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An advanced laser-Doppler velocimeter for full-vector particle position and velocity measurements

机译:先进的激光多普勒测速仪,用于全矢量颗粒位置和速度测量

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摘要

An advanced laser-Doppler measurement technique has been developed for fully resolved three-component particle position and velocity vector measurements in turbulent flows. The instrument deemed the 'comprehensive' laser-Doppler velocimeter employs a novel optical arrangement to measure multiple-component sub-measurement-volume-scale seed particle positions simultaneously with the velocity vector measurements of conventional laser-Doppler velocimetry (LDV). In the current paper, the effectiveness of the position resolution capabilities is considered, which allows for velocity statistics measurements at multiple locations within the measurement volume. Design estimates for the position vector uncertainties for a particle passing the measurement volume are about 3 (mu)m root mean square in any direction, although in situ estimates indicate an uncertainty value closer to 14 (mu)m with the possibility of further refinement through optimized alignment. To validate the operation of the instrument, measurements are presented in turbulent boundary layers previously examined with high-resolution conventional LDV. The flat-plate turbulent boundary layer is studied at two Reynolds numbers up to Re_(theta) velence 7500. Measurements are also presented in a pressure-driven three-dimensional turbulent boundary layer created beside a wing/body junction. These measurements illustrate the effectiveness of the technique for obtaining highly resolved velocity profiles within the measurement volume and give the highest spatial resolution velocity statistics published for Reynolds numbers of the magnitude studied.
机译:已经开发了一种先进的激光多普勒测量技术,可以对湍流中的三分量粒子位置和速度矢量进行完全解析的测量。该仪器被认为是“综合性”激光多普勒测速仪,它采用新颖的光学装置来测量多分量子测量体积级种子粒子的位置,并同时进行传统激光多普勒测速仪(LDV)的速度矢量测量。在当前论文中,考虑了位置分辨率功能的有效性,该功能允许在测量体积内的多个位置进行速度统计测量。通过测量体积的粒子的位置矢量不确定性的设计估计值在任何方向上均约为3μm均方根,尽管原位估计表明不确定性值更接近14μm,并可能通过进一步细化优化的对齐方式。为了验证仪器的操作,在湍流边界层中进行了测量,之前使用高分辨率常规LDV检查过。平板湍流边界层以两个雷诺数(直到Re_θvelence 7500)研究。在翼/机体接合处旁边创建的压力驱动三维湍流边界层中也进行了测量。这些测量结果说明了该技术在测量体积内获得高度解析的速度剖面的有效性,并给出了针对所研究幅度的雷诺数的最高空间分辨率速度统计数据。

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