Improving the mass transfer rate and energy efficiency of solar still by enhancing the inner air circulation
Guilong Peng, Zhenwei Xu, Jiajun Ji, Senshan Sun, Nuo Yang

TL;DR
This paper investigates how enhancing inner air circulation in solar stills improves heat and mass transfer, significantly boosting energy efficiency up to 94.5% theoretically and demonstrating practical viability.
Contribution
It introduces a theoretical and experimental analysis showing that improved inner air circulation markedly enhances solar still performance and energy efficiency.
Findings
Inner air circulation significantly increases performance.
Theoretical energy efficiency reaches up to 94.5%.
Experimental efficiencies are close to theoretical predictions.
Abstract
Solar still is an eco-friendly and convenient desalination system that can provide fresh water for remote areas and emergencies. The energy efficiency and productivity of conventional solar still are unsatisfying and need improvement, which requires a deep understanding of the heat and mass transfer process in solar still. In this work, the effect of the inner air circulation on the system's heat and mass transfer performance and energy efficiency are studied theoretically and experimentally. The theoretical results reveal that a weak acceleration of the air circulation inside the SS will significantly increase its performance, due to the improved mass transfer process. By enhancing the inner air circulation, the evaporation and condensation in the solar still can reach up to the limit, and the theoretical energy efficiency reaches up to 87%, 91.5%, and 94.5%, for the input power…
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Taxonomy
TopicsSolar-Powered Water Purification Methods · Solar Thermal and Photovoltaic Systems · Membrane Separation Technologies
