EFFECT OF MODULE INCLINATION ANGLE ON AIR GAP MEMBRANE DISTILLATION
Name
IHTC15-9351 Effect of Module Inclination Angle on Air Gap Membrane Distillation, Warsinger, MIT, 3_12_14 Final.pdf
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739.81 KB
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Author(s) • •
Warsinger, David Elan Martin
Swaminathan, Jaichander
Lienhard, John H
Date Issued
August 2014
Journal
Proceedings of the 15th International Heat Transfer Conference (IHTC-15)
Citation
Warsinger, David E. M., Jaichander Swaminathan, and John H. Lienhard V. "EFFECT OF MODULE INCLINATION ANGLE ON AIR GAP MEMBRANE DISTILLATION." 15th International Heat Transfer Conference (IHTC-15) (August 2014).
Version
Author's final manuscript
Abstract
Air gap membrane distillation (AGMD) experiments were performed with varied temperature and varied module inclination angles to characterize the effect of module angle on permeate production and thermal performance. While AGMD is potentially one of the most energy efficient membrane distillation configurations, transport resistances in the air gap typically dominate the thermal performance, resulting in degraded permeate production. Tilting the module away from vertical offers the opportunity to manipulate the condensate layer and its associated thermal resistance. In this study, we report experiments on varying module tilt angle performed with a flat plate AGMD module under fully characterized heat and mass transfer conditions. Numerical modeling is also performed to better understand the experimental results. The tests indicated that the AGMD system behaves as a “permeate gap”, or flooded membrane distillation system for declined and extremely inclined positions. A key finding relevant to all AGMD systems is that at highly negative tilt angles (more than 30 degrees), condensate may fall onto the membrane causing thermal bridging and increased permeate production. Near vertical and positive tilt angles (<15 degrees from vertical) show no significant effect of module tilt on performance, in line with model predictions.
MIT Department
Massachusetts Institute of Technology. Abdul Latif Jameel World Water & Food Security Lab
Massachusetts Institute of Technology. Department of Mechanical Engineering
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http://www.ihtc-15.org/program.shtml