺化分析與近場感應效率初估

  • 出版日期:99-12-30
  • 標題title(英):
    Visualization Analysis of Magnitude-electric Characteristics and Preliminary Evaluation of Near-field Response Efficiency of Underwater Low-frequency RFID Antenna System in a Small Aquaculture Tank
  • 作者:林志遠‧游上賢‧陳世欽
  • 作者auther(英):Chi-Yuan Lin, Shang-Hsien You and Shih-Chin Chen
  • 卷別:18
  • 期別:2
  • 頁碼:31-43

本研究係創新應用低頻 RFID 水中無線感測技術於魚類即時動態監測系統之建置。藉由本感測系統,將可記錄與分析經 RFID 標識種魚之養殖行為。配合養殖生產履歷紀錄,可提高種魚養殖管理或水產種原庫營運之效率及精準性。本文是以 1.5 m 內徑、1 m 深約 1.8 mt 水量之小型 FRP養殖池為測試環境。使用以 HFSS 視覺化模擬軟體進行方形低頻迴路天線之近場空間磁電場數值分析,結果發現 30 cm 邊長天線之磁場強度特性較佳,且水體對磁場之影響小。另實測分析天線 x-y 平面與電子標籤中心軸垂直時可得最大互感能量及可讀取範圍,且計算天線對電子標籤之臨界啟動電壓約為 1115 mV,其相對場強為 16.6 A/m。水中 RFID 天線系統是以 4 象限之方式以及 2 天線或 4 天線平面組合成4或8陣列天線之方式配置。以實體電子標籤現場水中計測單一邊長 30 cm 迴路天線之最大感應區域後推算至全池,結果顯示 2 種配置方式 (16 與 24 天線總數) 之各陣列天線 x-z 總平面可讀取範圍比例分別為養殖池橫斷面積之約 55% 與 85%。

摘要abstract(英)


This paper proposes a new approach to construct a real-time monitoring system of aquaculture fish based on an underwater wireless sensing technique of low-frequency (LF) RFID. Behavior of tagged fish in aquaculture tanks can then be identified dynamically. With the culture and breeding traceability data, efficiency and precision of broodfish management or running an aquatic genetic resource bank can be improved. The testing and proofing facility is a small-size FRP fish tank with 1.5 m diameter and 1 m depth inside. HFSS, a visualization simulation software, was used to numerically analyze the H-field and E-field strength distributions in near-field space of square LF loop antenna in the first place. Result showed character of magnetic field of 30 cm size-length antenna was better than other sizes and less impact of H-field strength in fresh water. Real object testing result showed perpendicular angle, between x-y plane of antenna and center axis of RFID-tag, would reach the largest interactive energy and readable coverage. Critical trigger voltage of emulative coil of RFID-tag was measured to be 1115 mv against the antenna while the calculated H-field strength was 16.6 A/m. Underwater RFID antenna system in the fish tank was constructed by combinative ways of 4-quadrant and antenna arrays (4 or 8 arrays used, 2 or 4 antennas for each array). A single LF loop antenna was measured its RFID-tag related maximum readable ranges onsite in water and in great detail. Thus, the whole readable area crossing x-z plane of each kind of antenna arrays, totally 16 or 24 antennas, could then be calculated to be about 55% or 85% of the horizontal circle plane of the tank, respectively.