Abstract
This study introduces a variable-order fractional model (VOGL) to assess the performance of four solar still desalination with four different configurations: conventional solar still (CSS), solar still with hybrid nanofluid (SS + HNF), solar still with phase change material (SS + PCM), and a combined system with both enhancements (SS + HNF + PCM). The VOGL model is compared to the classical integer-order model under varying climatic conditions, showing significantly improved prediction accuracy. The methodology involves formulating energy balance equations for the solar still layers, incorporating a variable fractional order. MATLAB-implemented numerical simulations are verified against summer and winter experimental data. The mean absolute percentage error for water and glass temperatures was reduced to 2.254% and 2.509%, respectively, compared to 9.071% and 11.757% in the classical model. Beyond modeling accuracy, the study evaluates the impact of Ag/Fe2O3 nanofluids and PCM on system performance. The SS + HNF + PCM configuration yielded the highest productivity at 1.4871 kg m−2, with energy and exergy efficiencies of 59.15% and 7.58%, respectively. It also achieved the lowest cost per liter ($0.00746/m2) and the highest annual enviroeconomic ($777.88) and exergoenviroeconomic ($77.782) savings. Enhanced systems further demonstrated higher CO2 mitigation and improved sustainability.
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CITATION STYLE
El-Gazar, E. F., Elbar, A. R. A., Zahra, W. K., Mori, S., Mouneer, T. A., & Hawwash, A. A. (2025). Variable-order fractional model for enhancing solar still thermal performance with hybrid nanofluid and phase change material: 6E analysis. Journal of Thermal Analysis and Calorimetry, 150(27), 22871–22894. https://doi.org/10.1007/s10973-025-14992-1
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