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dc.contributor.author Balmaseda, Jorge
dc.contributor.author Torres-Herrera, Ulises
dc.contributor.author Ballesteros-Rivas, María Fernanda
dc.contributor.author Varela-Guerrero, Víctor
dc.date.accessioned 2024-01-24T19:30:00Z
dc.date.available 2024-01-24T19:30:00Z
dc.date.issued 2023-06-05
dc.identifier.issn 1573-1634
dc.identifier.uri http://hdl.handle.net/20.500.11799/139657
dc.description Artículo publicado en la revista transport in porous materials es
dc.description.abstract A way of harvesting water from the air that avoids the discontinuity of the adsorption/ desorption cycles is theoretically analyzed. A rectangular prism-shaped adsorbent bed is immersed in low-humidity air, at an angle to the horizontal and subject to a temperature gradient between two opposite and open faces. The other four faces of the prism remain isolated. Water is adsorbed on the adsorbent colder face, causing a density gradient in the surrounding air, parallel to the surface, that results in a self-sustained continuous air flow. On the opposite face, a self-sustained continuous air flow parallel to the surface also arises, but this time due to a temperature gradient in the air surrounding the hot bed face. In addition, its higher temperature causes the desorption of water from the adsorbent. This overall water exchange produces the enrichment of water content in one of the air streams that is crucial to produce water harvesting. The performance of Al-Fumarate, MOF-303, SAPO- 34 and Zeolite 13X is tested, unveiling the key factors that increase flow rate and water concentration at the enriched phase. It has been found that the diffusive mass transport at the air-solid interphase is the bottleneck of water harvesting in continuous flow conditions. Therefore, if high concentration of water is desired, it is necessary to use porous materials with very high diffusitivities. These findings provide the foundations for the design of continuous water harvesting devices. es
dc.description.sponsorship CONACYT, DGAPA-UNAM es
dc.language.iso eng es
dc.publisher Transport in Porous Media es
dc.rights openAccess es
dc.rights.uri http://creativecommons.org/licenses/by-nc/4.0 es
dc.subject Molecular sieves es
dc.subject Metal– organic framework es
dc.subject zeolites es
dc.subject water harvesting es
dc.subject.classification BIOLOGÍA Y QUÍMICA es
dc.title Water Harvesting by Molecular Sieves Using Self‑sustained Continuous Flow es
dc.type Artículo es
dc.provenance Científica es
dc.road Dorada es
dc.organismo Química es
dc.ambito Nacional es
dc.cve.CenCos 20401 es
dc.relation.vol 149


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  • Título
  • Water Harvesting by Molecular Sieves Using Self‑sustained Continuous Flow
  • Autor
  • Balmaseda, Jorge
  • Torres-Herrera, Ulises
  • Ballesteros-Rivas, María Fernanda
  • Varela-Guerrero, Víctor
  • Fecha de publicación
  • 2023-06-05
  • Editor
  • Transport in Porous Media
  • Tipo de documento
  • Artículo
  • Palabras clave
  • Molecular sieves
  • Metal– organic framework
  • zeolites
  • water harvesting
  • Los documentos depositados en el Repositorio Institucional de la Universidad Autónoma del Estado de México se encuentran a disposición en Acceso Abierto bajo la licencia Creative Commons: Atribución-NoComercial-SinDerivar 4.0 Internacional (CC BY-NC-ND 4.0)

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