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Large-scale volumetric flow measurement in a pure thermal plume by dense tracking of helium-filled soap bubbles

机译:通过氦填充肥皂泡的密集跟踪,在纯热羽流中进行大规模的体积流量测量

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摘要

We present a spatially and temporally highly resolved flow measurement covering a !arge volume (�o.6 m3) in a pure thermal plume in air. The thermal plume develops above an extended heat source and is characterized by moderate velocities (U � 0.35 m/s) with a Reynolds number of Re -500 and a Rayleigh number of Ra -106. We demonstrate the requirements and capa bilities of the measurement equipment and the particle tracking approach to be able to probe measurement volumes up to and beyond one cubic meter. The use of !arge tracer particles (300 µm), helium-filled soap bubbles (HFSBs), is crucial and yields high particle image quality over large-volume depths when illuminated with arrays of pulsed high-power LEDs. The experimental limitations of the HFSBs-their limited lifetime and their intensity loss over time-are quantified. The HFSBs' uniform particle images allows an accurate reconstruction of the flow using Shake-The-Box particle tracking with high partlcle concentrations up to 0.1 particles per pixel. This enables tracking of up to 275,000 HFSBs simultaneously. After interpolating the scattered data onto a regular grid with a Navier-Stokes regularization, the velocity field of the thermal plume reveals a multitude of vortices with a smooth temporal evolution and a remarkable coherence in time (see animation, supplementary data). Acceleration fields are also derived from interpolated particle tracks and complement the flow measurement. Additionally, the flow map, the basis of a !arge dass of Lagrangian coherent structures, is computed directly from observed particle tracks. We show entrainment regions and coherent vortices of the thermal plume in the flow map and compute fields of the finite-time Lyapunov exponent.
机译:我们在空气中的纯热羽流中介绍了空间和时间高度分辨的流量测量覆盖覆盖A!Arge体积(�O.6m3)。热羽流量在扩展的热源上方发育,其特征在于中等速度(U≥0.35m/ s),Reynolds的Re-500和Ra -106的瑞利数量。我们展示了测量设备的要求和CAPA能力和能够探测高达和超出一立方米的测量体积的粒子跟踪方法。使用!ARGE示踪粒子(300微米),充氦的肥皂泡(HFSBs),是至关重要的,并且当与脉冲的高功率LED阵列的照明的产量高的颗粒的图像质量比大体积的深度。量化HFSBS的实验限制及其对时间的限制性及其强度损失 - 量化。所述HFSBs'均匀的颗粒图像允许使用摇现成颗粒跟踪具有高partlcle浓度高达每像素0.1颗粒的流程的准确重建。这使得能够同时跟踪最多275,000 HFSB。在用Navier-Stokes正规化将散射数据插入常规网格之前,热羽流的速度场揭示了具有平滑时间演进的多种涡流,并及时相干(参见动画,补充数据)。加速度区域也来自内插粒子轨道并补充流量测量。此外,流程图,A!GraGrangian相干结构的Arge Dass的基础,直接从观察到的粒子轨道上计算。我们在流程图中显示夹带区域和热羽的连贯涡流,并计算有限时间Lyapunov指数的计算领域。

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