Department of Sustainable and Renewable Energy Engineering, University of Sharjah, 27272, Sharjah, United Arab Emirates.
Chemical Engineering Department, Faculty of Engineering, Minia University, Egypt; Department of Engineering, College of Applied Sciences, Suhar, 311, Oman.
J Environ Manage. 2021 Jan 1;277:111415. doi: 10.1016/j.jenvman.2020.111415. Epub 2020 Sep 30.
Remote areas and poor communities are occasionally deprived of access to freshwater. It is, therefore, critical to providing a cheap and efficient desalination system that encourages the development of those communities and benefiting society at large. Solar stills are an affordable, direct method of water desalination, but its productivity is the critical challenge hindering its application. To ease this, research has focused on the role of nanofluids to improve heat transfer. Other works have focused on improving the design in consort with utilizing the nanofluids. This review reports and discusses the substantial role of nanofluids to enhance the productivity and energy utilization efficiency of the solar stills. Specifically, the mechanism of energy transfer between the nanoparticles and the base fluid. This includes both plasmonic and thermal effects. It is evident that nanofluid utilization in small fraction enhanced the thermal conductivity compared to base fluid alone. Alumina was found to be the most suitable nanoparticle used as nanofluid inside the solar stills due to its availability and lower cost. Still, other competitors such as carbon nanostructures need to be investigated as it provides higher enhancement of thermal conductivity. Also, several aspects of energy utilization enhancement have been discussed, including innovative application techniques. The challenges of such integrated systems are addressed as well.
偏远地区和贫困社区偶尔会被剥夺淡水供应。因此,提供一种廉价高效的海水淡化系统至关重要,这有助于促进这些社区的发展,并使整个社会受益。太阳能蒸馏器是一种经济实惠、直接的海水淡化方法,但它的生产力是阻碍其应用的关键挑战。为了缓解这一问题,研究集中在纳米流体的作用上,以提高传热效率。其他研究则侧重于改进设计并结合利用纳米流体。本综述报告并讨论了纳米流体在提高太阳能蒸馏器的产量和能源利用效率方面的重要作用。具体来说,讨论了纳米颗粒与基液之间的能量传递机制,包括等离子体和热效应。显然,与单独使用基液相比,纳米流体在小比例下的使用增强了热导率。由于氧化铝的可用性和低成本,发现氧化铝是太阳能蒸馏器中最适合用作纳米流体的纳米颗粒。然而,需要研究其他竞争对手,如碳纳米结构,因为它可以提高热导率的增强效果。此外,还讨论了包括创新应用技术在内的能源利用增强的几个方面。还解决了这种集成系统的挑战。