Flow stirred by open turbine: A modal analysis of multiscale flow characteristics

IF 1.4 4区 工程技术 Q3 ENGINEERING, CHEMICAL
Jie Jin, Shaoyang Bu, Ying Fan, Jianjun Han, Kuangdi Yin, Wenyi Chen
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Abstract

The turbulence observed in the stirred tank is a result of the superposition of flows at different scales, each exerting various influences on the operational processes. To understand the flow characteristics associated with stirring, this paper undertakes particle image velocimetry (PIV) experimental research on an unbaffled tank stirred by an open turbine featuring four distinct blade deflection angles. The flow field in the unbaffled tank manifests as a double-circulation flow pattern; however, it is worth noting that the blade deflection angle exerts a significant impact on the stirring process. Specifically, when the blade deflection angle reached 90°, the flow discharge aligned closely with the radial direction, accompanied by pronounced fluctuations in the high-velocity region. The Lagrangian coherent structures (LCS) formed were subsequently extracted and subjected to finite-time Lyapunov exponent (FTLE) analysis. Notably, a more regular wake pattern emerged in proximity to the blade tip, while a larger scale flow structure persisted along the flow direction. To systematically analyze the flow field stirred by the open turbine, modal analysis was employed. By reconstructing the flow field based on the principle of 50% energy content, the decomposition of flows at different scales was achieved. The turbulent kinetic energy (TKE) generated by the various scale flows was subsequently calculated, revealing that the high TKE values primarily originate from the large-scale flow structure. Conversely, the TKE generated by the small-scale flow exhibits a uniform distribution across different regions. Notably, in regions characterized by higher velocities, the peak TKE associated with the small-scale flow also manifests; however, it is significantly smaller in magnitude compared to that generated by the original flow or the large-scale flow.

Abstract Image

开放式涡轮搅拌流:多尺度流动特性的模态分析
在搅拌槽中观察到的湍流是不同尺度流动叠加的结果,每种流动都对运行过程产生不同的影响。为了解与搅拌相关的流动特性,本文对由具有四个不同叶片偏转角的开放式涡轮机搅拌的无褶皱水槽进行了粒子图像测速(PIV)实验研究。无褶皱水槽中的流场表现为双循环流动模式;但值得注意的是,叶片偏转角对搅拌过程有重大影响。具体来说,当叶片偏转角达到 90° 时,流体排出与径向方向紧密一致,并在高速区域伴有明显的波动。随后,对形成的拉格朗日相干结构(LCS)进行了提取和有限时间李亚普诺夫指数(FTLE)分析。值得注意的是,在叶片尖端附近出现了更规则的尾流模式,而沿流动方向则持续存在更大尺度的流动结构。为了系统分析开式涡轮机搅动的流场,我们采用了模态分析方法。根据能量含量为 50%的原理重建流场,实现了对不同尺度流动的分解。随后计算了不同尺度流动产生的湍流动能(TKE),结果显示高 TKE 值主要来源于大尺度流动结构。相反,小尺度流产生的 TKE 在不同区域呈现均匀分布。值得注意的是,在流速较高的区域,也会出现与小尺度流相关的 TKE 峰值,但与原始流或大尺度流产生的 TKE 相比,峰值要小得多。
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来源期刊
自引率
11.10%
发文量
111
期刊介绍: Asia-Pacific Journal of Chemical Engineering is aimed at capturing current developments and initiatives in chemical engineering related and specialised areas. Publishing six issues each year, the journal showcases innovative technological developments, providing an opportunity for technology transfer and collaboration. Asia-Pacific Journal of Chemical Engineering will focus particular attention on the key areas of: Process Application (separation, polymer, catalysis, nanotechnology, electrochemistry, nuclear technology); Energy and Environmental Technology (materials for energy storage and conversion, coal gasification, gas liquefaction, air pollution control, water treatment, waste utilization and management, nuclear waste remediation); and Biochemical Engineering (including targeted drug delivery applications).
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