Hydrodynamic Design and Pulsation Evolution in an Axial-Flow Pump Based On Control Mechanism of Flow-Induced Excitation

Kexin Pu, Xiangsong Liu, Qipeng Li, Shangxiang Lu, Bin Huang, Dazhuan Wu
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Abstract

The physical mechanism, evolution process and control method on pulsation caused by flow-induced excitation vortex in axial flow pump are elaborated by numerical calculation and experiment. The mechanism formulation of flow-induced excitation vibration and the unique hydrodynamic design method of airfoil are proposed with three contrast models. According to the action law of inertial centrifugal force (ICF) in the rotor-stator interaction (RSI) region and guide vane airfoil, the evaluation method between vortex transport, turbulent kinetic energy and flow structure under transient and steady state of internal flow field is established, which navigates the instability of energy intensity determined by the uneven gradient distribution. The distribution characteristics of flow-induced excitation pulsation in the RSI region and the static region are quantitatively verified by experiment. Along the streamwise direction, the excitation loss changes from impact loss to flow loss, with the RSI vortex affected by wake-jet flow (WJF) vortices transforming into inter-vane vortex (IVV) in the guide vane. In pulsation evaluation, the excitation pulsation form changes from blade frequency fBPF to low frequency band. Overall, the generation analysis of the excitation pulsation is realized based on the hydrodynamic optimal design with the comparison of models, which provides guidance for the optimization design of the axial flow pump to reduce vibration and energy consumption of the cooling system.
基于流激控制机制的轴流泵水动力设计与脉动演化
通过数值计算和实验,阐述了轴流泵中流动诱发激振涡旋引起脉动的物理机理、演变过程和控制方法。通过三个对比模型,提出了流动诱发激振振动的机理表述和独特的机翼流体力学设计方法。根据转子-定子相互作用(RSI)区域惯性离心力(ICF)的作用规律和导叶机翼,建立了内部流场瞬态和稳态下涡流输运、湍流动能和流动结构之间的评价方法,为不均匀梯度分布决定的能量强度不稳定性提供了导航。实验定量验证了流致激波脉动在 RSI 区域和静态区域的分布特征。沿流向方向,激波损失从冲击损失转变为流动损失,RSI 涡流受到唤醒喷流(WJF)涡流的影响,在导叶中转变为叶间涡流(IVV)。在脉动评估中,激励脉动形式从叶片频率 fBPF 变为低频段。总之,通过模型对比,在流体力学优化设计的基础上实现了激振脉动的产生分析,为轴流泵的优化设计提供了指导,从而减少冷却系统的振动和能耗。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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