用PIV法进行水族流体力学实验研究

Djimako Bongo, A. M. Nanimina, Edith Kadjangaba, J. Champagne
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引用次数: 1

摘要

本研究的目的是确定气液流动的相指示函数(真空率、速度和气泡大小)。这些塔(水族箱)中的气液流动本质上是不稳定的,这种流动的动力学影响混合和传质性能。因此,表征气液流动的动力学特性是很重要的。此外,气泡柱流体整体动力学的完整知识是建立在气泡动力学的基础上的。实验分析采用由光纤双探头组成的两相仪器进行。实验技术的应用使人们对两相流的流体力学有了更好的认识。就结果而言,侵入式技术提供局部测量,而非侵入式技术提供不同空间和时间分辨率的横截面分布。光纤双探头放置在两个圆柱法兰之间,可以对分散相流进行完整的映射。在不同的流量配置下,使用质量流量计和超声波流量计,可以获得有关色谱柱运行的数据。然而,柱中气泡的粒度分析是通过侵入式、流动干扰式和非侵入式技术进行的。气泡大小和真空率的知识是确定界面空气的关键。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Experimental Study of Hydrodynamics in the Aquarium Using PIV Method
The purpose of this study is to determine the phase indicator functions (vacuum rate, velocity and bubble size) of the gas-liquid flow. The gas-liquid flows in these columns (aquarium) are intrinsically unstable and the dynamics of such flows influence the mixing and mass transfer performance. It is therefore important to characterize the dynamics of gas-liquid flow. Also, the complete knowledge of the global dynamics of the fluids of the bubble column is based on that of the bubble. The experimental analysis is carried out using a two-phase instrumentation consisting of an optical fiber bi-probe. The use of the experimental techniques has enabled a better understanding of the hydrodynamics of two-phase flow. In terms of results, intrusive techniques provide local measurements while non-intrusive techniques provide a distribution over a cross-section with different spatial and temporal resolutions. The optical fiber bi-probe placed between two column flanges permit to have a complete mapping of the dispersed phase flow. The use of a mass flow meter and an ultrasonic flow meter, in different flow configurations, made it possible to obtain data on the operation of the column. However, the analysis of granulometry of the bubbles in the columns is performed by intrusive, flow-disrupting and non-intrusive techniques. Knowledge of bubble size and vacuum rate is crucial for determining interfacial air.
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