Jul 2026· Archives of Thermodynamics· Vol 47, pp. 99-118· 0 citations· 48 references
Abstract
Solar air heaters are attractive for low-carbon thermal applications, but their performance is constrained by weak convective heat transfer in the near-wall region. In this work, a single-pass rectangular solar air heater duct equipped with spherical turbulators is investigated numerically and then accelerated using machine-learning surrogate models for rapid prediction of thermal–hydraulic responses. Five turbulator arrangements (V-, M-, W-shaped, inclined, and arc-shaped) were evaluated at three discrete spacing levels (pitch ratio P/D = 3, 6, 9) with a constant sphere diameter of 25 mm over Re = 3500–23 500, consistent throughout all the simulations. The computational fluid dynamics model employed a constant heat flux of 1000 W/m² and standard pressure–velocity coupling/discretisation practices, and was validated against established previous work. A leakage-safe machine-learning dataset (675 samples, 36 variables) was constructed from computational fluid dynamics outputs and physics-informed engineered features; models were trained using geometry-grouped cross-validation to ensure generalisation across turbulator arrangements and spacing levels. Among candidate regressors, histogram gradient boosting provided the best Nu surrogate (OOF RMSE = 3.299, R² = 0.9908, MAPE = 2.44%), while ridge regression yielded the most accurate friction factor surrogate (OOF RMSE = 4.70×10⁻⁴, R² = 0.9886, MAPE = 1.12%). The combined computational fluid dynamics and machine-learning framework enables fast, reliable evaluation of solar air heater thermo-hydraulic performance for configuration screening and optimisation within the validated operating envelope.
- Solar air heaters (SAHs) are attractive for low-and moderate-temperature thermal applications, but conventional smooth absorber plates provide limited heat transfer because of the viscous sub-layer near the heated surface. The present work investigates the thermo-hydraulic performance of a rectangular solar air heate...
CH. Bhanusri, K. Meghana· Iconic research and engineer...· 0 citations
Many technical systems rely on efficient temperature regulation. These systems include thermal shields for aircraft, metal forming, microelectronics, solar energy collectors, nuclear cooling units, polymer extrusion, and nuclear power plants. It is common for these technologies to function in environments with very h...
P. Suriyakumar, S. S. Kumar, P. Priyadharshini et al.· International Journal of Mod...· 0 citations
Plate heat exchangers are widely used in compact thermal systems, where heat-transfer enhancement must be balanced against hydraulic losses. This study develops a computational fluid dynamics (CFD) and regression-based surrogate framework for a novel plate heat exchanger (NPHE) under two working-fluid regimes. Three-di...
Ahmad Aboul Khail, A. H. Abdul Hafez· Mathematics· 0 citations
This study presents a thermal-hydraulic assessment of an indirect solar water heating system employing carbon dioxide (CO2) as the heat-transfer fluid in a flat-plate collector. The work compares superheated and supercritical operating regimes under identical geometric, flow, and standardized outdoor conditions. A dist...
Ramgopal Maddali, Wasim Ashraf, Mahendra V. Reddy· Thermal Science and Applicat...· 0 citations
This study develops a transient mathematical model for predicting the outlet air temperature of a modular solar air collector integrating recycled concrete as sensible heat storage. The reference prototype used 18.8 kg of recycled concrete storage, with a volume of 0.01033 m3, density of 1820 kg/m3, and measured therma...
R. Calotă, N. Saca, Alexandru Panait· Sustainability· 0 citations
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