Numerical simulation of flow past circular duct

The Renormalization Group (RNG) k—ɛ turbulence model and Volume of Fluid (VOF) method were employed to simulate the flow past a circular duct in order to obtain and analyze hydraulic parameters. According to various upper and bottom gap ratios, the force on the duct was calculated. When the bottom g...

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Main Authors: Ze-gao Yin, Xian-wei Cao, Hong-da Shi, Jian Ma
Format: Article
Language:English
Published: Elsevier 2010-06-01
Series:Water Science and Engineering
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S1674237015301137
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spelling doaj-ac915a094f54464087f5157ad2ad9ddd2020-11-24T23:59:46ZengElsevierWater Science and Engineering1674-23702010-06-013220821610.3882/j.issn.1674-2370.2010.02.009Numerical simulation of flow past circular ductZe-gao Yin0Xian-wei Cao1Hong-da Shi2Jian Ma3Ocean Engineering Key Laboratory of Shandong Province, Ocean University of China, Qingdao 266100, P. R. ChinaOcean Engineering Key Laboratory of Shandong Province, Ocean University of China, Qingdao 266100, P. R. ChinaOcean Engineering Key Laboratory of Shandong Province, Ocean University of China, Qingdao 266100, P. R. ChinaCivil Engineering Department, Zhejiang University, Hangzhou 310027, P. R. ChinaThe Renormalization Group (RNG) k—ɛ turbulence model and Volume of Fluid (VOF) method were employed to simulate the flow past a circular duct in order to obtain and analyze hydraulic parameters. According to various upper and bottom gap ratios, the force on the duct was calculated. When the bottom gap ratio is 0, the drag force coefficient, lift force coefficient, and composite force reach their maximum values, and the azimuth reaches its minimum. With an increase of the bottom gap ratio from 0 to 1, the drag force coefficient and composite force decrease sharply, and the lift force coefficient does not decreases so much, but the azimuth increases dramatically. With a continuous increase of the bottom gap ratio from 1 upward, the drag force coefficient, lift force coefficient, composite force, and azimuth vary little. Thus, the bottom gap ratio is the key factor influencing the force on the circular duct. When the bottom gap ratio is less than 1, the upper gap ratio has a remarkable influence on the force of the circular duct. When the bottom gap ratio is greater than 1, the variation of the upper gap ratio has little influence on the force of the circular duct.http://www.sciencedirect.com/science/article/pii/S1674237015301137circular ductRNG k—ɛ turbulence modelVOF methodnumerical simulation
collection DOAJ
language English
format Article
sources DOAJ
author Ze-gao Yin
Xian-wei Cao
Hong-da Shi
Jian Ma
spellingShingle Ze-gao Yin
Xian-wei Cao
Hong-da Shi
Jian Ma
Numerical simulation of flow past circular duct
Water Science and Engineering
circular duct
RNG k—ɛ turbulence model
VOF method
numerical simulation
author_facet Ze-gao Yin
Xian-wei Cao
Hong-da Shi
Jian Ma
author_sort Ze-gao Yin
title Numerical simulation of flow past circular duct
title_short Numerical simulation of flow past circular duct
title_full Numerical simulation of flow past circular duct
title_fullStr Numerical simulation of flow past circular duct
title_full_unstemmed Numerical simulation of flow past circular duct
title_sort numerical simulation of flow past circular duct
publisher Elsevier
series Water Science and Engineering
issn 1674-2370
publishDate 2010-06-01
description The Renormalization Group (RNG) k—ɛ turbulence model and Volume of Fluid (VOF) method were employed to simulate the flow past a circular duct in order to obtain and analyze hydraulic parameters. According to various upper and bottom gap ratios, the force on the duct was calculated. When the bottom gap ratio is 0, the drag force coefficient, lift force coefficient, and composite force reach their maximum values, and the azimuth reaches its minimum. With an increase of the bottom gap ratio from 0 to 1, the drag force coefficient and composite force decrease sharply, and the lift force coefficient does not decreases so much, but the azimuth increases dramatically. With a continuous increase of the bottom gap ratio from 1 upward, the drag force coefficient, lift force coefficient, composite force, and azimuth vary little. Thus, the bottom gap ratio is the key factor influencing the force on the circular duct. When the bottom gap ratio is less than 1, the upper gap ratio has a remarkable influence on the force of the circular duct. When the bottom gap ratio is greater than 1, the variation of the upper gap ratio has little influence on the force of the circular duct.
topic circular duct
RNG k—ɛ turbulence model
VOF method
numerical simulation
url http://www.sciencedirect.com/science/article/pii/S1674237015301137
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AT xianweicao numericalsimulationofflowpastcircularduct
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