An assessment of eddy viscosity models on predicting performance parameters of valves
File(s)
Author(s)
Duan, Y
Jackson, C
Eaton, M
Bluck, M
Type
Journal Article
Abstract
The major objective of the present study is to evaluate the performance of a range of turbulent eddy viscosity models in the prediction of macro-parameters (flow coefficient (CQ) and force coefficient (CF)), for certain types of valve, including the conic valve, the disk valves, and the compensated valve. This has been achieved by comparison of numerical predictions with experimental measurements available in the literature. The examined turbulence models include most of the available turbulent eddy viscosity models in STAR-CCM+ 12.04. They are the standard k-ε model, realizable k-ε model, k-ω-sst model, V2F model, EB k-ε model and the Lag EB k-ε models. The low-Re turbulence models (k-ω-sst, V2F, EB k-ε and Lag EB k-ε) perform worse than the high-Re models (standard k-ε and realizable k-ε). For the conic valve, the performance of different turbulent models varies little; the standard k-ε model shows a marginal advantage over the others. The performance of the turbulence models changed greatly, however, for prediction of CQ and CF of the disk and compensated valves. In general, the realizable k-ε model is demonstrated to be a robust choice for both valve types. Although the EB k-ε may marginally outperform it in the prediction of CF at large disk valve opening. The effects of the unknown entry flow and initialization conditions are also studied. The predictions are more sensitive to the entry flow condition when the valve opening is large. Additionally, the uncertainties caused by unknown entry conditions are comparable to overall modelling errors in some cases. For flow systems with multiple stable flow-states coexisting in the flow domain, the output of the numerical models can also be affected by the initialization conditions. When the streamline curvature and secondary flow is modest like conical valve flow, the nonlinear modification of the standard k-ε model and k-ω-sst model, as well as the curvature correction in the realizable k-ε model, will not have visible effects on the numerical prediction. Once the strong streamline curvature and secondary flow exit in the domain, such as the disk valve flow, the non-linear modification of the standard k-ε model will greatly improve the numerical outputs, however, the non-linear modifications of k-ω-sst model only have minor effects. Moreover, the curvature correction in the realizable k-ε model will jeopardise the accuracy of outputs in the same case.
Date Issued
2019-02-01
Online Publication Date
2019-12-05T07:00:16Z
Date Acceptance
2018-11-28
ISSN
0029-5493
Publisher
Elsevier
Start Page
60
End Page
77
Journal / Book Title
Nuclear Engineering and Design
Volume
342
Copyright Statement
© 2018 Elsevier B.V. All rights reserved. This manuscript is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International Licence http://creativecommons.org/licenses/by-nc-nd/4.0/
Source Database
manual-entry
Subjects
Science & Technology
Technology
Nuclear Science & Technology
Valve
Complex flow
Computational Fluid Dynamics (CFD)
Reynolds-Averaged Naiver-Stokes (RANS)
Turbulence models
CFD ANALYSIS
NUMERICAL-SIMULATION
BALL VALVE
FLOW
FORCES
POPPET
DISK
0915 Interdisciplinary Engineering
Energy
Publication Status
Published
Date Publish Online
2018-12-05