单叶片和双叶片泵流的时间分辨局部损耗分析

A. Pesch, R. Skoda
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摘要

本文提出了一种评估等温和不可压缩流动中时间分辨熵产生的方法。该方法是通过尺度自适应湍流建模的时间分辨计算流体动力学获得的三维流场的后处理方法。针对以单元为中心的有限体积法,介绍了直接熵和湍流熵产生的壁面函数,该方法在开源软件 OpenFOAM 中实现,并在通道流、非对称扩散器流和周期性山丘流中进行了验证。考虑了各种负载条件下的单叶和双叶离心泵流动。结果与实验数据进行了比较。时间平均分析表明,两种泵各部件的损耗密度分布基本相同,其中叶轮和涡壳区域的损耗最大,尤其是在非设计工况下。由于叶轮与涡轮之间的相互作用,两种泵的损耗都出现了明显的波动。损耗密度的波动幅度与流量波动幅度相同,远小于压力波动幅度。双叶片泵的损耗波动幅度小于单叶片泵。不同负载条件下的损耗机制各不相同。在叶片通过时,部分或过载时的涡舌分离分别会增强或减弱。在叶片通过之间,从泵入口到排出口的直接连接会导致流速和损耗密度波动增强。今后的工作旨在将这一分析扩展到多叶片泵中更强的非设计工况,因为在这种工况下会出现随机循环波动。
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Time-Resolved Local Loss Analysis of Single- and Two-Blade Pump Flow
A method for the evaluation of time-resolved entropy production in isothermal and incompressible flow is presented. It is applied as a post-processing of the three-dimensional flow field obtained by time-resolved computational fluid dynamics with scale adaptive turbulence modeling. Wall functions for direct and turbulent entropy production are presented for a cell-centered finite volume method, implemented in the open source software OpenFOAM and validated on channel, asymmetric diffuser and periodic hill flow. Single- and two-blade centrifugal pump flow is considered for a wide range of load conditions. Results are compared to experimental data. Time-averaged analysis shows essentially the same loss density distribution among pump components for both pumps, with the impeller and volute region contributing the most, especially in off-design conditions. For both pumps, the losses exhibit significant fluctuations due to impeller-volute interactions. The fluctuation magnitude of loss density is in the same range as flow rate fluctuations and much smaller than pressure fluctuation magnitude. For the two-blade pump, loss fluctuation magnitude is smaller than for the single-blade pump. Distinct loss mechanisms are identified for different load conditions. Upon blade passage, a promoted or attenuated volute tongue separation is imposed at part or overload, respectively. In between blade passages, a direct connection from pump inlet to the discharge leads to enhanced flow rate and loss density fluctuations. Future work aims at extending this analysis to stronger off-design conditions in multi-blade pumps, where stochastic cycle fluctuations occur.
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