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Experimental and Numerical Analysis of the Flow Inside a Configuration Including an Axial Pump and a Tubular Exchanger

机译:包含轴流泵和管状交换器的结构内部流动的实验和数值分析

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摘要

In centrifugal and axial pumps, the flow is characterized by a turbulent and complex behavior and also by physical mechanisms such as cavitation and pressure fluctuations that are mainly due to the strong interactions between the fixed and mobile parts and the operating conditions. These fluctuations are more important at the tip clearance and propagate upstream and downstream of the rotor. The control of the fluctuating signal amplitudes can be achieved by incrementing the distance between the components mentioned above. This paper presents experimental and numerical results concerning the operation of a configuration that includes an axial pump and a bundle of tubes that mimics the cool source of a heat exchanger. The pump used in the tests has a low solidity and two blades designed in forced vortex, the tip clearance is approximately 3.87% of tip radius. The experimental measures were carried out using a test bench built for this purpose at the DynFluid Laboratory which was accomodated conveniently with a variety of instruments. Firstly, the characteristic curves were drawn for the pump at 1500 rpm and then a set of measurements concerning the use of pressure sensors was done in order to recover for different flow rates the static pressure signals upstream and downstream the pump and the exchanger. The pressure fluctuations and the performance curve were compared to the numerical results. The numerical simulations were carried out by using a Fluent code, the URANS (Unsteady Reynolds Averaged Navier-Stokes) approach and the k-ω SST turbulence model were applied to solve the unsteady, incompressible and turbulent flow. To record the fluctuating pressure signal, virtual sensors were necessary and placed at the same positions as in the experiments.
机译:在离心泵和轴流泵中,流动的特征是湍流和复杂的行为,还表现出诸如气蚀和压力波动之类的物理机制,这主要是由于固定部件和活动部件与工作条件之间的强烈相互作用所致。这些波动在叶尖间隙处更为重要,并在转子的上游和下游传播。可以通过增加上述分量之间的距离来实现对波动信号幅度的控制。本文介绍了有关配置操作的实验和数值结果,该配置包括轴流泵和模拟热交换器冷源的管束。测试中使用的泵具有低强度,两个叶片设计为强制涡流,叶尖间隙约为叶尖半径的3.87%。实验方法是在DynFluid实验室为此目的而建造的测试台上进行的,该台配有各种仪器,非常方便。首先,以1500 rpm的速度绘制泵的特性曲线,然后进行一组与压力传感器的使用有关的测量,以便针对不同的流量恢复泵和交换器上游和下游的静压力信号。将压力波动和性能曲线与数值结果进行比较。使用Fluent代码进行了数值模拟,应用了URANS(非稳态雷诺平均Navier-Stokes)方法和k-ωSST湍流模型来求解非稳态,不可压缩和湍流。为了记录波动的压力信号,必须使用虚拟传感器并将其放置在与实验相同的位置。

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