Predictive performance and costing model for Membrane Capacitive Deionization (MCDI) at operational scale

被引:18
作者
Bales, Clare [1 ]
Wang, Yuan [1 ,2 ]
Lian, Boyue [1 ]
He, Zhizhao [1 ,2 ]
Fletcher, John [3 ]
Waite, David [1 ,2 ]
机构
[1] Univ New South Wales, Water Res Ctr, Sch Civil & Environm Engn, Sydney, NSW 2052, Australia
[2] UNSW Ctr Transformat Environm Technol, Yixing 214206, Jiangsu, Peoples R China
[3] Univ New South Wales, Sch Telecommun & Elect Engn, Sydney, NSW 2052, Australia
关键词
Performance modelling; Response Surface Model; Levelized cost of water; Water treatment; Desalination; WASTE-WATER; ELECTRODIALYSIS REVERSAL; CARBON ELECTRODES; ENERGY RECOVERY; DESALINATION; OPTIMIZATION; DESIGN; SELECTIVITY; REMOVAL; OSMOSIS;
D O I
10.1016/j.desal.2023.116595
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
A model that can be used to predict the performance of Membrane Capacitive Deionization (MCDI), including current efficiency, flowrate of the product water, water recovery and energy consumption is established in this work. The model was developed using a Response Surface Model approach that considers the influence of influent conductivity, flowrate passing by the electrodes and applied current on MCDI system performance rather than relying on electrochemical principles or the description of the intrinsic properties of the carbon electrodes and ion exchange membranes. In the scenarios tested here, flowrate contributes the most towards MCDI performance. The appropriateness of using NaCl for an MCDI performance model is confirmed. The model can be applied to extensive applications with two examples detailed here including a small town potable application of 100 m3/day with influent water of 2000 mu S/cm and an industrial wastewater application of 1000 m3/day with influent water of 4000 mu S/cm. A costing model is developed and applied to the two scenarios with the optimised levelized cost of water (LCOW) found to be US$0.74/m3 for the small town and US$1.08/m3 to US$1.41/m3 for the industrial wastewater (product water quality dependent). By maximising the production rate, the LCOW can be minimised. The model presented here can be applied to a wide range of applications or used as a framework for efficient performance modelling of other MCDI configurations.
引用
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页数:12
相关论文
共 49 条
[1]   Energy consumption and water production cost of conventional and renewable-energy-powered desalination processes [J].
Al-Karaghouli, Ali ;
Kazmerski, Lawrence L. .
RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2013, 24 :343-356
[2]   Design and experimental performance of brackish water reverse osmosis desalination unit powered by 2 kW photovoltaic system [J].
Alghoul, M. A. ;
Poovanaesvaran, P. ;
Mohammed, M. H. ;
Fadhil, A. M. ;
Muftah, A. F. ;
Alkilani, M. M. ;
Sopian, K. .
RENEWABLE ENERGY, 2016, 93 :101-114
[3]  
Alsarayreh A., 2017, INT J THERM ENV ENG, V14, P83, DOI [10.5383/ijtee.14.01.010, DOI 10.5383/IJTEE.14.01.010]
[4]   Capacitive deionization as an electrochemical means of saving energy and delivering clean water. Comparison to present desalination practices: Will it compete? [J].
Anderson, Marc A. ;
Cudero, Ana L. ;
Palma, Jesus .
ELECTROCHIMICA ACTA, 2010, 55 (12) :3845-3856
[5]  
[Anonymous], 2011, Australian drinking water guidelines
[6]   Site specific assessment of the viability of membrane Capacitive Deionization (mCDI) in desalination of brackish groundwaters for selected crop watering [J].
Bales, Clare ;
Lian, Boyue ;
Fletcher, John ;
Wang, Yuan ;
Waite, T. David .
DESALINATION, 2021, 502
[7]   Low cost desalination of brackish groundwaters by Capacitive Deionization (CDI) - Implications for irrigated agriculture [J].
Bales, Clare ;
Kovalsky, Peter ;
Fletcher, John ;
Waite, T. David .
DESALINATION, 2019, 453 :37-53
[8]   Optimization and design of a low-cost, village-scale, photovoltaic-powered, electrodialysis reversal desalination system for rural India [J].
Bian, David W. ;
Watson, Sterling M. ;
Wright, Natasha C. ;
Shah, Sahil R. ;
Buonassisi, Tonio ;
Ramanujan, Devarajan ;
Peters, Ian M. ;
Winter, Amos G., V .
DESALINATION, 2019, 452 :265-278
[9]   Attractive forces in microporous carbon electrodes for capacitive deionization [J].
Biesheuvel, P. M. ;
Porada, S. ;
Levi, M. ;
Bazant, M. Z. .
JOURNAL OF SOLID STATE ELECTROCHEMISTRY, 2014, 18 (05) :1365-1376
[10]   Theory of membrane capacitive deionization including the effect of the electrode pore space [J].
Biesheuvel, P. M. ;
Zhao, R. ;
Porada, S. ;
van der Wal, A. .
JOURNAL OF COLLOID AND INTERFACE SCIENCE, 2011, 360 (01) :239-248