Development of a wireless passive capacitively coupled contactless conductivity detection (WPC4D) for fluidic flow detection utilizing 3D printing and PCB technologies

IF 1.3 4区 工程技术 Q4 CHEMISTRY, ANALYTICAL Instrumentation Science & Technology Pub Date : 2023-02-27 DOI:10.1080/10739149.2023.2182791
Bao-Anh Hoang, V. Bui, Kien Do Trung, Hang Bui Thu, T. Chu Duc, Tung Thanh Bui, Loc Do Quang
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引用次数: 1

Abstract

Abstract A modified capacitive-coupled contactless conductivity sensor is proposed and developed for microfluidic flow detection based on the passive wireless inductor-capacitor (LC) technique. The device utilizes rapid prototyping including PolyJet 3D printing and PCB technologies to fabricate the microchannel and the readout inductor through which the conductivity of the fluidic flow is analyzed and foreign objects identified. The system employs an LC resonance circuit to monitor the shift in frequency and the change in the reflection coefficient, thereby estimating the conductivity of the fluidic flow and the appearance of objects. The operating principles were characterized by numerical calculations. The performance was validated by experimental measurements. The results show that the higher the electrical conductivity (i.e. the higher concentration) of the NaCl solution passing through the sensing area, the lower the resonance frequency. The resonance frequency due to the passage of NaCl solution with concentrations of 0.1, 0.5, and 1 M were 225.24, 218.93, and 215.67 MHz, respectively. The influence of the distance between the inductors on the resonance frequency of different solution conductivities has also been studied. The sensor system has high potential in various biomedical and chemical applications, particularly in point-of-care applications where sensor chips can be easily incorporated.
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利用3D打印和PCB技术开发用于流体流量检测的无线无源电容耦合非接触式电导率检测(WPC4D)
摘要基于无源无线电感-电容(LC)技术,提出并开发了一种改进的电容耦合非接触式电导传感器,用于微流体流量检测。该设备利用包括PolyJet 3D打印和PCB技术在内的快速原型技术来制造微通道和读出感应器,通过它们可以分析流体流的导电性并识别异物。该系统采用LC谐振电路来监测频率的偏移和反射系数的变化,从而估计流体流的电导率和物体的外观。通过数值计算对其工作原理进行了表征。通过实验测量验证了该性能。结果表明,穿过感应区域的NaCl溶液的电导率越高(即浓度越高),谐振频率越低。浓度为0.1、0.5和1的NaCl溶液通过引起的共振频率 M分别为225.24、218.93和215.67 MHz。还研究了电感器之间的距离对不同溶液电导率的谐振频率的影响。传感器系统在各种生物医学和化学应用中具有很高的潜力,特别是在可以容易地结合传感器芯片的护理点应用中。
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来源期刊
Instrumentation Science & Technology
Instrumentation Science & Technology 工程技术-分析化学
CiteScore
3.50
自引率
0.00%
发文量
45
审稿时长
>12 weeks
期刊介绍: Instrumentation Science & Technology is an internationally acclaimed forum for fast publication of critical, peer reviewed manuscripts dealing with innovative instrument design and applications in chemistry, physics biotechnology and environmental science. Particular attention is given to state-of-the-art developments and their rapid communication to the scientific community. Emphasis is on modern instrumental concepts, though not exclusively, including detectors, sensors, data acquisition and processing, instrument control, chromatography, electrochemistry, spectroscopy of all types, electrophoresis, radiometry, relaxation methods, thermal analysis, physical property measurements, surface physics, membrane technology, microcomputer design, chip-based processes, and more. Readership includes everyone who uses instrumental techniques to conduct their research and development. They are chemists (organic, inorganic, physical, analytical, nuclear, quality control) biochemists, biotechnologists, engineers, and physicists in all of the instrumental disciplines mentioned above, in both the laboratory and chemical production environments. The journal is an important resource of instrument design and applications data.
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