A review of innovative materials and techniques in solar stills: A focus on heat localization and thin film evaporation

IF 7.9 Q1 ENGINEERING, MULTIDISCIPLINARY Results in Engineering Pub Date : 2025-03-01 Epub Date: 2025-02-13 DOI:10.1016/j.rineng.2025.104348
A.S. Abdullah , Abanob Joseph , Swellam W. Sharshir , Elbager M.A. Edreis , Mohammed El Hadi Attia , Mohamed Elashmawy
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Abstract

Freshwater scarcity is becoming a worldwide problem, more so in remote locations. Solar stills are a promising technology for desalination, leveraging solar energy; however, their productivity requires significant enhancement. This review focuses on recent efforts to improve the efficiency of solar stills based on thin-film evaporation and heat localization, which benefit from combinations of advanced materials, structural modifications, and energy management. Various configurations including single slope, flat, double slope, pyramid, tubular, and hemispherical solar stills are discussed. It is found that the application of nanocomposites, wicks, and nanoparticles increases solar radiation absorption and heat retention, significantly increasing water productivity and thermal efficiency. Also, wicks, nanoparticles, solar tracking, and advanced basin designs are highlighted as promising ways to maximize evaporations and minimize thermal losses. Modified designs increased water productivity by over 300 % and yields by 368.5 %. Advanced setups using materials such as CuO, TiO₂, and graphene attained a thermal efficiency of 86.78 % and improved solar absorption and productivity by 161.5 %. Innovations such as rotating wicks and drums increased thin-film evaporation by 400 %, while phase change materials provided continuous evaporation, increasing freshwater production by more than 240 %. The production costs were also reduced by up to 66.2 %, yielding a minimum freshwater cost of 0.0042 $/L. A bibliometric analysis, using VOSviewer, of trends in thin-film evaporation and heat localization techniques for scaling up SS technologies for sustainable freshwater globally.
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太阳能蒸馏器中创新材料和技术的综述:重点是热定位和薄膜蒸发
淡水短缺正在成为一个世界性的问题,在偏远地区更是如此。利用太阳能,太阳能蒸馏器是一种很有前途的海水淡化技术;然而,它们的生产率需要显著提高。本文综述了近年来在薄膜蒸发和热定位的基础上提高太阳能蒸馏器效率的研究进展,这些研究得益于先进材料、结构改造和能源管理的结合。各种配置,包括单斜面,平面,双斜面,金字塔,管状和半球形太阳能蒸馏器进行了讨论。研究发现,纳米复合材料、芯和纳米颗粒的应用增加了太阳辐射的吸收和蓄热,显著提高了水生产力和热效率。此外,灯芯、纳米颗粒、太阳能跟踪和先进的水槽设计也被认为是最大化蒸发和最小化热损失的有前途的方法。改进的设计使水生产力提高了300%以上,产量提高了368.5%。采用CuO、TiO 2和石墨烯等材料的先进装置达到了86.78%的热效率,并将太阳能吸收率和生产率提高了161.5%。诸如旋转芯和桶之类的创新使薄膜蒸发增加了400%,而相变材料提供了连续蒸发,使淡水产量增加了240%以上。生产成本也降低了66.2%,最低淡水成本为0.0042美元/升。使用VOSviewer对薄膜蒸发和热定位技术的趋势进行了文献计量分析,以扩大全球可持续淡水的SS技术。
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来源期刊
Results in Engineering
Results in Engineering Engineering-Engineering (all)
CiteScore
5.80
自引率
34.00%
发文量
441
审稿时长
47 days
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