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首页> 外文期刊>Flow, turbulence and combustion >Scale-Adaptive Simulation of the Unsteady Turbulent Flow in a High-Speed Centrifugal Compressor with a Wedge-Type Vaned Diffuser
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Scale-Adaptive Simulation of the Unsteady Turbulent Flow in a High-Speed Centrifugal Compressor with a Wedge-Type Vaned Diffuser

机译:楔形叶片扩散器高速离心压缩机中不稳定湍流的规模 - 自适应仿真

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摘要

The present work investigates the details of unsteady flow behavior in a transonic centrifugal compressor with vaned diffuser. The analysis is based on solving three-dimensional, compressible, unsteady Navier-Stokes equations. The computational model is a high-compression ratio centrifugal compressor (4:1) consisting of an inlet duct, impeller, and diffuser vane. The hybrid scale-adaptive simulation (SAS) turbulent model is used to provide detailed flow information and characterize the transient flow structures within the compressor passages. A numerical sensitivity test is performed to validate the computational results in terms of pressure ratio and compressor efficiency. Instantaneous and mean flow field analyses are presented in the impeller and the vaned diffuser passages. Applying transient simulations, it is shown that the interaction between the pressure waves and the surface pressure of the diffuser blades leads to a pulsating behavior within the diffuser. Moreover, spectral analysis is evaluated to analyze the blade passing frequency (BPF) tonal noise as the main noise source of centrifugal compressors. In addition, the current SAS results are compared with those of the URANS-SST (shear stress transport) approach to show the ability of the SAS approach in the prediction of turbulent structures, where the SAS model leads to a much better resolution of the unsteady fluctuations. This study shows that the current SAS approach is promising in terms of the prediction of transient phenomena like LES, but offers a substantially reduced turn-around time.
机译:目前的工作调查了用叶片扩散器的横向离心式压缩机中的不稳定流动行为的细节。分析基于求解三维,可压缩,不稳定的Navier-Stokes方程。计算模型是由入口管道,叶轮和扩散器叶片组成的高压缩比离心压缩机(4:1)。混合级 - 自适应模拟(SAS)湍流模型用于提供详细的流量信息,并在压缩机通道内表征瞬态流动结构。执行数值灵敏度测试以验证压力比和压缩机效率方面的计算结果。瞬时和平均流场分析呈现在叶轮和叶片扩散器通道中。施加瞬态模拟,示出了压力波之间的相互作用和扩散器叶片的表面压力导致漫射器内的脉动行为。此外,评估光谱分析,以分析叶片通过频率(BPF)色调噪声作为离心式压缩机的主噪声源。此外,将当前的SAS结果与铀-SST(剪切应力传输)方法进行比较,以显示SAS方法在湍流结构预测中的能力,其中SAS模型导致不稳定的更好分辨率波动。本研究表明,目前的SAS方法在预测LES等瞬态现象的方面是有前途的,但是提供了大幅减少的扭转时间。

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