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Microfluidic EBG Sensor Based on Phase-Shift Method Realized Using 3D Printing Technology

机译:基于3D打印技术的基于相移法的微流EBG传感器

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In this article, we propose a novel microfluidic microstrip electromagnetic band gap (EBG) sensor realized using cost-effective 3D printing technology. Microstrip sensor allows monitoring of the fluid properties flowing in the microchannel embedded between the microstrip line and ground plane. The sensor’s operating principle is based on the phase-shift method, which allows the characterization at a single operating frequency of 6 GHz. The defected electromagnetic band gap (EBG) structure is realized as a pattern in the microstrip ground plane to improve sensor sensitivity. The designed microfluidic channel is fabricated using a fused deposition modelling (FDM) 3D printing process without additional supporting layers, while the conductive layers are realized using sticky aluminium tape. The measurement results show that the change of permittivity of the fluid in the microfluidic channel from 1 to 80 results in the phase-shift difference of almost 90°. The potential application is demonstrated through the implementation of a proposed sensor for the detection of toluene concentration in toluene–methanol mixture where various concentrations of toluene were analysed.
机译:在本文中,我们提出了一种使用经济高效的3D打印技术实现的新型微流微带电磁带隙(EBG)传感器。微带传感器允许监视嵌入在微带线和接地层之间的微通道中流动的流体特性。传感器的工作原理基于相移方法,该方法可以在6 GHz的单个工作频率下进行表征。有缺陷的电磁带隙(EBG)结构被实现为微带接地平面中的图案,以提高传感器的灵敏度。设计的微流体通道是使用熔融沉积建模(FDM)3D打印工艺制造的,无需额外的支撑层,而导电层则使用粘性铝带实现。测量结果表明,微流体通道中流体的介电常数从1变为80,导致相移差接近90°。通过实施建议的传感器来检测甲苯-甲醇混合物中的甲苯浓度,可以证明其潜在的应用价值,其中分析了各种浓度的甲苯。

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