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A feasibility study on the application of microwaves for online biofilm monitoring in the pipelines

机译:微波在管道生物膜在线监测中的可行性研究

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This study investigates the potential of microwave technique for online monitoring and evaluation of biofilms in the pipelines. A microwave vector network analyser and an in-house built transmitting and receiving coaxial-line transducer were employed to transmit microwave signals in the pipe. The brass pipe specimen was tested by adhering different volumes of polymeric tape layers onto its internal surface simulating the biofilm build-up. By taking the pipe as a circular waveguide of microwave, the frequency domain measurements were conducted in the 45-47 GHz range with TM_(01) dominant wave mode. The permittivity of the biofilm-contained area has been expressed as a function of the resonance frequency after establishing the resonance condition in the waveguide. It was realized that the resonance frequencies experience systematic shifts with the growth of biofilm layer length and thickness. The effects of dielectric material properties and the volume of the added biofilm layer on the resonance frequency records were then explained using the cavity perturbation theory which confirmed the experimental findings. Measurement results indicated a high degree of sensitivity to the small amounts of introduced biofilm which proves the potential of the microwave technique for online biofilm monitoring in both closed-end and open-end terminal conditions.
机译:这项研究调查了微波技术在线监测和评估管道中生物膜的潜力。微波矢量网络分析仪和内置的发射和接收同轴线传感器被用来在管道中发射微波信号。通过将不同体积的聚合物胶带层粘附到其内表面上以模拟生物膜的堆积,对黄铜管样品进行了测试。通过将管道用作微波的圆形波导,以TM_(01)主波模式在45-47 GHz范围内进行了频域测量。在波导中建立谐振条件之后,已将包含生物膜的区域的介电常数表示为谐振频率的函数。已经认识到,随着生物膜层长度和厚度的增加,共振频率经历系统的变化。然后使用腔扰动理论解释了介电材料特性和所添加生物膜层的体积对共振频率记录的影响,该理论证实了实验结果。测量结果表明,对少量引入的生物膜具有高度的敏感性,这证明了微波技术在封闭端和开放端条件下在线监测生物膜的潜力。

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