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    <name>Article</name>
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          <name>Title</name>
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              <text>A study of the natural convection of water- AA 7075 nanoliquids in low-porosity cylindrical annuli using a local thermal non-equilibrium model</text>
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          <name>Description</name>
          <description>An account of the resource</description>
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              <text>Natural convection in nanoliquid-saturated porous cylindrical annuli due to uniform heat and mass influxes from the solid cylinder and effluxes from the outer hollow cylinder is investigated analytically. The Darcy model and the modified version of the Buongiorno two-phase model are used, and local thermal non-equilibrium between the phases is assumed. A nanoliquid-saturated porous medium made up of glass balls with a dilute concentration of AA7075 alloy nanoparticles well-dispersed in water is considered. Out of three types of annuli considered, shallow annuli provide the best heat transport and tall annuli show the worst performance. The presence of a dilute concentration of nanoparticles significantly enhances the heat transport in the system. Of nine nanoparticle shapes considered, lamina-shaped nanoparticles enhance heat transport the most. Heat transport is enhanced in the case of heat-and-mass-driven convection compared to the case of purely heat-driven convection. The results for a rectangular enclosure are obtained as a particular case of the present study. Two asymptotic routes that take us to the results of thermal equilibrium are shown. The vanishing limit of the concentration Rayleigh number yields the result for a single-phase model. Results for the base-liquid-saturated porous medium form a limiting case of the present study. We conclude that a shallow cylindrical annulus saturated with water-AA7075 lamina-shaped alloy nanoparticles is best suited for heat transfer due to its high effective thermal conductivity in comparison with that of other shaped nanoparticles and a tall rectangular enclosure saturated by water is best suited for heat storage applications.  2021 Author(s).</text>
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          <name>Creator</name>
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              <text>Lakshmi K.M.; Laroze D.; Siddheshwar P.G.</text>
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              <text>Physics of Fluids, Vol-33, No. 3</text>
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              <text>American Institute of Physics Inc.</text>
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              <text>2021-01-01</text>
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              <text>&lt;a href="https://doi.org/10.1063/5.0039302" target="_blank" rel="noreferrer noopener"&gt;https://doi.org/10.1063/5.0039302&lt;/a&gt;
&lt;br /&gt;&lt;br /&gt;&lt;a href="https://www.scopus.com/inward/record.uri?eid=2-s2.0-85103350960&amp;amp;doi=10.1063%2F5.0039302&amp;amp;partnerID=40&amp;amp;md5=ba5104c594299d54835c85032e1ec1a4" target="_blank" rel="noreferrer noopener"&gt;https://www.scopus.com/inward/record.uri?eid=2-s2.0-85103350960&amp;amp;doi=10.1063%2f5.0039302&amp;amp;partnerID=40&amp;amp;md5=ba5104c594299d54835c85032e1ec1a4&lt;/a&gt;</text>
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              <text>ISSN: 10706631; CODEN: PHFLE</text>
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              <text>Online</text>
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              <text>English</text>
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              <text>Lakshmi K.M., Instituto de Alta Investigaci, Sede Esmeralda, Universidad de Tarapac Av. Luis Emilio Recabarren 2477, Iquique, Chile; Laroze D., Instituto de Alta Investigaci, CEDENNA, Universidad de Tarapac Casilla 7D, Arica, Chile; Siddheshwar P.G., CHRIST (Deemed to Be University), Hosur Road, Bengaluru, 560029, India</text>
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