Advances in seawater membrane distillation (SWMD) towards stand-alone zero liquid discharge (ZLD) desalination
Author:
Julian Helen1, Nurgirisia Novesa1, Sutrisna Putu Doddy2, Wenten I. Gede13ORCID
Affiliation:
1. Chemical Engineering Department , Institut Teknologi Bandung (ITB) , Jalan Ganesha 10 , Bandung 40132 , Indonesia 2. Department of Chemical Engineering , Universitas Surabaya , Kalirungkut-Surabaya , Indonesia 3. Research Center for Nanosciences and Nanotechnology, Institut Teknologi Bandung , Jalan Ganesha 10 , Bandung 40132 , Indonesia
Abstract
Abstract
Seawater membrane distillation (SWMD) is a promising separation technology due to its ability to operate as a stand-alone desalination unit operation. This paper reviews approaches to improve laboratory-to-pilot-scale MD performance, which comprise operational strategies, module design, and specifically tailored membranes. A detailed comparison of SWMD and sea water reverse osmosis is presented to further analyze the critical shortcomings of SWMD. The unique features of SWMD, namely the ability to operate with extremely high salt rejection and at extreme feed concentration, highlight the SWMD potential to be operated under zero liquid discharge (ZLD) conditions, which results in the production of high-purity water and simultaneous salt recovery, as well as the elimination of the brine disposal cost. However, technical challenges, such as thermal energy requirements, inefficient heat transfer and integration, low water recovery factors, and lack of studies on real-case valuable-salt recovery, are impeding the commercialization of ZLD SWMD. This review highlights the possibility of applying selected strategies to push forward ZLD SWMD commercialization. Suggestions are projected to include intermittent removal of valuable salts, in-depth study on the robustness of novel membranes, module and configuration, utilization of a low-cost heat exchanger, and capital cost reduction in a renewable-energy-integrated SWMD plant.
Publisher
Walter de Gruyter GmbH
Subject
General Chemical Engineering
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