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PMID: 41258234 Published · epublish English Journal Article

Optimization of hybrid solar chimney power plant using Pearson and k-means analysis for green hydrogen and electricity production.

Scientific reports ·Vol. 15 ·No. 1 ·2025-11-19 ·页码 40729

Jemal A, Yahya Z, Drame O, Mahmoud AM, Alhodaib A, Ali V, Khan O, Yadav AK

Abstract

Conventional solar chimney power plants (SCPPs) are hindered by low energy conversion efficiency and lack of integrated approaches for maximizing simultaneous green hydrogen and electricity production, especially when multiple interdependent system parameters interact nonlinearly. The study aims to optimize a novel hybrid SCPP configuration for dual-output, sustainable electricity and green hydrogen, by systematically analysing the influence and interplay of chimney inclination, solar radiation, collector absorptivity, and turbine pressure drop. Using CFD simulations that solve mass, momentum, and energy conservation equations, the research models complex buoyancy-driven flows within conical chimneys while integrating an electrolysis unit for hydrogen generation. Statistical correlation, priority weighting (AHP), and k-means clustering are employed to identify critical parameter dependencies, prioritize operational outcomes, and group optimal performance regimes. The optimal configuration is determined at an 8° chimney inclination, 800 W/m2 solar radiation, collector absorptivity of 0.88, and 95 Pa turbine pressure drop, yielding an airflow velocity of 9.8 m/s, power output of 16.1 kW, and hydrogen generation of 0.62 kg/day. Correlation analysis reveals electricity and hydrogen outputs are maximized primarily by airflow velocity and power output under these synergistic parameter sets. The study establishes an effective operational envelope for SCPPs that achieves both high electricity and green hydrogen yields, outperforming conventional single-output designs. The integrated multi-objective approach and nuanced parameter selection lay a foundation for deploying versatile, cost-effective renewable energy systems tailored for dual-generation, thus advancing SCPP viability for sustainable energy transition.

Keywords
Computational fluid dynamics Conical chimney Energy efficiency Hydrogen generation Solar chimney power plant
作者与单位
共 8 位作者,点击展开单位 / ORCID
Jemal Abdellahi
Faculté des Sciences et Techniques, Département de Physique, Université de Nouakchott, Unité de Recherche "Nouvelles Technologies de l'Energies et Systems Thermofluides nTEST", Nouakchott, Mauritania.
Yahya Zeinebou
Department of Physics, College of Science, Qassim University, 51452, Buraidah, Al-Qassim, Saudi Arabia.
Drame Oumar
Thermo-Hydrodynamic Instabilities Research Group of the Fluid Mechanics and Applications Laboratory (MFA), Department of Physics, Cheikh Anta Diop University of Dakar, Dakar, Senegal.
Mahmoud A M
Faculté des Sciences et Techniques, Département de Physique, Université de Nouakchott, Unité de Recherche "Nouvelles Technologies de l'Energies et Systems Thermofluides nTEST", Nouakchott, Mauritania.
Alhodaib Aiyeshah
Department of Physics, College of Science, Qassim University, 51452, Buraidah, Al-Qassim, Saudi Arabia.
Ali Vakkar
Department of Mechanical and Industrial Engineering, College of Engineering, Majmaah University, 11952, Al-Majmaah, Saudi Arabia. [email protected].
Khan Osama
Department of Mechanical Engineering, Jamia Millia Islamia, New Delhi, 110025, India.
Yadav Ashok Kumar
Department of Mechanical Engineering, Symbiosis Institute of Technology Pune, Symbiosis International (Deemed University), Pune, India. [email protected].
Article Info
Journal
Scientific reports
Abbr.
Sci Rep
ISSN
2045-2322
Published
2025-11-19
电子出版
2025-00-19
页码
40729
Language
English
Country/Region
England
NLM ID
101563288
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