[{"command":"settings","settings":{"pluralDelimiter":"\u0003","suppressDeprecationErrors":true,"user":{"uid":0,"permissionsHash":"d9587e6f410d2e7f476e3da6cb10a457c78ab82347f962bf83d9020620f901dd"}},"merge":true},{"command":"add_css","data":[{"rel":"stylesheet","media":"all","href":"\/modules\/contrib\/addtocal\/addtocal.css?t2408i"},{"rel":"stylesheet","media":"all","href":"\/themes\/custom\/cest2025\/css\/components\/node.css?t2408i"}]},{"command":"add_js","selector":"body","data":[{"src":"\/core\/assets\/vendor\/jquery\/jquery.min.js?v=3.7.1"},{"src":"\/core\/assets\/vendor\/once\/once.min.js?v=1.0.1"},{"src":"\/core\/misc\/drupalSettingsLoader.js?v=10.5.1"},{"src":"\/core\/misc\/drupal.js?v=10.5.1"},{"src":"\/core\/misc\/drupal.init.js?v=10.5.1"},{"src":"\/modules\/contrib\/addtocal\/addtocal.js?v=10.5.1"},{"src":"\/modules\/contrib\/addtocal\/addtocal-download.js?v=10.5.1"}]},{"command":"openDialog","selector":"#drupal-modal","settings":null,"data":"\n\u003Carticle class=\u0022node node--type-presentation node--promoted node--view-mode-modal\u0022\u003E\n      \u003Cdiv\u003ESession 32 - Water treatment\u003C\/div\u003E\n  \n      \u003Cb\u003E\u003Cspan\u003EAdvancing Membrane Distillation: Multi-Channel Designs for Enhanced Energy Efficiency and Performance\u003C\/span\u003E\n\u003C\/b\u003E\n  \n      \u003Cdiv\u003E\u003Cb\u003ECEST ID: cest2025_00206\u003C\/b\u003E\u003C\/div\u003E\n  \n        \u003Cdiv class=\u0022mb-3\u0022\u003E\n      \u003Cb\u003ERoom Aegle B | Sat 6 Sep 2025 | 12:35 - 12:40 pm\u003C\/b\u003E\n    \u003C\/div\u003E\n  \n          \n    \n  \n      \u003Cdiv class=\u0022mt-10\u0022\u003E\n            \u003Cdiv class=\u0022clearfix text-formatted field field--name-presentation-body field--type-text-long field--label-hidden field__item\u0022\u003EMembrane Distillation (MD) is a thermally driven desalination process with high rejection rates for non-volatile contaminants. However, traditional single-channel (SC) modules are limited by severe temperature polarization, reducing energy efficiency and overall productivity. This study explores two novel MD module configurations\u2014Multiple Feed Channels (MFC) and Multiple Permeate Channels (MPC)\u2014designed to improve mass and heat transfer, ultimately enhancing system performance and reducing energy consumption. Experiments were conducted using PTFE and PVDF membranes with and without spacers across a feed temperature range of 30\u00b0C to 70\u00b0C. The MFC and MPC modules demonstrated significant improvements over SC modules, achieving flux enhancements of up to 86% and reducing specific energy consumption (SEC) by up to 63%. Computational fluid dynamics (CFD) simulations validated these findings, revealing improved temperature distribution, reduced polarization effects, and optimized hydrodynamics. These findings highlight the potential of multi-channel MD designs for scalable and energy-efficient desalination and wastewater treatment applications, particularly when coupled with low-grade heat sources.\u003C\/div\u003E\n      \u003C\/div\u003E\n  \n  \u003Cdiv class=\u0022mt-5 mb-5\u0022\u003E\n          \u003Cspan\u003E\n          \u003Cb\u003EPresenter:\u003C\/b\u003E\n                      \u003Cp\u003E\n            Dr Jehad Kharraz\n            \u003C\/p\u003E\n                  \u003C\/span\u003E\n      \u003C\/div\u003E\n\n  \u003Cdiv class=\u0022mb-5\u0022\u003E\n          \u003Cdiv class=\u0022field__label\u0022\u003E\n        Authors\n      \u003C\/div\u003E\n              \u003Cp\u003E\n          Jehad Kharraz\n        \u003C\/p\u003E\n              \u003Cp\u003E\n          Shadi Hasan\n        \u003C\/p\u003E\n            \u003C\/div\u003E\n\n\u003C\/article\u003E\n","dialogOptions":{"width":"700","position":{"my":"right top","at":"right top"},"closeOnEscape":true,"dialogClass":"presentation-dialog","modal":true,"title":"","classes":{"ui-dialog":"presentation-dialog"}}}]