High Order Accurate Numerical Simulation of Vortex-Induced Vibrations of a Cooled Circular Cylinder Case using Solution Dependent Weighted Least Square Gradient Calculations

In this paper, the fluid-structure interaction problem: vortex-induced vibration of a cooled circular cylinder involving thermal buoyancy is numerically investigated. The elastically mounted cylinder having a temperature lower than the flowing fluid is modelled using mass-spring-damper hence allowed...

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Autores principales: Sonawane Chandrakant, Praharaj Priyambada, Pandey Anand, Kulkarni Atul
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Publicado: EDP Sciences 2021
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Acceso en línea:https://doaj.org/article/334294c41afa4f0eb329c1368f9cfaf4
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spelling oai:doaj.org-article:334294c41afa4f0eb329c1368f9cfaf42021-11-12T11:44:34ZHigh Order Accurate Numerical Simulation of Vortex-Induced Vibrations of a Cooled Circular Cylinder Case using Solution Dependent Weighted Least Square Gradient Calculations2267-124210.1051/e3sconf/202132104005https://doaj.org/article/334294c41afa4f0eb329c1368f9cfaf42021-01-01T00:00:00Zhttps://www.e3s-conferences.org/articles/e3sconf/pdf/2021/97/e3sconf_icchmt2021_04005.pdfhttps://doaj.org/toc/2267-1242In this paper, the fluid-structure interaction problem: vortex-induced vibration of a cooled circular cylinder involving thermal buoyancy is numerically investigated. The elastically mounted cylinder having a temperature lower than the flowing fluid is modelled using mass-spring-damper hence allowed to vibrate in the transverse direction to the flow direction. The gravity is acting opposite to the flow direction. In-house fluid-structure interaction solver is developed based on Harten Lax and van Leer with contact for artificial compressibility Riemann solver. The arbitrarily Lagrangian-Eulerian formulation is employed here, and the mesh is dynamically moved using radial basis function-based interpolation. The solution-dependent weighted least squares based gradient calculations are developed to achieve higher-order accuracy over unstructured meshes. The laminar incompressible flow at Reynolds number, Re = 200, and Prandtl number, Pr = 0.71, is simulated for the mass ratio of 1 and reduced damping coefficient of 0.001. The flow is investigated for Richardson number (-1, 0) and over a wide range of natural frequencies of the cylinder. The heat transfer characteristics from a cylinder are captured and compared with the existing literature results. From the study, it can be observed that in the presence of the thermal boundary layer, the oscillation of the cylinder increases to its maximum amplitude, particularly for values of natural frequencies (0.063 – 0.3).Sonawane ChandrakantPraharaj PriyambadaPandey AnandKulkarni AtulEDP SciencesarticleEnvironmental sciencesGE1-350ENFRE3S Web of Conferences, Vol 321, p 04005 (2021)
institution DOAJ
collection DOAJ
language EN
FR
topic Environmental sciences
GE1-350
spellingShingle Environmental sciences
GE1-350
Sonawane Chandrakant
Praharaj Priyambada
Pandey Anand
Kulkarni Atul
High Order Accurate Numerical Simulation of Vortex-Induced Vibrations of a Cooled Circular Cylinder Case using Solution Dependent Weighted Least Square Gradient Calculations
description In this paper, the fluid-structure interaction problem: vortex-induced vibration of a cooled circular cylinder involving thermal buoyancy is numerically investigated. The elastically mounted cylinder having a temperature lower than the flowing fluid is modelled using mass-spring-damper hence allowed to vibrate in the transverse direction to the flow direction. The gravity is acting opposite to the flow direction. In-house fluid-structure interaction solver is developed based on Harten Lax and van Leer with contact for artificial compressibility Riemann solver. The arbitrarily Lagrangian-Eulerian formulation is employed here, and the mesh is dynamically moved using radial basis function-based interpolation. The solution-dependent weighted least squares based gradient calculations are developed to achieve higher-order accuracy over unstructured meshes. The laminar incompressible flow at Reynolds number, Re = 200, and Prandtl number, Pr = 0.71, is simulated for the mass ratio of 1 and reduced damping coefficient of 0.001. The flow is investigated for Richardson number (-1, 0) and over a wide range of natural frequencies of the cylinder. The heat transfer characteristics from a cylinder are captured and compared with the existing literature results. From the study, it can be observed that in the presence of the thermal boundary layer, the oscillation of the cylinder increases to its maximum amplitude, particularly for values of natural frequencies (0.063 – 0.3).
format article
author Sonawane Chandrakant
Praharaj Priyambada
Pandey Anand
Kulkarni Atul
author_facet Sonawane Chandrakant
Praharaj Priyambada
Pandey Anand
Kulkarni Atul
author_sort Sonawane Chandrakant
title High Order Accurate Numerical Simulation of Vortex-Induced Vibrations of a Cooled Circular Cylinder Case using Solution Dependent Weighted Least Square Gradient Calculations
title_short High Order Accurate Numerical Simulation of Vortex-Induced Vibrations of a Cooled Circular Cylinder Case using Solution Dependent Weighted Least Square Gradient Calculations
title_full High Order Accurate Numerical Simulation of Vortex-Induced Vibrations of a Cooled Circular Cylinder Case using Solution Dependent Weighted Least Square Gradient Calculations
title_fullStr High Order Accurate Numerical Simulation of Vortex-Induced Vibrations of a Cooled Circular Cylinder Case using Solution Dependent Weighted Least Square Gradient Calculations
title_full_unstemmed High Order Accurate Numerical Simulation of Vortex-Induced Vibrations of a Cooled Circular Cylinder Case using Solution Dependent Weighted Least Square Gradient Calculations
title_sort high order accurate numerical simulation of vortex-induced vibrations of a cooled circular cylinder case using solution dependent weighted least square gradient calculations
publisher EDP Sciences
publishDate 2021
url https://doaj.org/article/334294c41afa4f0eb329c1368f9cfaf4
work_keys_str_mv AT sonawanechandrakant highorderaccuratenumericalsimulationofvortexinducedvibrationsofacooledcircularcylindercaseusingsolutiondependentweightedleastsquaregradientcalculations
AT praharajpriyambada highorderaccuratenumericalsimulationofvortexinducedvibrationsofacooledcircularcylindercaseusingsolutiondependentweightedleastsquaregradientcalculations
AT pandeyanand highorderaccuratenumericalsimulationofvortexinducedvibrationsofacooledcircularcylindercaseusingsolutiondependentweightedleastsquaregradientcalculations
AT kulkarniatul highorderaccuratenumericalsimulationofvortexinducedvibrationsofacooledcircularcylindercaseusingsolutiondependentweightedleastsquaregradientcalculations
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