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High Resolution Instrumentation for Flow Measurements

机译:用于流量测量的高分辨率仪器

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摘要

Turbulent quantities are in general difficult to measure, mostly because of the wide range of length and time scales involved. Instrumentation without adequate spatial and temporal resolution can compromise the measurements and bias conclusions. To address this issue, a family of nano-scale, high resolution sensors have been developed utilizing semiconductor fabrication techniques, and validated with either available data or theoretical predictions.;A miniature cold-wire probe (the T-NSTAP) was designed to reduce low-frequency attenuation in measurements of temperature, and can minimize errors inherent in conventional cold-wires due to insufficient resolution. With a sensing length of only 200 mum and a roll-off frequency of more than 10 kHz in air, the T-NSTAPs successfully captured small scale information that is generally missed by filtering.;Elastic filament velocimetry (EFV) is a novel method of measuring flow velocity utilizing the deflection of a freestanding nanoribbon. The elongation of the nanoribbon under fluid forcing results in a measurable change in the electrical resistance, which can be correlated with flow velocity. This technique is versatile and can be used in any fluid, regardless of the fluid properties. Experimental results in both air and water displayed good agreement with theoretical predictions derived from nonlinear beam theory, and exhibited great potential for low velocity measurements.;A new method for humidity measurement using hot-wire heat transfer in low Peclet number regime is proposed. The new sensor, q-NSTAP, designed to be insensitive to velocity, has a sensing element width as small as 500 nm. The sensor has been operated with a custom circuit with high bandwidth. Preliminary results confirmed the feasibility of this new humidity measurement method.;A nano-scale crossed hot-wire (x-NSTAP) was created and characterized. The x-NSTAP has been deployed in the Princeton Superpipe and obtained very promising results with low spatial and temporal filtering. A novel combining method developed for the x-NSTAP can be generalized for simultaneous measurements of any quantities in a small measurement volume, enabling measurements that were extremely challenging or not possible prior to this development.
机译:通常很难测量湍流量,这主要是因为所涉及的长度和时间范围很广。没有足够的空间和时间分辨率的仪器会损害测量结果并得出结论。为解决此问题,已利用半导体制造技术开发了一系列纳米级,高分辨率传感器,并通过可用数据或理论预测进行了验证。;设计了微型冷线探针(T-NSTAP)以减少温度测量中的低频衰减,并且可以将由于分辨率不足而导致的传统冷线固有的误差降至最低。 T-NSTAP的感测长度仅为200微米,在空中的滚降频率超过10 kHz,因此成功捕获了通常被过滤所遗漏的小规模信息。弹性细丝测速(EFV)是一种新颖的方法利用独立式纳米带的偏转测量流速。在流体强迫下纳米带的伸长导致电阻的可测量的变化,其可以与流速相关。该技术用途广泛,可以在任何流体中使用,而与流体特性无关。空气和水中的实验结果与非线性梁理论推导的理论预测吻合得很好,在低速测量中显示出很大的潜力。新型传感器q-NSTAP设计为对速度不敏感,其感应元件宽度小至500 nm。该传感器已通过具有高带宽的定制电路进行了操作。初步结果证实了这种新的湿度测量方法的可行性。创建并表征了纳米级交叉热线(x-NSTAP)。 x-NSTAP已部署在普林斯顿超级管道中,并以低时空滤波获得了非常有希望的结果。可以推广针对x-NSTAP开发的新颖组合方法,以便同时测量小量测量中的任何数量,从而在进行此开发之前进行极富挑战性或不可能的测量。

著录项

  • 作者

    Fan, Yuyang.;

  • 作者单位

    Princeton University.;

  • 授予单位 Princeton University.;
  • 学科 Mechanical engineering.
  • 学位 Ph.D.
  • 年度 2017
  • 页码 206 p.
  • 总页数 206
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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