Thermal boundary layer modelling for heat flux prediction of bubbles at saturation: A priori analysis based on fully-resolved simulations
This study presents and investigates uni-directional thermal sub-layer enhancement techniques within the context of an interface tracking method for simulating bubbly flows at saturation. Current discretisation methods on structured and fixed Cartesian grids tend to spread the bubbles' interfac...
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description | This study presents and investigates uni-directional thermal sub-layer enhancement techniques within the context of an interface tracking method for simulating bubbly flows at saturation. Current discretisation methods on structured and fixed Cartesian grids tend to spread the bubbles' interface region, creating a trade-off between the freely moving nature of the bubble to the detriment of accurately capturing the discontinuous aspect of the interface and variations of properties and fluxes crossing it. Although robust techniques have been described in the literature to ensure energy conservation, less research has been undertaken to develop a methodology to retrieve the non-linear behaviour of quantities in the interface vicinity at a reasonable computational cost. In this study, the discretised bubble surface is used as a basis for addressing several quasi-static radial sub-problems that are bounded by an interfacial constant saturation temperature and a CFD temperature field value. A first approach, based on an analytical solution fitted at each time step using underlying Eulerian field values, has been developed to incorporate near-interface physics. This includes the tangential effect, incoming fluid velocity, and local mean curvature (first order surface approximation). A semi-analytical approach needs to meet certain assumptions to be valid. This is due to its derivation from a simplified plane boundary-layer development or from a spherical diffusion problem which limits its applicability range. Therefore, a second approach based on a uni-directional sub-resolution fed carefully by interpolated velocity and tangential source terms demonstrates promising results as it aligns with the principal variations of the solution. Both methodologies have been applied onto DNS data of a steady rising bubble configuration at low and moderate Reynolds {3.6;62.5} and Prandtl {1;2.5;5} numbers with a constant interfacial temperature after an extensive analysis of the advection-diffusion terms hierarchy. The key aspects to maximise the effectiveness of the sub-resolution method have been clearly identified and discussed. The Sub-resolution shows better applicability to our case study on moderately large thermal layers. The newly predicted interfacial temperature gradient and temperature profile could be re-employed for Eulerian fluxes correction.
•The numerical method of TrioCFD is exposed for direct resolution of heat transfer problems in bubbly flows at saturation |
doi_str_mv | 10.1016/j.ijheatmasstransfer.2023.124980 |
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•The numerical method of TrioCFD is exposed for direct resolution of heat transfer problems in bubbly flows at saturation.•Gradient correction approaches initially designed for chemical species transport phenomena are reassessed for temperature.•A priori assessment of a sub-resolution method yielded promising results at moderate Reynolds and Prandtl numbers.•Tangential terms contribution is significant and could be modelled to further enhance the sub-layer temperature prediction.</description><identifier>ISSN: 0017-9310</identifier><identifier>EISSN: 1879-2189</identifier><identifier>DOI: 10.1016/j.ijheatmasstransfer.2023.124980</identifier><language>eng</language><publisher>Elsevier Ltd</publisher><subject>Boundary-layer modelling ; Fluid mechanics ; Front-tracking ; Ghost fluid method ; Heat transfer ; Mechanics ; Physics ; Sub-grid modelling ; Two-phase flows</subject><ispartof>International journal of heat and mass transfer, 2024-05, Vol.222, p.124980, Article 124980</ispartof><rights>2023 Elsevier Ltd</rights><rights>Distributed under a Creative Commons Attribution 4.0 International License</rights><lds50>peer_reviewed</lds50><oa>free_for_read</oa><woscitedreferencessubscribed>false</woscitedreferencessubscribed><citedby>FETCH-LOGICAL-c376t-15f7ca5ba8835648d95af9849ea5b92c9650e00550e9992b25366572fb8e54bd3</citedby><cites>FETCH-LOGICAL-c376t-15f7ca5ba8835648d95af9849ea5b92c9650e00550e9992b25366572fb8e54bd3</cites><orcidid>0009-0000-4460-0081 ; 0000-0001-9078-714X ; 0000-0002-7156-1732</orcidid></display><links><openurl>$$Topenurl_article</openurl><openurlfulltext>$$Topenurlfull_article</openurlfulltext><thumbnail>$$Tsyndetics_thumb_exl</thumbnail><linktohtml>$$Uhttps://www.sciencedirect.com/science/article/pii/S0017931023011250$$EHTML$$P50$$Gelsevier$$H</linktohtml><link.rule.ids>230,314,776,780,881,3536,27903,27904,65309</link.rule.ids><backlink>$$Uhttps://cea.hal.science/cea-04419812$$DView record in