Efficiency, productivity and economic analysis of polystyrene foam-insulated conventional and modified double-slope solar still using nanofluids.

IF 5.8 3区 环境科学与生态学 0 ENVIRONMENTAL SCIENCES
Naveenkumar Rasaiah, Rexline Eugine, Ravichandran Manickam
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引用次数: 0

Abstract

This work presents the effect of adding copper oxide (CuO), aluminium oxide (Al2O3) and zinc oxide (ZnO) nanofluids towards distillate yield enhancement in the conventional and modified polystyrene foam-shielded single-basin double-slope solar still (DSSS). Nanoparticles are included to enhance the evaporative and thermal properties. Conventional and modified double-slope solar still of similar features were produced using aluminium sheets and an experimental analysis was performed in sunny days. Solar-activated vacuum fan and external condenser are incorporated in conventional DSSS and termed as modified DSSS. Integrating condenser and solar-actuated vacuum fan in the DSSS significantly reduces the heat loss attained due to convection. Results signify that using ZnO, Al2O3 and CuO nanofluids with 0.1% volume concentration in the traditional DSSS enhances cumulative productivity by 10.34%, 13.79% and 17.24% respectively. In modified double-slope solar still, the cumulative productivity enhances by 13.30%, 20.69% and 25.62% using ZnO, Al2O3 and CuO nanofluids. Using a condenser and vacuum fan without nanofluid in the modified DSSS improves the collective distillate yield by 40% as related to a conventional SS without nanoparticles. Combined effect of condenser with vacuum fan and ZnO, Al2O3 and CuO nanofluid with 0.10% volume concentration in the modified DSSS increases the collective distillate yield by 58.62%, 68.96% and 75.86% respectively compared to a traditional SS without nanofluid. Results signify that the peak energy efficiency of the conventional and modified solar still using ZnO, Al2O3 and CuO nanofluid increases by 12.81%, 17.70% and 23.03%, and 23.27%, 23.24% and 28.37%, respectively. Results also indicate that the peak energy efficiency in modified solar still using ZnO, Al2O3 and CuO nanofluid increases by 47.13%, 47.42% and 52.92% as compared to traditional solar still without nanofluids. Results signify that the maximum exergy efficiency of the conventional solar still using ZnO, Al2O3 and CuO nanofluid increases by 32.82%, 38.22% and 55.21%, respectively. In modified solar still, the maximum exergy efficiency enhances by 35.24%, 39.21% and 57.07% using ZnO, Al2O3 and CuO nanofluids, respectively. Among the various nanofluids, the CuO nanofluid attained the maximum CO2 mitigated of 12.13 tonnes and 16.80 tonnes in both conventional and modified DSS. Among the various nanofluids, the CuO nanofluid attained the maximum carbon credits cost of $363.98 and $504.09 in both conventional and modified DSS.

聚苯乙烯泡沫绝缘常规和改进双斜面太阳能仍用纳米流体的效率、生产率和经济分析。
本文研究了在传统和改性聚苯乙烯泡沫屏蔽单盆双坡太阳能蒸馏器(DSSS)中添加氧化铜(CuO)、氧化铝(Al2O3)和氧化锌(ZnO)纳米流体对馏分收率的影响。纳米颗粒的加入,以提高蒸发和热性能。采用铝板制造了具有相似特性的传统和改进的双斜面太阳能蒸馏器,并在晴天进行了实验分析。太阳能激活真空风扇和外部冷凝器被集成在传统的DSSS中,称为改进的DSSS。在DSSS中集成了冷凝器和太阳能驱动真空风扇,大大减少了由于对流而产生的热损失。结果表明,在传统的DSSS中使用体积浓度为0.1%的ZnO、Al2O3和CuO纳米流体,其累积生产率分别提高了10.34%、13.79%和17.24%。在改进的双斜面太阳能蒸馏器中,ZnO、Al2O3和CuO纳米流体的累积产能分别提高了13.30%、20.69%和25.62%。在改进的DSSS中使用不含纳米流体的冷凝器和真空风扇,与不含纳米流体的传统SS相比,总馏分收率提高了40%。采用真空风机冷凝器与体积浓度为0.10%的ZnO、Al2O3和CuO纳米流体的联合作用,改性DSSS的总馏出物收率比不加纳米流体的传统SS分别提高了58.62%、68.96%和75.86%。结果表明,使用ZnO、Al2O3和CuO纳米流体的常规太阳能和改性太阳能的峰值能量效率分别提高了12.81%、17.70%和23.03%,23.27%、23.24%和28.37%。结果还表明,使用ZnO、Al2O3和CuO纳米流体的改性太阳能蒸馏器的峰值能量效率比不使用纳米流体的传统太阳能蒸馏器分别提高了47.13%、47.42%和52.92%。结果表明,使用ZnO、Al2O3和CuO纳米流体后,常规太阳能电池的最大火用效率分别提高了32.82%、38.22%和55.21%。在改性太阳能蒸馏器中,ZnO、Al2O3和CuO纳米流体分别提高了35.24%、39.21%和57.07%的最大火用效率。在各种纳米流体中,CuO纳米流体在常规DSS和改进DSS中均达到了最大的二氧化碳减排量,分别为12.13吨和16.80吨。在各种纳米流体中,CuO纳米流体在常规DSS和改进DSS中的碳信用成本最高,分别为363.98美元和504.09美元。
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来源期刊
CiteScore
8.70
自引率
17.20%
发文量
6549
审稿时长
3.8 months
期刊介绍: Environmental Science and Pollution Research (ESPR) serves the international community in all areas of Environmental Science and related subjects with emphasis on chemical compounds. This includes: - Terrestrial Biology and Ecology - Aquatic Biology and Ecology - Atmospheric Chemistry - Environmental Microbiology/Biobased Energy Sources - Phytoremediation and Ecosystem Restoration - Environmental Analyses and Monitoring - Assessment of Risks and Interactions of Pollutants in the Environment - Conservation Biology and Sustainable Agriculture - Impact of Chemicals/Pollutants on Human and Animal Health It reports from a broad interdisciplinary outlook.
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