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浮动元件壁面剪切应力传感器研究进展
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作者 付政伟 杨水旺 +2 位作者 张琦 苏一鸣 张洁 《计测技术》 2023年第6期20-29,共10页
介绍了浮动元件的类型和浮动元件壁面剪切应力测量的方法,阐述了基于浮动元件的电容式、压阻式和光学式壁面剪切应力传感器的基本原理和研究现状,分析了上述3种类型的浮动元件壁面剪切应力传感器的优缺点,指出可通过优化浮动元件与传感... 介绍了浮动元件的类型和浮动元件壁面剪切应力测量的方法,阐述了基于浮动元件的电容式、压阻式和光学式壁面剪切应力传感器的基本原理和研究现状,分析了上述3种类型的浮动元件壁面剪切应力传感器的优缺点,指出可通过优化浮动元件与传感器封装件之间的移动间隙以及浮动元件与被测面间的平齐度来提升浮动元件壁面剪切应力传感器的性能。展望了浮动元件壁面剪切应力传感器在湍流测量、判断边界层转捩、维护飞行器安全和优化飞行器结构等领域的发展方向,提出未来可通过发展MEMS技术、优化传感器后端处理电路和温度补偿方式、采用一体化设计加工方式等,进一步提升浮动元件壁面剪切应力传感器的小型化程度、检测壁面剪切应力极低值时的灵敏度和精度、测量的可靠性和准确性。 展开更多
关键词 浮动元件传感器 壁面剪切应力测量 电容式 压阻式 光学式
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Direct detection and measurement of wall shear stress using a filamentous bio-nanoparticle 被引量:1
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作者 Daniela P. Lobo Alan M. Wemyss +14 位作者 David J. Smith Anne Straube Kai B. Betteridge Andrew H. J. Salmon Rebecca R. Foster Hesham E. Elhegni Simon C. Satchell Haydn A. Little Raul Pacheco-Gomez Mark J. Simmons Matthew R. Hicks David O. Bates Alison Rodger Timothy R. Dafforn Kenton P. Arkill 《Nano Research》 SCIE EI CAS CSCD 2015年第10期3307-3315,共9页
The wall shear stress (WSS) that a moving fluid exerts on a surface affects many processes including those relating to vascular function. WSS plays an important role in normal physiology (e.g. angiogenesis) and af... The wall shear stress (WSS) that a moving fluid exerts on a surface affects many processes including those relating to vascular function. WSS plays an important role in normal physiology (e.g. angiogenesis) and affects the microvasculature's primary function of molecular transport. Points of fluctuating WSS show abnormalities in a number of diseases; however, there is no established technique for measuring WSS directly in physiological systems. All current methods rely on estimates obtained from measured velocity gradients in bulk flow data. In this work, we report a nanosensor that can directly measure WSS in microfluidic chambers with sub-micron spatial resolution by using a specific type of virus, the bacteriophage M13, which has been fluorescently labeled and anchored to a surface. It is demonstrated that the nanosensor can be calibrated and adapted for biological tissue, revealing WSS in micro-domains of cells that cannot be calculated accurately from bulk flow measurements. This method lends itself to a platform applicable to many applications in biology and microfluidics. 展开更多
关键词 MICROFLUIDICS NANOPARTICLE M13 bacteriophage wall shear stress fluorescent microscopy
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