微通道
雷诺数
流离失所(心理学)
灵敏度(控制系统)
流量(数学)
材料科学
流速
航程(航空)
分析化学(期刊)
物理
纳米技术
机械
湍流
化学
电子工程
工程类
色谱法
复合材料
心理学
心理治疗师
作者
Yansheng Hao,Fang Chen,Yapeng Yuan,Kazunori Okano,Ryohei Yasukuni,Shaokoon Cheng,Yo Tanaka,Yoichiroh Hosokawa,Yang Yang,Ming Li,Yaxiaer Yalikun
标识
DOI:10.1109/jsen.2022.3225637
摘要
Here we developed an innovative flow sensor using ultrathin (i.e., $4~\mu \text{m}$ ) glass sheet fabricated by femtosecond laser processing. The sensor can quantify the flow velocity of liquid flows by measuring the displacement and vibration frequency of the ultrathin glass sheet induced by flows in the microchannel. The developed flow sensor is transparent, chemically inert, and can measure water flows with a velocity between 0.067 and 0.804 m/s (Reynolds numbers 3–36). The displacement of the ultrathin glass sensor varying from 0.4 to $3.1~\mu \text{m}$ has negligible influence on the fluid conditions in the microchannel. Moreover, the sensitivity and dynamic range of the sensor can be readily adjusted by optimizing geometric parameters, such as the aspect ratio and thickness of the ultrathin glass sheet. Besides, the sensor is capable of multiposition measurement to investigate the differences in localized flow velocity within the microchannel. Compared with existing cantilever-based flow velocity sensors, our developed sensor has a higher sensitivity [409 mV/(m/s)], a larger measurement range (0.067–0.804 m/s), and a smaller displacement range (0.4– $3.1~\mu \text{m}$ ), which is desirable for high-throughput microfluidics-based applications, such as cell separation and cell-based therapeutics.
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