不同叶尖间隙下混流泵叶缘区附近停滞流场的 PIV 研究

IF 2.3 3区 工程技术 Q2 ENGINEERING, MECHANICAL
Leilei Ji , Zhenbo Liu , Wei Li , Weidong Shi , Fei Tian , Wei Pu , Yang Yang , Cui Xiao , Ramesh Agarwal
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引用次数: 0

摘要

为了进一步探讨不同轮缘泄漏流强化诱发旋转失速的物理机制,利用粒子图像测速技术获得了不同轮缘间隙尺度下混流泵失速流场的速度分布。通过比较不同射流截面、不同相位和不同工况下的流动结构,揭示了轮缘间隙尺度对混流泵近壁流场的影响。结果表明,在设计流动条件下,四种轮缘间隙下混流泵导叶进口轮毂附近均存在明显的回流现象,但强度较弱,且不影响叶轮通道内的主流场。随着轮缘间隙尺度的增大,泄漏流强度也随之增大,受 TLV 结构影响的主流场面积也随之增大。在深失速工况下,混流泵导叶入口处的回流漩涡在各间隙处依然存在,但内部开始出现不稳定流结构,尤其是导叶入口处形成的大型二次漩涡结构,严重阻碍了主流向。随着边缘间隙的增大,导叶入口处的流场也受到明显影响,次级涡核逐渐向端壁区域移动,导致流场中受阻面积增大。同时,流场的非稳流强度呈现非线性上升趋势。小间隙叶轮的流场非稳流强度增加迅速,而大间隙叶轮的非稳流强度变化缓慢。该研究为优化混流泵轮缘间隙、提高混流泵效率提供了参考。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
PIV investigation of stalled flow field near the blade rim region of mixed-flow pump under different tip clearances

In order to further explore the physical mechanism of rotating stall induced by different rim leakage flow intensification, the velocity distribution of the stall flow field of the mixed flow pump under different rim clearance scales was obtained by Particle Image Velocimetry technology. By comparing the flow structure under different shooting sections, different phases and different working conditions, the influence of rim clearance scale on the flow field near the wall of the mixed flow pump was revealed. The results show that under the design flow conditions, there is an obvious reflux phenomenon near the hub of the guide vane inlet of the mixed flow pump under the four kinds of rim clearance, but the intensity is weak, and it does not affect the main flow field in the impeller channel. With the increase of rim clearance scale, the leakage flow intensity also increases, and the main flow area affected by the TLV structure also increases. In the deep stall condition, the reflux vortex at the inlet of the guide vane of the mixed flow pump still exists at each clearance, but the unsteady flow structure begins to appear inside, especially the large secondary vortex structure formed at the guide vane inlet, which seriously blocks the main flow. With the increase of the rim clearance, the flow field at the inlet of the guide vane is also obviously affected, and the secondary vortex core gradually moves towards the end wall area, resulting in an increase in the blocked area in the flow field. At the same time, the unsteady flow intensity of the flow field shows a nonlinear increasing trend. The unsteady strength of flow field increases rapidly with small gap impellers, while the unsteady strength changes slowly with large gap impellers. This study provides a reference for optimizing the rim clearance of mixed-flow pump and improving the efficiency of mixed-flow pump.

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来源期刊
Flow Measurement and Instrumentation
Flow Measurement and Instrumentation 工程技术-工程:机械
CiteScore
4.30
自引率
13.60%
发文量
123
审稿时长
6 months
期刊介绍: Flow Measurement and Instrumentation is dedicated to disseminating the latest research results on all aspects of flow measurement, in both closed conduits and open channels. The design of flow measurement systems involves a wide variety of multidisciplinary activities including modelling the flow sensor, the fluid flow and the sensor/fluid interactions through the use of computation techniques; the development of advanced transducer systems and their associated signal processing and the laboratory and field assessment of the overall system under ideal and disturbed conditions. FMI is the essential forum for critical information exchange, and contributions are particularly encouraged in the following areas of interest: Modelling: the application of mathematical and computational modelling to the interaction of fluid dynamics with flowmeters, including flowmeter behaviour, improved flowmeter design and installation problems. Application of CAD/CAE techniques to flowmeter modelling are eligible. Design and development: the detailed design of the flowmeter head and/or signal processing aspects of novel flowmeters. Emphasis is given to papers identifying new sensor configurations, multisensor flow measurement systems, non-intrusive flow metering techniques and the application of microelectronic techniques in smart or intelligent systems. Calibration techniques: including descriptions of new or existing calibration facilities and techniques, calibration data from different flowmeter types, and calibration intercomparison data from different laboratories. Installation effect data: dealing with the effects of non-ideal flow conditions on flowmeters. Papers combining a theoretical understanding of flowmeter behaviour with experimental work are particularly welcome.
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