Open Access
Issue
E3S Web Conf.
Volume 648, 2025
International Conference on Civil, Environmental and Applied Sciences (ICCEAS 2025)
Article Number 03013
Number of page(s) 11
Section Applied Sciences
DOI https://doi.org/10.1051/e3sconf/202564803013
Published online 08 September 2025
  1. Kumar, A. P. Singh, O. P. Singh, Effect of Channel Designs and its Optimization for Enhanced Thermo-Hydraulic Performance of Solar Air Heater. Journal of Solar Energy Engineering, Transactions of the ASME. 144, (2022). [Google Scholar]
  2. Hedau, S. K. Singal, Thermo-hydraulic performance investigation of double pass solar air heater integrated with PCM-based thermal energy storage. J Energy Storage. 79, (2024). [Google Scholar]
  3. B. Karthikeyan, G. Praveen Kumar, R. Saravanan, Alberto Coronas, Ramadas Narayanan, R. Girimurugan, Solar powered cascade system for sustainable deep- freezing and power generation - exergoeconomic evaluation and multi-objective optimization for tropical regions. Thermal Science and Engineering Progress. 102552 (2024). [Google Scholar]
  4. Aziz, Imran, Irfan Javed, Muhammad Numan Iqbal. Heat Transfer Enhancement of Impinging Jet-Corrugated Solar Air Heaters. Journal of Solar Energy Engineering. 146, 041007-1 (2024). [Google Scholar]
  5. G. K. Pramod, N. Madhwesh, U. C. Arunachala, M. S. Manjunath, Thermohydraulic performance augmentation of triangular duct solar air heater using semi-conical vortex generators: Numerical and experimental study. Heat Transfer. (2024). [Google Scholar]
  6. A. Kumar, A. Layek, Nusselt number and friction factor correlation of solar air heater having winglet type vortex generator over absorber plate. Solar Energy. 205, 334 (2020). [Google Scholar]
  7. R. Fattoum, A. Hidouri, M. E. H. Attia, M. Arıcı, M. A. Abbassi, Performance optimization of solar air heater using inclined ribs. J Therm Anal Calorim. 148, 9013 (2023). [Google Scholar]
  8. R. Girimurugan, P. Selvaraju, P. Jeevanandam, M. Vadivukarassi, S. Subhashini, N. Selvam, S. K. Ahammad, S. Mayakannan, S. K. Vaithilingam, Application of Deep Learning to the Prediction of Solar Irradiance through Missing Data. International Journal of Photoenergy. 2023, (2023). [Google Scholar]
  9. M. K. Sahu, S. Mishra, A. Kumar, Optimization of geometric and flow parameters of solar air heater roughened with artificial roughness by Taguchi method. Archives of Thermodynamics. 44, 3 (2023). [Google Scholar]
  10. D. J. Dezan, A. D. Rocha, W. G. Ferreira, Parametric sensitivity analysis and optimisation of a solar air heater with multiple rows of longitudinal vortex generators. Appl Energy. 263, (2020). [Google Scholar]
  11. S. Singh, S. Suman, S. Mitra, M. Kumar, Optimization of a novel trapezoidal staggered ribs configuration for enhancement of a solar air heater performance using CFD. Environmental Science and Pollution Research. 30, 93582 (2023). [Google Scholar]
  12. N. Sharma, R. Choudhary, Multi-objective Performance Optimization of a Ribbed Solar Air Heater. Energy, Environment, and Sustainability. 77 (2020). [Google Scholar]
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  14. A. O. Alsaiari, H. A. H. Alzahrani, N. Madhukeshwara, B. M. Prasanna, Heat transfer augmentation in a solar air heater with conical roughness elements on the absorber. Case Studies in Thermal Engineering. 36, (2022). [Google Scholar]
  15. V. Singh, V. S. Yadav, V. Trivedi, M. Kumar, N. Kumar, Application of Response Surface Methodology for Analysing and Optimizing the Finned Solar Air Heater. Journal of Thermal Science. 33, 985 (2024). [Google Scholar]

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