Experimental investigation on the performance of a pyramid solar still for varying water depth, contaminated water temperature, and addition of circular fins

Mayilsamy Yuvaperiyasamy, Natarajan Senthilkumar, Balakrishnan Deepanraj
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Abstract

The experimental investigation was meant to investigate the effect of water depth in the basin, the water temperature at the inlet of solar still, and adding circular fins to the pyramid solar still on freshwater output. The investigation was divided into three sections. The first area of research is to study effect of increasing water depth in the solar still, which ranged from 2 to 6 cm, second section concentrated on varying the inflow water temperature from 30 to 50ºC, and third section investigated the influence of incorporating circular fins into the solar still basin on the water output and quality. The experimental findings showed that basin depth considerably impacts freshwater flow. The highest significant difference, 38%, was recorded by changing the water level in the basin from 2 to 6 cm. Freshwater yielded the most at a depth of 2 cm, totalling 1250.3 mL, followed by 1046 mL at a depth of 3 cm. A water depth of 4 cm produced 999 mL, whereas a water depth of 5 cm made 911 mL. The lowest production occurred at a water depth of 6 cm, producing 732 mL; furthermore, including fins at the bottom increased productivity by 8.2%. Elevating the temperature from 30 to 50ºC of the inlet water led to a water output increase of 15.3% to 22.2%. These findings underscore the profound potential of harnessing solar energy to address global water challenges and pave the way for further advancements in efficient freshwater production
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锥形太阳蒸馏器在不同水深、污染水温和添加圆形翅片条件下性能的实验研究
实验研究了池内水深、太阳蒸馏器入口水温、锥形太阳蒸馏器增设圆形翅片等因素对淡水产量的影响。调查分为三个部分。第一部分研究了增加太阳蒸馏器水深的效果,水深范围为2 ~ 6 cm;第二部分研究了来水温度在30 ~ 50ºC之间的变化;第三部分研究了在太阳蒸馏池中加入圆形翅片对水量和水质的影响。实验结果表明,流域深度对淡水流量影响较大。当流域水位变化2 ~ 6 cm时,差异最大,达到38%。淡水在深度为2cm时产量最大,总计1250.3 mL,其次是深度为3cm时的1046 mL。水深为4cm时产999ml,水深为5cm时产911ml,水深为6cm时最低,产732ml;此外,在底部加入鳍片可使生产率提高8.2%。将进水温度从30℃提高到50℃,出水量增加15.3% ~ 22.2%。这些发现强调了利用太阳能解决全球水资源挑战的巨大潜力,并为进一步提高淡水生产效率铺平了道路
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