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Flow profile measurement in microchannel using the optical feedback interferometry sensing technique

机译:使用光反馈干涉测量技术在微通道中测量流量分布

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摘要

The need to accurately measure flow profiles in microfluidic channels is well recognised. In this work, we present a new optical feedback interferometry (OFI) flow sensor that accurately measures local velocity in fluids and enables reconstruction of a velocity profile inside a microchannel. OFI is a self-aligned interferometric technique that uses the laser as both the transmitter and the receiver thus offering high sensitivity, fast response, and a simple and compact optical design. The system described here is based on a commercial semiconductor laser and has been designed to achieve a micrometer-range spatial resolution. The sensor performance was validated by reconstructing the velocity profile inside a circular cross-section flow-channel with 320 urn internal diameter, with a relative error smaller than 1.8 %. The local flow velocity is directly measured, thus avoiding the need for model based profile calculation and uncertainties inherent to this approach. The system was validated by successfully extracting the flow profiles in both Newtonian and shear-thinning liquids.
机译:众所周知,需要精确测量微流体通道中的流量分布。在这项工作中,我们提出了一种新的光学反馈干涉术(OFI)流量传感器,该传感器可以精确地测量流体中的局部速度,并能够重建微通道内部的速度分布。 OFI是一种自对准干涉测量技术,使用激光作为发射器和接收器,从而提供了高灵敏度,快速响应以及简单紧凑的光学设计。此处描述的系统基于商用半导体激光器,并且已设计为实现微米范围的空间分辨率。通过重建内径为320 um的圆形横截面流道内的速度分布图来验证传感器性能,相对误差小于1.8%。直接测量局部流速,从而避免了基于模型的轮廓计算的需要以及该方法固有的不确定性。该系统已通过成功提取牛顿流体和剪切稀化液体中的流动曲线进行了验证。

著录项

  • 来源
    《Microfluidics and nanofluidics》 |2013年第2期|113-119|共7页
  • 作者单位

    CNRS, LAAS, 7 avenue du colonel Roche, 31400 Toulouse, France,Univ de Toulouse, INPT, LAAS, 31400 Toulouse, France;

    School of Information Technology and Electrical Engineering, The University of Queensland, QLD 4072, Australia;

    CNRS, LAAS, 7 avenue du colonel Roche, 31400 Toulouse, France,Univ de Toulouse, INPT, LAAS, 31400 Toulouse, France;

    School of Information Technology and Electrical Engineering, The University of Queensland, QLD 4072, Australia;

    School of Information Technology and Electrical Engineering, The University of Queensland, QLD 4072, Australia;

    CNRS, Laboratoire de Genie chimique (LGC UMR 5503), 31432 Toulouse, France,Univ de Toulouse, INPT, ENSIACET, 4 allee Emile Monso, BP 84234, 31432 Toulouse, France;

    CNRS, Laboratoire de Genie chimique (LGC UMR 5503), 31432 Toulouse, France,Univ de Toulouse, INPT, ENSIACET, 4 allee Emile Monso, BP 84234, 31432 Toulouse, France;

    School of Information Technology and Electrical Engineering, The University of Queensland, QLD 4072, Australia;

    CNRS, LAAS, 7 avenue du colonel Roche, 31400 Toulouse, France,Univ de Toulouse, INPT, LAAS, 31400 Toulouse, France;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    photonic device; laser sensor; optical feedback interferometry; flow profile measurement;

    机译:光子器件激光传感器光反馈干涉仪流量剖面测量;

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