Tomography-based investigation of flow and heat transfer inside reticulated porous ceramics
•The border affected region is only 1–2 times of the mean cell size.•Local thermal equilibrium, which lasts for 7–10 s, has been found in this study.•The local convective heat transfer coefficient is constant along the flow direction.•The instantaneous volumetric heat transfer coefficient monotonous...
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Veröffentlicht in: | Applied thermal engineering 2021-02, Vol.184, p.116115, Article 116115 |
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description | •The border affected region is only 1–2 times of the mean cell size.•Local thermal equilibrium, which lasts for 7–10 s, has been found in this study.•The local convective heat transfer coefficient is constant along the flow direction.•The instantaneous volumetric heat transfer coefficient monotonously increases with time.
This study investigates the flow and heat transfer within reticulated porous ceramics, with the aim of enhancing the understanding of phenomena occurring at the pore scale in order to extract useful information for the optimisation of heat sinks or other reticulated porous devices in engineering applications. In this study, X-ray computed tomography is used to reconstruct the reticulated porous ceramic. From the voxel mesh, the real geometry of the foam sample can be obtained, and an unstructured mesh is generated using ICEM. Then, a fully coupled heat transfer model is established. Based on this model, the transient conjugate heat transfer between the airstream and the porous matrix is solved using FLUENT software. The numerical results show that the pressure drop vs. the superficial velocity follows the Darcy–Forchheimer equation, and the border-affected region is only 1–2 times the mean cell size. Moreover, a local thermal equilibrium lasting for 7–10 s is found in the transient coupled flow and heat transfer process in this study. Additionally, the local convective heat transfer coefficient, which mainly depends on the velocity, is constant along the flow direction, and the instantaneous volumetric heat transfer coefficient increases monotonically with time. The obtained results are important theoretical supplements for understanding the flow and heat transfer in porous materials, and are crucial for enhancing the heat transfer in applications of reticulated porous ceramic materials. |
doi_str_mv | 10.1016/j.applthermaleng.2020.116115 |
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This study investigates the flow and heat transfer within reticulated porous ceramics, with the aim of enhancing the understanding of phenomena occurring at the pore scale in order to extract useful information for the optimisation of heat sinks or other reticulated porous devices in engineering applications. In this study, X-ray computed tomography is used to reconstruct the reticulated porous ceramic. From the voxel mesh, the real geometry of the foam sample can be obtained, and an unstructured mesh is generated using ICEM. Then, a fully coupled heat transfer model is established. Based on this model, the transient conjugate heat transfer between the airstream and the porous matrix is solved using FLUENT software. The numerical results show that the pressure drop vs. the superficial velocity follows the Darcy–Forchheimer equation, and the border-affected region is only 1–2 times the mean cell size. Moreover, a local thermal equilibrium lasting for 7–10 s is found in the transient coupled flow and heat transfer process in this study. Additionally, the local convective heat transfer coefficient, which mainly depends on the velocity, is constant along the flow direction, and the instantaneous volumetric heat transfer coefficient increases monotonically with time. The obtained results are important theoretical supplements for understanding the flow and heat transfer in porous materials, and are crucial for enhancing the heat transfer in applications of reticulated porous ceramic materials.</description><identifier>ISSN: 1359-4311</identifier><identifier>EISSN: 1873-5606</identifier><identifier>DOI: 10.1016/j.applthermaleng.2020.116115</identifier><language>eng</language><publisher>Oxford: Elsevier Ltd</publisher><subject>Ceramics ; Computed tomography ; Convective heat transfer ; Finite element method ; Flow and heat transfer ; Heat conductivity ; Heat sinks ; Heat transfer ; Heat transfer coefficients ; Local thermal equilibrium ; Mesh generation ; Optimization ; Pore-scale simulation ; Porous materials ; Porous media ; Pressure drop ; Reticulated porous ceramics ; Studies ; Tomography ; X-ray computed tomography</subject><ispartof>Applied thermal engineering, 2021-02, Vol.184, p.116115, Article 116115</ispartof><rights>2020 Elsevier Ltd</rights><rights>Copyright Elsevier BV Feb 5, 2021</rights><lds50>peer_reviewed</lds50><woscitedreferencessubscribed>false</woscitedreferencessubscribed><citedby>FETCH-LOGICAL-c358t-797a5de9b1523828bd19e91eb8d2013fb1b68a343dd23c8a60e52fc774fbeb793</citedby><cites>FETCH-LOGICAL-c358t-797a5de9b1523828bd19e91eb8d2013fb1b68a343dd23c8a60e52fc774fbeb793</cites></display><links><openurl>$$Topenurl_article</openurl><openurlfulltext>$$Topenurlfull_article</openurlfulltext><thumbnail>$$Tsyndetics_thumb_exl</thumbnail><linktohtml>$$Uhttps://dx.doi.org/10.1016/j.applthermaleng.2020.116115$$EHTML$$P50$$Gelsevier$$H</linktohtml><link.rule.ids>314,776,780,3536,27903,27904,45974</link.rule.ids></links><search><creatorcontrib>Wang, Rui</creatorcontrib><creatorcontrib>Hou, AnPing</creatorcontrib><creatorcontrib>Wu, Zhiyong</creatorcontrib><title>Tomography-based investigation of flow and heat transfer inside reticulated porous ceramics</title><title>Applied thermal engineering</title><description>•The border affected region is only 1–2 times of the mean cell size.•Local thermal equilibrium, which lasts for 7–10 s, has been found in this study.•The local convective heat transfer coefficient is constant along the flow direction.•The instantaneous volumetric heat transfer coefficient monotonously increases with time.
