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Citation:
 Jiming Liu,Tao Zhang and Yongou Zhang.Numerical Study on Flow-induced Noise for a Steam Stop-valve Using Large Eddy Simulation[J].Journal of Marine Science and Application,2013,(3):351-360.[doi:10.1007/s11804-013-1195-9]
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Numerical Study on Flow-induced Noise for a Steam Stop-valve Using Large Eddy Simulation

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Title:
Numerical Study on Flow-induced Noise for a Steam Stop-valve Using Large Eddy Simulation
Author(s):
Jiming Liu Tao Zhang and Yong’ou Zhang
Affilations:
Author(s):
Jiming Liu Tao Zhang and Yong’ou Zhang
School of Naval Architecture and Ocean Engineering, Huazhong University of Science & Technology, Wuhan 430074, China
Keywords:
flow-induced noise steam stop-valve flow field sound field large eddy simulation (LES) computational fluid dynamics (CFD) ACTRAN
分类号:
-
DOI:
10.1007/s11804-013-1195-9
Abstract:
The noise induced by the fluctuant saturated steam flow under 250 °C in a stop-valve was numerically studied. The simulation was carried out using computational fluid dynamics (CFD) and ACTRAN. The acoustic field was investigated with Lighthill’s acoustic analogy based on the properties of the flow field obtained using a large-eddy simulation that employs the LES-WALE dynamic model as the sub-grid-scale model. Firstly, the validation of mesh was well conducted, illustrating that two million elements were sufficient in this situation. Secondly, the treatment of the steam was deliberated, and conclusions indicate that when predicting the flow-induced noise of the stop-valve, the steam can be treated as incompressible gas at a low inlet velocity. Thirdly, the flow-induced noises under different inlet velocities were compared. The findings reveal it has remarkable influence on the flow-induced noises. Lastly, whether or not the heat preservation of the wall has influence on the noise was taken into account. The results show that heat preservation of the wall had little influence.

References:

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Last Update: 2013-08-27