Journal of Shanghai Jiaotong University >
Simulation and Analysis of Contactless Solar Evaporation
Received date: 2021-07-14
Revised date: 2021-09-02
Online published: 2022-07-28
Zero-liquid discharge is an efficient pathway for high concentration brine and wastewater treatment. Contactless solar evaporation is a new configuration proposed in recent years towards this target, which has the advantages of solar energy utilization, simple structure, passive operation, and anti-fouling. Considering that contactless solar evaporation lacks an effective predictive model to guide the optimization in real scenarios, a steady-state thermal resistance network model is developed for the first time and further analyses are conducted. According to the results, two main heat sources of the water, radiative heat transfer and air gap heat transfer, contribute 54.2% and 45.8% to the total heat flow and both have a significant impact on the evaporation performance. The larger air gap thickness has a negative effect on both of the two heat transfer processes. The evaporation rate with an air gap thickness of 10 mm is only 70% of that with an air gap thickness of 4 mm. Additionally, decreasing vapor diffusion resistance is an efficient way to increase the evaporation rate. The evaporation rate triples when the vapor diffusion coefficient increases from 5×10-6 m2/s to 2.5×10-5 m2/s.
YU Jie, XU Zhenyuan . Simulation and Analysis of Contactless Solar Evaporation[J]. Journal of Shanghai Jiaotong University, 2023 , 57(1) : 66 -75 . DOI: 10.16183/j.cnki.jsjtu.2021.255
[1] | TONG T Z, ELIMELECH M. The global rise of zero liquid discharge for wastewater management: Drivers, technologies, and future directions[J]. Environmental Science & Technology, 2016, 50(13): 6846-6855. |
[2] | YAQUB M, LEE W. Zero-liquid discharge (ZLD) technology for resource recovery from wastewater: A review[J]. Science of the Total Environment, 2019, 681: 551-563. |
[3] | ELIMELECH M, PHILLIP W A. The future of seawater desalination: Energy, technology, and the environment[J]. Science, 2011, 333(6043): 712-717. |
[4] | LIN S S, ZHAO H Y, ZHU L P, et al. Seawater desalination technology and engineering in China: A review[J]. Desalination, 2021, 498: 114728. |
[5] | QASIM M, BADRELZAMAN M, DARWISH N N, et al. Reverse osmosis desalination: A state-of-the-art review[J]. Desalination, 2019, 459: 59-104. |
[6] | KIM J, PARK K, YANG D R, et al. A comprehensive review of energy consumption of seawater reverse osmosis desalination plants[J]. Applied Energy, 2019, 254: 113652. |
[7] | PINTO F S, MARQUES R C. Desalination projects economic feasibility: A standardization of cost determinants[J]. Renewable and Sustainable Energy Reviews, 2017, 78: 904-915. |
[8] | GUDE V G. Desalination and sustainability—An appraisal and current perspective[J]. Water Research, 2016, 89: 87-106. |
[9] | ALVAREZ P J J, CHAN C K, ELIMELECH M, et al. Emerging opportunities for nanotechnology to enhance water security[J]. Nature Nanotechnology, 2018, 13(8): 634-641. |
[10] | 熊日华, 王世昌. 海水淡化中的替代型能源[J]. 化工进展, 2003, 22(11): 1139-1142. |
[10] | XIONG Rihua, WANG Shichang. Alternative energies in seawater desalination[J]. Chemical Industry and Engineering Progress, 2003, 22(11): 1139-1142. |
[11] | TAO P, NI G, SONG C Y, et al. Solar-driven interfacial evaporation[J]. Nature Energy, 2018, 3(12): 1031-1041. |
[12] | LI C N, GOSWAMI Y, STEFANAKOS E. Solar assisted sea water desalination: A review[J]. Renewable and Sustainable Energy Reviews, 2013, 19: 136-163. |
[13] | SHI Y, ZHANG C L, LI R Y, et al. Solar evaporator with controlled salt precipitation for zero liquid discharge desalination[J]. Environmental Science & Technology, 2018, 52(20): 11822-11830. |
[14] | GHASEMI H, NI G, MARCONNET A M, et al. Solar steam generation by heat localization[J]. Nature Communications, 2014, 5: 4449. |
