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Geometrical and flow configurations for enhanced microcantilever detection within a fluidic cell

机译:几何和流动配置,用于增强流体单元内微悬臂梁的检测

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This work focuses on studying the effect of the flow conditions and the geometric variation of the microcantilever's supporting system on the microcantilever detection capabilities within a fluidic cell for various pertinent parameters. Such parameters include Reynolds number, height of the fluidic cell, surface reaction constant, and the Schmidt number. The results of this investigation show that the flow direction has a profound effect on the normal velocity across the microcantilever due to the presence of the supporting mechanism. In addition, the effect of the Reynolds number and the Schmidt number are also found to be significant on the species transfer characteristics within the fluidic cell. An interesting situation is presented in the present investigation, which relates to the effect of fluidic cell height on mass transfer. The results show that as the height of the fluidic cell decreases, mass transfer enhances due to an increase in the axial velocity along the microcantilever. Moreover, the normal velocity is found to decrease when decreasing the height of the fluidic cell and consequently minimizing any unfavorable microcantilever deflection. Finally, a correlation for the average mass flux along the microcantilever is obtained for various pertinent geometrical and flow configuration parameters. This work paves the road for researchers in the area microcantilever based biosensors to design efficient microsenor systems that exhibit minimal errors in the measurements.
机译:这项工作的重点是研究流动条件和微悬臂支撑系统的几何变化对流体池中各种相关参数的微悬臂检测能力的影响。这些参数包括雷诺数,流体池的高度,表面反应常数和施密特数。这项研究的结果表明,由于支撑机构的存在,流向对穿过微悬臂梁的法向速度有深远的影响。另外,还发现雷诺数和施密特数的影响对流体细胞内的物质转移特性具有显着影响。在本研究中提出了一个有趣的情况,它涉及流体池高度对传质的影响。结果表明,随着流体池高度的减小,传质由于沿微悬臂梁的轴向速度的增加而增强。而且,当减小流体池的高度并因此使任何不利的微悬臂梁偏转最小时,发现法向速度减小。最后,对于各种相关的几何和流动配置参数,获得了沿着微悬臂梁的平均质量通量的相关性。这项工作为基于微悬臂梁的生物传感器领域的研究人员设计有效的微传感器系统铺平了道路,该系统在测量中表现出最小的误差。

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