This study investigates the flow and heat transfer within reticulated porous ceramics, with the aim of enhancing the understanding of phenomena occurring at the pore scale in order to extract useful information for the optimisation of heat sinks or other reticulated porous devices in engineering applications. In this study, X-ray computed tomography is used to reconstruct the reticulated porous ceramic. From the voxel mesh, the real geometry of the foam sample can be obtained, and an unstructured mesh is generated using ICEM. Then, a fully coupled heat transfer model is established. Based on this model, the transient conjugate heat transfer between the airstream and the porous matrix is solved using FLUENT software. The numerical results show that the pressure drop vs. the superficial velocity follows the Darcy–Forchheimer equation, and the border-affected region is only 1–2 times the mean cell size. Moreover, a local thermal equilibrium lasting for 7–10 s is found in the transient coupled flow and heat transfer process in this study. Additionally, the local convective heat transfer coefficient, which mainly depends on the velocity, is constant along the flow direction, and the instantaneous volumetric heat transfer coefficient increases monotonically with time. The obtained results are important theoretical supplements for understanding the flow and heat transfer in porous materials, and are crucial for enhancing the heat transfer in applications of reticulated porous ceramic materials.</description><subject>Ceramics</subject><subject>Computed tomography</subject><subject>Convective heat transfer</subject><subject>Finite element method</subject><subject>Flow and heat transfer</subject><subject>Heat conductivity</subject><subject>Heat sinks</subject><subject>Heat transfer</subject><subject>Heat transfer coefficients</subject><subject>Local thermal equilibrium</subject><subject>Mesh generation</subject><subject>Optimization</subject><subject>Pore-scale simulation</subject><subject>Porous materials</subject><subject>Porous media</subject><subject>Pressure drop</subject><subject>Reticulated porous ceramics</subject><subject>Studies</subject><subject>Tomography</subject><subject>X-ray computed tomography</subject><issn>1359-4311</issn><issn>1873-5606</issn><fulltext>true</fulltext><rsrctype>article</rsrctype><creationdate>2021</creationdate><recordtype>article</recordtype><recordid>eNqNkE1LxDAQhoMouK7-h4Jeu-aj6Qd4kcVVYcHLevIQ0mS6m9I2NUlX9t8bqRdvnmZg3vedmQehO4JXBJP8vl3JcezCAVwvOxj2K4ppHJGcEH6GFqQsWMpznJ_HnvEqzRghl-jK-xZjQssiW6CPne3t3snxcEpr6UEnZjiCD2Yvg7FDYpuk6exXIgedHECGJDg5-AZc1HmjIXEQjJo6GaJ1tM5OPlHgZG-Uv0YXjew83PzWJXrfPO3WL-n27fl1_bhNFeNlSIuqkFxDVRNOWUnLWpMKKgJ1qSkmrKlJnZeSZUxrylQpcwycNqoosqaGuqjYEt3OuaOzn1M8XrR2ckNcKSjHLMs5K3hUPcwq5az3DhoxOtNLdxIEix-cohV_cYofnGLGGe2b2Q7xk6MBJ7wyMCjQxoEKQlvzv6BvoBKIjg</recordid><startdate>20210205</startdate><enddate>20210205</enddate><creator>Wang, Rui</creator><creator>Hou, AnPing</creator><creator>Wu, Zhiyong</creator><general>Elsevier Ltd</general><general>Elsevier BV</general><scope>AAYXX</scope><scope>CITATION</scope><scope>7TB</scope><scope>8FD</scope><scope>FR3</scope><scope>KR7</scope></search><sort><creationdate>20210205</creationdate><title>Tomography-based investigation of flow and heat transfer inside reticulated porous ceramics</title><author>Wang, Rui ; Hou, AnPing ; Wu, Zhiyong</author></sort><facets><frbrtype>5</frbrtype><frbrgroupid>cdi_FETCH-LOGICAL-c358t-797a5de9b1523828bd19e91eb8d2013fb1b68a343dd23c8a60e52fc774fbeb793</frbrgroupid><rsrctype>articles</rsrctype><prefilter>articles</prefilter><language>eng</language><creationdate>2021</creationdate><topic>Ceramics</topic><topic>Computed tomography</topic><topic>Convective heat transfer</topic><topic>Finite element method</topic><topic>Flow and heat transfer</topic><topic>Heat conductivity</topic><topic>Heat sinks</topic><topic>Heat transfer</topic><topic>Heat transfer coefficients</topic><topic>Local