Techno-economic evaluation of an element-scale forward osmosis-reverse osmosis hybrid process for seawater desalination

Authors
Im, Sung JuJeong, SanghyunJeong, SeongpilJang, Am
Issue Date
2020-02-15
Publisher
ELSEVIER
Citation
DESALINATION, v.476
Abstract
The forward osmosis (FO)-reverse osmosis (RO) hybrid process is gaining attention in the desalination market because it can purify diluted seawater and the RO unit functions at low pressure conditions, resulting in a reduced total operational cost. However, FO element configuration affects the process performance, minimum flow rate, inlet pressure, product capacity, and draw solution (DS) dilution rate. Moreover, economic evaluation of the FO-RO hybrid process in the Middle East, which is the largest seawater desalination market, is required to obtain representative results. Realistic economic evaluation can be achieved with a real-performance database (DB) and specific assumptions. In this study, a techno-economic evaluation of the FO-RO hybrid process was conducted using real element-scale FO DB and simulation DB, and the results were compared with those of a stand-alone two stage RO process. Spiral wound FO (SWFO) and plate and frame (PFFO)-RO hybrid processes were more economical by 8.84% and 3.73%, respectively, when compared to two-stage RO. In the Middle East, the total cost of SWFO-RO was 45.1 M$ lesser than that of PFFO-RO due to its higher water flux and DS dilution rate. Therefore, the FO-RO hybrid process has high economic potential in the Middle East and elsewhere.
Keywords
WASTE-WATER REUSE; LIFE-CYCLE; OSMOTIC DILUTION; MEMBRANE; SYSTEM; COST; OPTIMIZATION; FEASIBILITY; PERFORMANCE; CHALLENGES; WASTE-WATER REUSE; LIFE-CYCLE; OSMOTIC DILUTION; MEMBRANE; SYSTEM; COST; OPTIMIZATION; FEASIBILITY; PERFORMANCE; CHALLENGES; Economic evaluation; FO-RO hybrid system; Plate and frame FO element; Spiral wound FO element; Two-stage RO process
ISSN
0011-9164
URI
https://pubs.kist.re.kr/handle/201004/118953
DOI
10.1016/j.desal.2019.114240
Appears in Collections:
KIST Article > 2020
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