Shoeibi Shahin, Ali Agha Mirjalily Seyed, Kargarsharifabad Hadi, Panchal Hitesh, Dhivagar Ramasamy
Energy and Sustainable Development Research Center, Semnan Branch, Islamic Azad University, Semnan, Iran.
Department of Mechanical Engineering, Yazd Branch, Islamic Azad University, Yazd, Iran.
Environ Sci Pollut Res Int. 2022 Sep;29(43):65353-65369. doi: 10.1007/s11356-022-20437-1. Epub 2022 Apr 29.
Solar still, as one of the important devices for generating water using renewable energy, has been widely used in arid as well as coastal areas where access to fresh water is limited. This paper uses CFD simulation to compare double-slope solar still, hemispherical solar still, and tubular solar still using nanofluid film cooling. AlO-water nanofluids with a concentration of 0.1% are used due to facilitate sunlight penetration into the absorber plate inside the solar desalination. It is assumed the flow is steady, laminar, and air is an ideal and incompressible gas. The simple algorithm is considered to calculate the relationship between pressure and velocity and to separate the transfer and pressure interpolation terms from the appropriate upstream designs. Also, the economic, exergoeconomic, and CO mitigation parameters of various solar stills were investigated. The study revealed that the water productivity of double-slope solar desalination using nanofluids film cooling is improved by about 4.8% compared with tubular solar desalination with nanofluid film cooling. Also, the lowest CPL of 0.0362 $/L was obtained in the double-slope solar desalination using nanofluid film cooling. The net CO mitigation of 14.08 tons, 13.72 tons, and 13.44 tons was obtained for double-slope solar desalination, hemispherical solar desalination, and tubular solar desalination, respectively.
太阳能蒸馏器作为利用可再生能源产水的重要装置之一,已在淡水获取受限的干旱地区和沿海地区广泛应用。本文采用计算流体力学(CFD)模拟,对使用纳米流体薄膜冷却的双坡太阳能蒸馏器、半球形太阳能蒸馏器和管式太阳能蒸馏器进行比较。由于有助于阳光穿透太阳能海水淡化装置内部的吸收板,因此使用浓度为0.1%的AlO-水纳米流体。假定流动为稳态、层流,且空气为理想不可压缩气体。采用简单算法计算压力与速度之间的关系,并从适当的上游设计中分离传输项和压力插值项。此外,还研究了各种太阳能蒸馏器的经济、(火用)经济和二氧化碳减排参数。研究表明,与使用纳米流体薄膜冷却的管式太阳能海水淡化相比,使用纳米流体薄膜冷却的双坡太阳能海水淡化的产水率提高了约4.8%。此外,使用纳米流体薄膜冷却的双坡太阳能海水淡化获得了最低的单位产水成本,为0.0362美元/升。双坡太阳能蒸馏、半球形太阳能蒸馏和管式太阳能蒸馏的净二氧化碳减排量分别为14.08吨、13.72吨和13.44吨。