[15] | LI T T, FANG Q L, XI X F, et al. Ultra-robust carbon fibers for multi-media purification via solar-evaporation[J]. Journal of Materials Chemistry A, 2019, 7(2): 586-593. |
[16] | STORER D P, PHELPS J L, WU X, et al. Graphene and rice-straw-fiber-based 3D photothermal aerogels for highly efficient solar evaporation[J]. ACS Applied Materials & Interfaces, 2020, 12(13): 15279-15287. |
[17] | WANG Z H, LIU Y M, TAO P, et al. Bio-inspired evaporation through plasmonic film of nanoparticles at the air-water interface[J]. Small, 2014, 10(16): 3234-3239. |
[18] | ZHOU L, TAN Y L, JI D X, et al. Self-assembly of highly efficient, broadband plasmonic absorbers for solar steam generation[J]. Science Advances, 2016, 2(4): e1501227. |
[19] | ZHOU L, TAN Y L, WANG J Y, et al. 3D self-assembly of aluminium nanoparticles for plasmon-enhanced solar desalination[J]. Nature Photonics, 2016, 10(6): 393-398. |
[20] | SHI Y, LI R Y, JIN Y, et al. A 3D photothermal structure toward improved energy efficiency in solar steam generation[J]. Joule, 2018, 2(6): 1171-1186. |
[21] | JIA C, LI Y J, YANG Z, et al. Rich mesostructures derived from natural woods for solar steam generation[J]. Joule, 2017, 1(3): 588-599. |
[22] | LIU H, CHEN C J, CHEN G, et al. High-performance solar steam device with layered channels: Artificial tree with a reversed design[J]. Advanced Energy Materials, 2018, 8(8): 1701616. |
[23] | LI X Q, LI J L, LU J Y, et al. Enhancement of interfacial solar vapor generation by environmental energy[J]. Joule, 2018, 2(7): 1331-1338. |
[24] | XU W C, HU X Z, ZHUANG S D, et al. Flexible and salt resistant Janus absorbers by electrospinning for stable and efficient solar desalination[J]. Advanced Energy Materials, 2018, 8(14): 1702884. |
[25] | XIA Y, HOU Q F, JUBAER H, et al. Spatially isolating salt crystallisation from water evaporation for continuous solar steam generation and salt harvesting[J]. Energy & Environmental Science, 2019, 12(6): 1840-1847. |
[26] | FINNERTY C, ZHANG L, SEDLAK D L, et al. Synthetic graphene oxide leaf for solar desalination with zero liquid discharge[J]. Environmental Science & Technology, 2017, 51(20): 11701-11709. |
[27] | NI G, ZANDAVI S H, JAVID S M, et al. A salt-rejecting floating solar still for low-cost desalination[J]. Energy & Environmental Science, 2018, 11(6): 1510-1519. |
[28] | KUANG Y D, CHEN C J, HE S M, et al. A high-performance self-regenerating solar evaporator for continuous water desalination[J]. Advanced Materials, 2019, 31(23): 1900498. |
[29] | ZHU L, SUN L, ZHANG H, et al. A solution to break the salt barrier for high-rate sustainable solar desalination[J]. Energy & Environmental Science, 2021, 14(4): 2451-2459. |
[30] | XU N, LI J L, WANG Y, et al. A water lily-inspired hierarchical design for stable and efficient solar evaporation of high-salinity brine[J]. Science Advances, 2019, 5(7): eaaw7013. |
[31] | WU L, DONG Z C, CAI Z R, et al. Highly efficient three-dimensional solar evaporator for high salinity desalination by localized crystallization[J]. Nature Communications, 2020, 11: 521. |
[32] | COOPER T A, ZANDAVI S H, NI G W, et al. Contactless steam generation and superheating under one sun illumination[J]. Nature Communications, 2018, 9: 5086. |
[33] | MENON A K, HAECHLER I, KAUR S, et al. Enhanced solar evaporation using a photo-thermal umbrella for wastewater management[J]. Nature Sustainability, 2020, 3(2): 144-151. |
[34] | HALE G M, QUERRY M R. Optical constants of water in the 200-nm to 200-μm wavelength region[J]. Applied Optics, 1973, 12(3): 555-563. |
[35] | ZHAO F, GUO Y H, ZHOU X Y, et al. Materials for solar-powered water evaporation[J]. Nature Reviews Materials, 2020, 5(5): 388-401. |
[36] | CENGEL Y A, KLEIN S, BECKMAN W. Heat transfer: A practical approach[M]. Boston: WBC McGraw-Hill, 1998. |
/
〈 |
|
〉 |