Experimental and Numerical Investigation of Mixing Phenomena in Double-Tee Junctions
This work investigates mixing phenomena in a pressurized pipe system with two sequential Tee junctions and experiments are conducted for a range of different inlet flow ratios, varying distances between Tee junctions and two pipe branching configurations. Additionally, obtained experimental results...
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doaj-a43e2ac2a3224b9ba6fa799008371d832020-11-25T00:25:59ZengMDPI AGWater2073-44412019-06-01116119810.3390/w11061198w11061198Experimental and Numerical Investigation of Mixing Phenomena in Double-Tee JunctionsLuka Grbčić0Lado Kranjčević1Ivana Lučin2Zoran Čarija3Department of Fluid Mechanics and Computational Engineering, Faculty of Engineering, University of Rijeka, 51000 Rijeka, CroatiaDepartment of Fluid Mechanics and Computational Engineering, Faculty of Engineering, University of Rijeka, 51000 Rijeka, CroatiaDepartment of Fluid Mechanics and Computational Engineering, Faculty of Engineering, University of Rijeka, 51000 Rijeka, CroatiaDepartment of Fluid Mechanics and Computational Engineering, Faculty of Engineering, University of Rijeka, 51000 Rijeka, CroatiaThis work investigates mixing phenomena in a pressurized pipe system with two sequential Tee junctions and experiments are conducted for a range of different inlet flow ratios, varying distances between Tee junctions and two pipe branching configurations. Additionally, obtained experimental results are compared with results from previous studies by different authors and are used to validate the numerical model using the open source computational fluid dynamics toolbox OpenFOAM. Two different numerical approaches are used—Passive scalar model and Multiphase model. It is found that both numerical models produce similar results and that they are both greatly dependent on the turbulent Schmidt number. After the calibration procedure, both models provided good results for all investigated flow ratios, double-Tee junction distances, and pipe branching configurations, therefore both numerical models can be applied for a wide range of pipe networks configurations, but passive scalar model is the viable choice due to its much higher computational efficiency. Obtained results also describe the relationship between the double-Tee distances and complete mixing occurrence.https://www.mdpi.com/2073-4441/11/6/1198mixing phenomenacomplete mixingbulk mixingdouble-Tee junctionsmultiphase modelpassive scalar modelSchmidt number |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Luka Grbčić Lado Kranjčević Ivana Lučin Zoran Čarija |
spellingShingle |
Luka Grbčić Lado Kranjčević Ivana Lučin Zoran Čarija Experimental and Numerical Investigation of Mixing Phenomena in Double-Tee Junctions Water mixing phenomena complete mixing bulk mixing double-Tee junctions multiphase model passive scalar model Schmidt number |
author_facet |
Luka Grbčić Lado Kranjčević Ivana Lučin Zoran Čarija |
author_sort |
Luka Grbčić |
title |
Experimental and Numerical Investigation of Mixing Phenomena in Double-Tee Junctions |
title_short |
Experimental and Numerical Investigation of Mixing Phenomena in Double-Tee Junctions |
title_full |
Experimental and Numerical Investigation of Mixing Phenomena in Double-Tee Junctions |
title_fullStr |
Experimental and Numerical Investigation of Mixing Phenomena in Double-Tee Junctions |
title_full_unstemmed |
Experimental and Numerical Investigation of Mixing Phenomena in Double-Tee Junctions |
title_sort |
experimental and numerical investigation of mixing phenomena in double-tee junctions |
publisher |
MDPI AG |
series |
Water |
issn |
2073-4441 |
publishDate |
2019-06-01 |
description |
This work investigates mixing phenomena in a pressurized pipe system with two sequential Tee junctions and experiments are conducted for a range of different inlet flow ratios, varying distances between Tee junctions and two pipe branching configurations. Additionally, obtained experimental results are compared with results from previous studies by different authors and are used to validate the numerical model using the open source computational fluid dynamics toolbox OpenFOAM. Two different numerical approaches are used—Passive scalar model and Multiphase model. It is found that both numerical models produce similar results and that they are both greatly dependent on the turbulent Schmidt number. After the calibration procedure, both models provided good results for all investigated flow ratios, double-Tee junction distances, and pipe branching configurations, therefore both numerical models can be applied for a wide range of pipe networks configurations, but passive scalar model is the viable choice due to its much higher computational efficiency. Obtained results also describe the relationship between the double-Tee distances and complete mixing occurrence. |
topic |
mixing phenomena complete mixing bulk mixing double-Tee junctions multiphase model passive scalar model Schmidt number |
url |
https://www.mdpi.com/2073-4441/11/6/1198 |
work_keys_str_mv |
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1725346546638127104 |