Theoretical Analysis of a Mathematical Relation between Driving Pressures in Membrane-Based Desalting Processes

Osmotic and hydraulic pressures are both indispensable for operating membrane-based desalting processes, such as forward osmosis (FO), pressure-retarded osmosis (PRO), and reverse osmosis (RO). However, a clear relation between these driving pressures has not thus far been identified; hence, the eff...

Full description

Bibliographic Details
Main Authors: Sung Ho Chae, Joon Ha Kim
Format: Article
Language:English
Published: MDPI AG 2021-03-01
Series:Membranes
Subjects:
Online Access:https://www.mdpi.com/2077-0375/11/3/220
id doaj-12d1970e5a4e42d89b09da791fa105f1
record_format Article
spelling doaj-12d1970e5a4e42d89b09da791fa105f12021-03-20T00:08:10ZengMDPI AGMembranes2077-03752021-03-011122022010.3390/membranes11030220Theoretical Analysis of a Mathematical Relation between Driving Pressures in Membrane-Based Desalting ProcessesSung Ho Chae0Joon Ha Kim1School of Earth Sciences and Environmental Engineering, Gwangju Institute of Science and Technology (GIST), Gwangju 61005, KoreaSchool of Earth Sciences and Environmental Engineering, Gwangju Institute of Science and Technology (GIST), Gwangju 61005, KoreaOsmotic and hydraulic pressures are both indispensable for operating membrane-based desalting processes, such as forward osmosis (FO), pressure-retarded osmosis (PRO), and reverse osmosis (RO). However, a clear relation between these driving pressures has not thus far been identified; hence, the effect of change in driving pressures on systems has not yet been sufficiently analyzed. In this context, this study formulates an actual mathematical relation between the driving pressures of membrane-based desalting processes by taking into consideration the presence of energy loss in each driving pressure. To do so, this study defines the pseudo-driving pressures representing the water transport direction of a system and the similarity coefficients that quantify the energy conservation rule. Consequently, this study finds three other theoretical constraints that are required to operate membrane-based desalting processes. Furthermore, along with the features of the similarity coefficients, this study diagnoses the commercial advantage of RO over FO/PRO and suggests desirable optimization sequences applicable to each process. Since this study provides researchers with guidelines regarding optimization sequences between membrane parameters and operational parameters for membrane-based desalting processes, it is expected that detailed optimization strategies for the processes could be established.https://www.mdpi.com/2077-0375/11/3/220forward osmosispressure-retarded osmosisreverse osmosisosmotic pressurehydraulic pressure
collection DOAJ
language English
format Article
sources DOAJ
author Sung Ho Chae
Joon Ha Kim
spellingShingle Sung Ho Chae
Joon Ha Kim
Theoretical Analysis of a Mathematical Relation between Driving Pressures in Membrane-Based Desalting Processes
Membranes
forward osmosis
pressure-retarded osmosis
reverse osmosis
osmotic pressure
hydraulic pressure
author_facet Sung Ho Chae
Joon Ha Kim
author_sort Sung Ho Chae
title Theoretical Analysis of a Mathematical Relation between Driving Pressures in Membrane-Based Desalting Processes
title_short Theoretical Analysis of a Mathematical Relation between Driving Pressures in Membrane-Based Desalting Processes
title_full Theoretical Analysis of a Mathematical Relation between Driving Pressures in Membrane-Based Desalting Processes
title_fullStr Theoretical Analysis of a Mathematical Relation between Driving Pressures in Membrane-Based Desalting Processes
title_full_unstemmed Theoretical Analysis of a Mathematical Relation between Driving Pressures in Membrane-Based Desalting Processes
title_sort theoretical analysis of a mathematical relation between driving pressures in membrane-based desalting processes
publisher MDPI AG
series Membranes
issn 2077-0375
publishDate 2021-03-01
description Osmotic and hydraulic pressures are both indispensable for operating membrane-based desalting processes, such as forward osmosis (FO), pressure-retarded osmosis (PRO), and reverse osmosis (RO). However, a clear relation between these driving pressures has not thus far been identified; hence, the effect of change in driving pressures on systems has not yet been sufficiently analyzed. In this context, this study formulates an actual mathematical relation between the driving pressures of membrane-based desalting processes by taking into consideration the presence of energy loss in each driving pressure. To do so, this study defines the pseudo-driving pressures representing the water transport direction of a system and the similarity coefficients that quantify the energy conservation rule. Consequently, this study finds three other theoretical constraints that are required to operate membrane-based desalting processes. Furthermore, along with the features of the similarity coefficients, this study diagnoses the commercial advantage of RO over FO/PRO and suggests desirable optimization sequences applicable to each process. Since this study provides researchers with guidelines regarding optimization sequences between membrane parameters and operational parameters for membrane-based desalting processes, it is expected that detailed optimization strategies for the processes could be established.
topic forward osmosis
pressure-retarded osmosis
reverse osmosis
osmotic pressure
hydraulic pressure
url https://www.mdpi.com/2077-0375/11/3/220
work_keys_str_mv AT sunghochae theoreticalanalysisofamathematicalrelationbetweendrivingpressuresinmembranebaseddesaltingprocesses
AT joonhakim theoreticalanalysisofamathematicalrelationbetweendrivingpressuresinmembranebaseddesaltingprocesses
_version_ 1724212204135251968