Planar SIW Cavity Based RF Sensor for Air Bubble Detection in Medical Industry

N. Tiwari, D. Mondal, A. Jha, M. Akhtar
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引用次数: 3

Abstract

A novel planar RF sensor using the SIW cavity technique, operating at 2.45 GHz of the ISM band, is designed and presented for the air bubble detection dedicated to the medical industry. The proposed sensor is quite compact that requires only few microliter volume of the test liquid to effectively detect the air bubble inside the patient's IV line with high accuracy. The sensor design and optimization is realized using the full-wave numerical software, the CST-MWS in order to obtain the desired performance at the frequency of interest. The parameters of the proposed RF sensor are optimized such that its operating frequency corresponds to the dominant TE101 mode. The novel feed mechanism used in the proposed sensor helps to obtain the improved Q-factor as compared to conventional planar resonant sensors. The prototype of the proposed sensor is fabricated on a 1.6 mm thick, Rogers RT5880 substrate. The scattering parameters of the fabricated sensor under the unloaded condition are measured and are found to closely match with the corresponding simulated data which actually validates the proposed design. Thereafter, various liquid chemicals are measured to record the change in measured resonant frequency in accordance with their dielectric constant. Finally, the proposed scheme is successfully tested for the detection of an air bubble inside the patient's typical IV saline line under practical condition.
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基于平面SIW腔的射频传感器用于医疗行业的气泡检测
设计并提出了一种基于SIW谐振腔技术的新型平面射频传感器,工作频率为2.45 GHz,用于医疗行业的气泡检测。所提出的传感器非常紧凑,只需要几微升的测试液体体积,就能有效地检测到患者静脉注射线内的气泡,并且精度很高。利用全波数值软件CST-MWS实现了传感器的设计和优化,以便在感兴趣的频率上获得所需的性能。所提出的射频传感器的参数进行了优化,使其工作频率对应于主导的TE101模式。与传统的平面谐振式传感器相比,该传感器采用的新型进给机构有助于获得更高的q因子。该传感器的原型是在1.6毫米厚的Rogers RT5880基板上制造的。对所制作的传感器在无载荷条件下的散射参数进行了测量,发现与相应的仿真数据吻合较好,从而验证了所提出的设计。然后,测量各种液体化学物质,记录被测谐振频率随其介电常数的变化。最后,在实际条件下,对所提出的方案进行了成功的测试,用于检测患者典型静脉盐水管内的气泡。
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