离心转子内气液流动模式的实验可视化

H. Stel, E. Ofuchi, Rafael F. Alves, S. Chiva, R. Morales
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引用次数: 0

摘要

在气液流动中运行的离心泵可能会出现严重的性能下降。这可以归因于气相对泵叶轮通道中液体流动方向的影响,这会导致额外的水力损失,从而对输送扬程和流量产生负面影响。在许多实验研究中,人们都在努力研究多相流条件下许多操作参数对泵性能的影响。然而,很少有研究将流动可视化结合起来,以理解离心泵在气液流动中的行为背后的物理学。其中一个问题是,泵涉及旋转部件、金属外壳和有限的视觉访问,有时很难解释流动模式和理解复杂的现象,如气泡破裂和合并。这些问题通常会导致图像质量不理想,从而难以从获得的图像中提取定量数据,例如气体体积分数和气泡大小分布。为了克服以往研究的许多困难,本工作提出了一项实验研究,旨在利用一种新颖的方法可视化离心转子原型中的气液流动模式。实验装置采用平面和透明转子,通过动态密封系统装配进气管和排出室,无需使用封闭泵壳。这使得可以使用叶轮的反向照明进行可视化,这反过来又通过使用连接在叶轮轴上的摄像机在旋转参考框架中进行拍摄来完成。这种设置,这是新的开放文献,提供高图像对比度和清晰度,清楚地解释内转子通道内的流动模式,为广泛的操作条件。这一优势,反过来,允许使用图像处理气体体积分数分布的定量评估。压力上升与流量曲线的测量一起研究转子性能退化与气液流动模式的液体和气体的流量范围。通过设计的实验装置在受控条件下获得的信息不仅有助于进一步理解旋转装置中多相流的复杂现象,而且还有助于验证离心泵中气液流动的可靠模拟的数值模型,这是目前文献中所缺乏的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Experimental Visualization of Gas-Liquid Flow Patterns in a Centrifugal Rotor
Centrifugal pumps operating with gas-liquid flows can undergo severe performance degradation. This can be attributed to an effect of the gas phase on the liquid flow orientation in the pump impeller channels, which induces additional hydraulic losses that negatively affect the delivered head and flow rate. Effort to investigate the effect of many operating parameters on the pump performance under multiphase flows can be found on numerous experimental investigations. Few studies, however, bring together flow visualization to understand the physics behind the behavior of centrifugal pumps with gas-liquid flows. One issue is that pumps involve rotating parts, metallic casing and limited visual access, sometimes making it hard to interpret flow patterns and to understand complex phenomena, such as bubble breakup and coalescence. Such issues usually lead to unsatisfactory image quality, which in turn makes it difficult to extract quantitative data from the obtained images, such as gas volume fraction and bubble size distribution. In an attempt to overcome many difficulties of previous investigations, this work presents an experimental study aimed to visualize gas-liquid flow patterns in a centrifugal rotor prototype using a novel approach. The experimental apparatus uses a plane and transparent rotor, assembled with an intake pipe and a discharge chamber by means of a dynamic seal system that dismisses the use of an enclosing pump casing. This makes possible to use back illumination of the impeller for visualization, which in turn is done by using a camera attached to the impeller axis for filming in a rotating frame of reference. This setup, which is new in the open literature, provides high image contrast and sharpness for clear interpretation of the flow patterns found inside the rotor channels for a wide range of operating conditions. This advantage, in turn, allows using image processing for quantitative assessment of gas volume fraction distributions. Pressure rise versus flow rate curves are measured together to investigate the rotor performance degradation associated with the gas-liquid flow patterns for a range of liquid and gas flow rates. Information obtained with the designed experimental setup at controlled conditions help not just to bring further understanding to the complex phenomena involved with multiphase flows in rotating devices, but also in the direction of validating a numerical model for reliable simulations of gas-liquid flows in centrifugal pumps, which is lacking in the current literature.
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