HAL$$Hfree_for_read</backlink></links><search><creatorcontrib>Grosso, Mathis</creatorcontrib><creatorcontrib>Bois, Guillaume</creatorcontrib><creatorcontrib>Toutant, Adrien</creatorcontrib><title>Thermal boundary layer modelling for heat flux prediction of bubbles at saturation: A priori analysis based on fully-resolved simulations</title><title>International journal of heat and mass transfer</title><description>This study presents and investigates uni-directional thermal sub-layer enhancement techniques within the context of an interface tracking method for simulating bubbly flows at saturation. Current discretisation methods on structured and fixed Cartesian grids tend to spread the bubbles' interface region, creating a trade-off between the freely moving nature of the bubble to the detriment of accurately capturing the discontinuous aspect of the interface and variations of properties and fluxes crossing it. Although robust techniques have been described in the literature to ensure energy conservation, less research has been undertaken to develop a methodology to retrieve the non-linear behaviour of quantities in the interface vicinity at a reasonable computational cost. In this study, the discretised bubble surface is used as a basis for addressing several quasi-static radial sub-problems that are bounded by an interfacial constant saturation temperature and a CFD temperature field value. A first approach, based on an analytical solution fitted at each time step using underlying Eulerian field values, has been developed to incorporate near-interface physics. This includes the tangential effect, incoming fluid velocity, and local mean curvature (first order surface approximation). A semi-analytical approach needs to meet certain assumptions to be valid. This is due to its derivation from a simplified plane boundary-layer development or from a spherical diffusion problem which limits its applicability range. Therefore, a second approach based on a uni-directional sub-resolution fed carefully by interpolated velocity and tangential source terms demonstrates promising results as it aligns with the principal variations of the solution. Both methodologies have been applied onto DNS data of a steady rising bubble configuration at low and moderate Reynolds {3.6;62.5} and Prandtl {1;2.5;5} numbers with a constant interfacial temperature after an extensive analysis of the advection-diffusion terms hierarchy. The key aspects to maximise the effectiveness of the sub-resolution method have been clearly identified and discussed. The Sub-resolution shows better applicability to our case study on moderately large thermal layers. The newly predicted interfacial temperature gradient and temperature profile could be re-employed for Eulerian fluxes correction.
•The numerical method of TrioCFD is exposed for direct resolution of heat transfer problems in bubbly flows at saturation.•Gradient correction approaches initially designed for chemical species transport phenomena are reassessed for temperature.•A priori assessment of a sub-resolution method yielded promising results at moderate Reynolds and Prandtl numbers.•Tangential terms contribution is significant and could be modelled to further enhance the sub-layer temperature prediction.</description><subject>Boundary-layer modelling</subject><subject>Fluid mechanics</subject><subject>Front-tracking</subject><subject>Ghost fluid method</subject><subject>Heat transfer</subject><subject>Mechanics</subject><subject>Physics</subject><subject>Sub-grid modelling</subject><subject>Two-phase flows</subject><issn>0017-9310</issn><issn>1879-2189</issn><fulltext>true</fulltext><rsrctype>article</rsrctype><creationdate>2024</creationdate><recordtype>article</recordtype><recordid>eNqNUc1u1DAQthCVWArv4CMcsthOnNicWFWUFq3EpT1b42TMeuXEyE5W7CPw1jjdqhcuXDzyfD_2zEfIB862nPH203HrjweEeYSc5wRTdpi2gol6y0WjFXtFNlx1uhJc6ddkwxjvKl1z9oa8zfm4XlnTbsifhwOmEQK1cZkGSGca4IyJjnHAEPz0k7qY6PoQdWH5TX8lHHw_-zjR6KhdrA2YaUEzzEuCFfhMd4XmY_IUJgjn7DO1kHGgReSWEM5VwhzDqXSyH5fwpMrvyJWDkPH9c70mj7dfH27uqv2Pb_c3u33V1107V1y6rgdpQalato0atASnVaOxNLXodSsZMibLqbUWVsi6bWUnnFUoGzvU1-TjxfcAwZR_jmVoE8Gbu93e9AiGNQ3XiosTL9wvF26fYs4J3YuAM7PGYI7m3xjMGoO5xFAsvl8ssMx08gXNvcepL2tM2M9miP7_zf4Cdlaf-g</recordid><startdate>20240501</startdate><enddate>20240501</enddate><creator>Grosso, Mathis</creator><creator>Bois, Guillaume</creator><creator>Toutant, Adrien</creator><general>Elsevier Ltd</general><general>Elsevier</general><scope>AAYXX</scope><scope>CITATION</scope><scope>1XC</scope><scope>VOOES</scope><orcidid>https://orcid.org/0009-0000-4460-0081</orcidid><orcidid>https://orcid.org/0000-0001-9078-714X</orcidid><orcidid>https://orcid.org/0000-0002-7156-1732</orcidid></search><sort><creationdate>20240501</creationdate><title>Thermal boundary layer modelling for heat flux prediction of bubbles at saturation: A priori analysis based on fully-resolved simulations</title><author>Grosso, Mathis ; Bois, Guillaume ; Toutant, Adrien</author></sort><facets><frbrtype>5</frbrtype><frbrgroupid>cdi_FETCH-LOGICAL-c376t-15f7ca5ba8835648d95af9849ea5b92c9650e00550e9992b25366572fb8e54bd3</frbrgroupid><rsrctype>articles</rsrctype><prefilter>articles</prefilter><language>eng</language><creationdate>2024</creationdate><topic>Boundary-layer modelling</topic><topic>Fluid mechanics</topic><topic>Front-tracking</topic><topic>Ghost fluid method</topic><topic>Heat transfer</topic><topic>Mechanics</topic><topic>Physics</topic><topic>Sub-grid modelling</topic><topic>Two-phase flows</topic><toplevel>peer_reviewed</toplevel><toplevel>online_resources</toplevel><creatorcontrib>Grosso, Mathis</creatorcontrib><creatorcontrib>Bois, Guillaume</creatorcontrib><creatorcontrib>Toutant, Adrien</creatorcontrib><collection>CrossRef</collection><collection>Hyper Article en Ligne (HAL)</collection><collection>Hyper Article en Ligne (HAL) (Open Access)</collection><jtitle>International journal of heat and mass transfer</jtitle></facets><delivery><delcategory>Remote Search Resource</delcategory><fulltext>fulltext</fulltext></delivery><addata><au>Grosso, Mathis</au><au>Bois, Guillaume</au><au>Toutant, Adrien</au><format>journal</format><genre>article</genre><ristype>JOUR</ristype><atitle>Thermal boundary layer modelling for heat flux prediction of bubbles at saturation: A priori analysis based on fully-resolved simulations</atitle><jtitle>International journal of heat and mass transfer</jtitle><date>2024-05-01</date><risdate>2024</risdate><volume>222</volume><spage>124980</spage><pages>124980-</pages><artnum>124980</artnum><issn>0017-9310</issn><eissn>1879-2189</eissn><abstract>This study presents and investigates uni-directional thermal sub-layer enhancement techniques within the context of an interface tracking method for simulating bubbly flows at saturation. Current discretisation methods on structured and fixed Cartesian grids tend to spread the bubbles' interface region, creating a trade-off between the freely moving nature of the bubble to the detriment of accurately capturing the discontinuous aspect of the interface and variations of properties and fluxes crossing it. Although robust techniques have been described in the literature to ensure energy conservation, less research has been undertaken to develop a methodology to retrieve the non-linear behaviour of quantities in the interface vicinity at a reasonable computational cost. In this study, the discretised bubble surface is used as a basis for addressing several quasi-static radial sub-problems that are bounded by an interfacial constant saturation temperature and a CFD temperature field value. A first approach, based on an analytical solution fitted at each time step using underlying Eulerian field values, has been developed to incorporate near-interface physics. This includes the tangential effect, incoming fluid velocity, and local mean curvature (first order surface approximation). A semi-analytical approach needs to meet certain assumptions to be valid. This is due to its derivation from a simplified plane boundary-layer development or from a spherical diffusion problem which limits its applicability range. Therefore, a second approach based on a uni-directional sub-resolution fed carefully by interpolated velocity and tangential source terms demonstrates promising results as it aligns with the principal variations of the solution. Both methodologies have been applied onto DNS data of a steady rising bubble configuration at low and moderate Reynolds {3.6;62.5} and Prandtl {1;2.5;5} numbers with a constant interfacial temperature after an extensive analysis of the advection-diffusion terms hierarchy. The key aspects to maximise the effectiveness of the sub-resolution method have been clearly identified and discussed. The Sub-resolution shows better applicability to our case study on moderately large thermal layers. The newly predicted interfacial temperature gradient and temperature profile could be re-employed for Eulerian fluxes correction.
•The numerical method of TrioCFD is exposed for direct resolution of heat transfer problems in bubbly flows at saturation.•Gradient correction approaches initially designed for chemical species transport phenomena are reassessed for temperature.•A priori assessment of a sub-resolution method yielded promising results at moderate Reynolds and Prandtl numbers.•Tangential terms contribution is significant and could be modelled to further enhance the sub-layer temperature prediction.</abstract><pub>Elsevier Ltd</pub><doi>10.1016/j.ijheatmasstransfer.2023.124980</doi><orcidid>https://orcid.org/0009-0000-4460-0081</orcidid><orcidid>https://orcid.org/0000-0001-9078-714X</orcidid><orcidid>https://orcid.org/0000-0002-7156-1732</orcidid><oa>free_for_read</oa></addata></record> |
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subjects | Boundary-layer modelling Fluid mechanics Front-tracking Ghost fluid method Heat transfer Mechanics Physics Sub-grid modelling Two-phase flows |
title | Thermal boundary layer modelling for heat flux prediction of bubbles at saturation: A priori analysis based on fully-resolved simulations |
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