thermal equilibrium</topic><topic>Mesh generation</topic><topic>Optimization</topic><topic>Pore-scale simulation</topic><topic>Porous materials</topic><topic>Porous media</topic><topic>Pressure drop</topic><topic>Reticulated porous ceramics</topic><topic>Studies</topic><topic>Tomography</topic><topic>X-ray computed tomography</topic><toplevel>peer_reviewed</toplevel><toplevel>online_resources</toplevel><creatorcontrib>Wang, Rui</creatorcontrib><creatorcontrib>Hou, AnPing</creatorcontrib><creatorcontrib>Wu, Zhiyong</creatorcontrib><collection>CrossRef</collection><collection>Mechanical & Transportation Engineering Abstracts</collection><collection>Technology Research Database</collection><collection>Engineering Research Database</collection><collection>Civil Engineering Abstracts</collection><jtitle>Applied thermal engineering</jtitle></facets><delivery><delcategory>Remote Search Resource</delcategory><fulltext>fulltext</fulltext></delivery><addata><au>Wang, Rui</au><au>Hou, AnPing</au><au>Wu, Zhiyong</au><format>journal</format><genre>article</genre><ristype>JOUR</ristype><atitle>Tomography-based investigation of flow and heat transfer inside reticulated porous ceramics</atitle><jtitle>Applied thermal engineering</jtitle><date>2021-02-05</date><risdate>2021</risdate><volume>184</volume><spage>116115</spage><pages>116115-</pages><artnum>116115</artnum><issn>1359-4311</issn><eissn>1873-5606</eissn><abstract>•The border affected region is only 1–2 times of the mean cell size.•Local thermal equilibrium, which lasts for 7–10 s, has been found in this study.•The local convective heat transfer coefficient is constant along the flow direction.•The instantaneous volumetric heat transfer coefficient monotonously increases with time.
This study investigates the flow and heat transfer within reticulated porous ceramics, with the aim of enhancing the understanding of phenomena occurring at the pore scale in order to extract useful information for the optimisation of heat sinks or other reticulated porous devices in engineering applications. In this study, X-ray computed tomography is used to reconstruct the reticulated porous ceramic. From the voxel mesh, the real geometry of the foam sample can be obtained, and an unstructured mesh is generated using ICEM. Then, a fully coupled heat transfer model is established. Based on this model, the transient conjugate heat transfer between the airstream and the porous matrix is solved using FLUENT software. The numerical results show that the pressure drop vs. the superficial velocity follows the Darcy–Forchheimer equation, and the border-affected region is only 1–2 times the mean cell size. Moreover, a local thermal equilibrium lasting for 7–10 s is found in the transient coupled flow and heat transfer process in this study. Additionally, the local convective heat transfer coefficient, which mainly depends on the velocity, is constant along the flow direction, and the instantaneous volumetric heat transfer coefficient increases monotonically with time. The obtained results are important theoretical supplements for understanding the flow and heat transfer in porous materials, and are crucial for enhancing the heat transfer in applications of reticulated porous ceramic materials.</abstract><cop>Oxford</cop><pub>Elsevier Ltd</pub><doi>10.1016/j.applthermaleng.2020.116115</doi></addata></record> |
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subjects | Ceramics Computed tomography Convective heat transfer Finite element method Flow and heat transfer Heat conductivity Heat sinks Heat transfer Heat transfer coefficients Local thermal equilibrium Mesh generation Optimization Pore-scale simulation Porous materials Porous media Pressure drop Reticulated porous ceramics Studies Tomography X-ray computed tomography |
title | Tomography-based investigation of flow and heat transfer inside reticulated porous ceramics |
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