A general simulation methodology for rigid buoyant objects in multi-phase flows using ANSYS-CFX

The study will discuss the development of a computational fluid dynamics model for the simulation of buoyant effects on a rigid body immersed in a multiphase fluid using ANSYS-CFX. Consequently, the study will be significant as it will provide a new simulation methodology in the design of different...

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Main Authors: Pantua, Conrad Allan Jay R., Lopez, Neil Stephen A., Marfori, Isidro V., Seva, Rosemary R., Chua, Alvin
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Published: Animo Repository 2014
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Online Access:https://animorepository.dlsu.edu.ph/faculty_research/9246
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Institution: De La Salle University
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spelling oai:animorepository.dlsu.edu.ph:faculty_research-109482023-05-11T01:26:03Z A general simulation methodology for rigid buoyant objects in multi-phase flows using ANSYS-CFX Pantua, Conrad Allan Jay R. Lopez, Neil Stephen A. Marfori, Isidro V. Seva, Rosemary R. Chua, Alvin The study will discuss the development of a computational fluid dynamics model for the simulation of buoyant effects on a rigid body immersed in a multiphase fluid using ANSYS-CFX. Consequently, the study will be significant as it will provide a new simulation methodology in the design of different floatation devices. The researchers identified four main challenges in developing the model: addressing the negative volume element error, minimizing calculation cost, defining fluid composition in a multiphase fluid domain, and formulating a meshing strategy that is easily adaptable to a variety of geometries. Different options and methodologies explored to address the challenges were discussed in this paper. The model underwent simulation on two different geometries for adaptability. The researchers' were able to setup an air-water fluid interface for the model. Convergence errors occurred in the simulation when geometries have un-rounded edges. Mesh deformation was prevented if the time step was reduced from a range of 0.01 to 0.001 seconds. Mesh independence was also achieved when mesh size was adjusted to fine levels. A floating body was successfully simulated using the strategies mentioned. 2014-01-01T08:00:00Z text https://animorepository.dlsu.edu.ph/faculty_research/9246 Faculty Research Work Animo Repository Computational fluid dynamics Buoyant ascent (Hydrodynamics) Mechanical Engineering
institution De La Salle University
building De La Salle University Library
continent Asia
country Philippines
Philippines
content_provider De La Salle University Library
collection DLSU Institutional Repository
topic Computational fluid dynamics
Buoyant ascent (Hydrodynamics)
Mechanical Engineering
spellingShingle Computational fluid dynamics
Buoyant ascent (Hydrodynamics)
Mechanical Engineering
Pantua, Conrad Allan Jay R.
Lopez, Neil Stephen A.
Marfori, Isidro V.
Seva, Rosemary R.
Chua, Alvin
A general simulation methodology for rigid buoyant objects in multi-phase flows using ANSYS-CFX
description The study will discuss the development of a computational fluid dynamics model for the simulation of buoyant effects on a rigid body immersed in a multiphase fluid using ANSYS-CFX. Consequently, the study will be significant as it will provide a new simulation methodology in the design of different floatation devices. The researchers identified four main challenges in developing the model: addressing the negative volume element error, minimizing calculation cost, defining fluid composition in a multiphase fluid domain, and formulating a meshing strategy that is easily adaptable to a variety of geometries. Different options and methodologies explored to address the challenges were discussed in this paper. The model underwent simulation on two different geometries for adaptability. The researchers' were able to setup an air-water fluid interface for the model. Convergence errors occurred in the simulation when geometries have un-rounded edges. Mesh deformation was prevented if the time step was reduced from a range of 0.01 to 0.001 seconds. Mesh independence was also achieved when mesh size was adjusted to fine levels. A floating body was successfully simulated using the strategies mentioned.
format text
author Pantua, Conrad Allan Jay R.
Lopez, Neil Stephen A.
Marfori, Isidro V.
Seva, Rosemary R.
Chua, Alvin
author_facet Pantua, Conrad Allan Jay R.
Lopez, Neil Stephen A.
Marfori, Isidro V.
Seva, Rosemary R.
Chua, Alvin
author_sort Pantua, Conrad Allan Jay R.
title A general simulation methodology for rigid buoyant objects in multi-phase flows using ANSYS-CFX
title_short A general simulation methodology for rigid buoyant objects in multi-phase flows using ANSYS-CFX
title_full A general simulation methodology for rigid buoyant objects in multi-phase flows using ANSYS-CFX
title_fullStr A general simulation methodology for rigid buoyant objects in multi-phase flows using ANSYS-CFX
title_full_unstemmed A general simulation methodology for rigid buoyant objects in multi-phase flows using ANSYS-CFX
title_sort general simulation methodology for rigid buoyant objects in multi-phase flows using ansys-cfx
publisher Animo Repository
publishDate 2014
url https://animorepository.dlsu.edu.ph/faculty_research/9246
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