Mechanical Engineering Department, College of Engineering, Taif University, P.O. Box 11099, Taif, 21944, Saudi Arabia.
Mechanical Engineering Department, Faculty of Engineering, Kafrelsheikh University, Kafrelsheikh, 33516, Egypt.
Environ Sci Pollut Res Int. 2022 Apr;29(19):28115-28126. doi: 10.1007/s11356-021-18295-4. Epub 2022 Jan 5.
The problem of potable water shortage all over the world made the scientists seek for solutions to overcome this problem. Solar distiller is one of the introduced solutions, but it demerited by the low freshwater output. In this proposed paper, a design modification includes the use of a convex dish absorber instead of the flat absorber liner. The modified solar distiller is nominated by dish solar distiller. The base of dish solar distiller was circular. In addition, a cotton wick was used as a wetting material for facilitating the evaporation process inside the distiller. Besides, the effect of different water heights in the clearance around the dish dome was investigated for 1, 3, 5, 7, 9, and 12 cm. Finally, the space under the dish absorber is filled with a phase change material of paraffin wax mixed with aluminum oxide nanoparticles. Experimental results revealed that the best dish height that provided the highest freshwater productivity was 9 cm, where the average daily yields of dish solar distiller (at 9 cm) and conventional distillers were reported as 4500 and 3000 mL/m.day, respectively. Then, the productivity of dish solar distiller was improved by around 50% over that of the conventional distiller. In addition, when using the phase change material, the average daily distillate of dish solar distiller was improved by approximately 95% compared to that of the conventional solar still, where the distillate of conventional still and dish solar distiller with phase change material at 9 cm water depth was 3580 and 6980 mL/m.day, respectively. Besides, the maximum thermal efficiency of dish solar distiller was obtained when using phase change material at 9 cm water depth, where it was 62.4% compared to 30% for the conventional distiller.
全世界饮用水短缺的问题促使科学家们寻求解决方案来克服这一问题。太阳能蒸馏器是一种已被提出的解决方案,但它的淡水产量低。在本论文中,对设计进行了修改,包括使用凸面碟式吸收器代替平板吸收器衬里。改进后的太阳能蒸馏器被命名为碟式太阳能蒸馏器。碟式太阳能蒸馏器的基座为圆形。此外,还使用棉芯作为润湿材料,以促进蒸馏器内部的蒸发过程。此外,研究了碟形穹顶周围间隙中不同水位对产水率的影响,间隙中的水位分别为 1、3、5、7、9 和 12 厘米。最后,在碟式吸收器下方的空间中填充了石蜡和氧化铝纳米颗粒的相变材料。实验结果表明,提供最高淡水生产率的最佳碟形高度为 9 厘米,碟式太阳能蒸馏器(在 9 厘米处)和传统蒸馏器的日平均产水量分别为 4500 和 3000 毫升/米/天。然后,碟式太阳能蒸馏器的生产率提高了约 50%,超过了传统蒸馏器。此外,当使用相变材料时,碟式太阳能蒸馏器的日平均产水量比传统太阳能蒸馏器提高了约 95%,传统太阳能蒸馏器和碟式太阳能蒸馏器(在 9 厘米水深处)的产水量分别为 3580 和 6980 毫升/米/天。此外,在 9 厘米水深处使用相变材料时,碟式太阳能蒸馏器的最大热效率最高,为 62.4%,而传统蒸馏器的热效率仅为 30%。