Energy recovery through reverse electrodialysis: Harnessing the salinity gradient from the flushing of human urine

被引:16
作者
Volpin, Federico [1 ,6 ]
Woo, Yun Chul [2 ]
Kim, Hanki [3 ]
Freguia, Stefano [4 ]
Jeong, Namjo [3 ]
Choi, June-Seok [2 ]
Cho, Jaeweon [5 ]
Phuntsho, Sherub [1 ]
Shon, Ho Kyong [1 ]
机构
[1] Univ Technol Sydney UTS, Sch Civil & Environm Engn, City Campus, Broadway, NSW 2007, Australia
[2] Korea Inst Civil Engn & Bldg Technol, Dept Land Water & Environm Res, 283 Goyang Daero, Goyang Si 10223, Gyeonggi Do, South Korea
[3] Korea Inst Energy Res, Jeju Global Res Ctr, 200 Haemajihaean Ro, Jeju 63359, South Korea
[4] Univ Melbourne, Dept Chem Engn, Melbourne, Vic 3010, Australia
[5] Ulsan Inst Sci & Technol UNIST, Sch Urban & Environm Engn, UNIST Gil 50, Ulsan 689798, South Korea
[6] City Water Technol, Sydney, NSW 2072, Australia
基金
新加坡国家研究基金会; 澳大利亚研究理事会;
关键词
Human urine; Reverse electrodialysis; Nutrients recovery; Power generation; Oxidation; PRESSURE-RETARDED OSMOSIS; ELECTROCHEMICAL OXIDATION; POWER-GENERATION; WATER; ELECTROOXIDATION; ELECTROLYSIS; PERFORMANCE; EFFICIENCY; REDUCTION; MEMBRANES;
D O I
10.1016/j.watres.2020.116320
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Urine dilution is often performed to avoid clogging or scaling of pipes, which occurs due to urine's Ca2+ and Mg2+ precipitating at the alkaline conditions created by ureolysis. The large salinity gradient between urine and flushing water is, theoretically, a source of potential energy which is currently unexploited. As such, this work explored the use of a compact reverse electrodialysis (RED) system to convert the chem-ical potential energy of urine dilution into electric energy. Urine' composition and ureolysis state as well as solution pumping costs were all taken into account. Despite having almost double its electric conductivity, real hydrolysed urine obtained net energy recoveries E-Net of 0.053-0.039 kWh/m(3), which is similar to energy recovered from real fresh urine. The reduced performances of hydrolysed urine were linked to its higher organic fouling potential and possible volatilisation of NH3 due to its high pH. However, the higher-than-expected performance achieved by fresh urine is possibly due to the fast diffusion of uncharged urea to the freshwater side. Real urine was also tested as a novel electrolyte solution and its performance compared with a conventional K4Fe(CN)(6)/K3Fe(CN)(6) couple. While K4Fe(CN)(6)/K3Fe(CN)(6) outperformed urine in terms of power densities and energy recoveries, net chemical reactions seemed to have occurred in urine when used as an electrolyte solution, leading to TOC, ammonia and urea removal of up to 13%, 6% and 4.4%, respectively. Finally, due to the migration of K+, NH4+ and PO43-, the low concentration solution could be utilised for fertigation. Overall, this process has the potential of providing off-grid urine treatment or energy production at a household or building level. (c) 2020 Elsevier Ltd. All rights reserved.
引用
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页数:11
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