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January 17, 2026Heat Transfer2 citations

Numerical Investigation of the Heat Transfer Dynamics of a Rough Semispherical Extended Surface Using the Keller‐Box and Chebyshev Collocation Methods

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SKS. Lalith KumarHNH. G. NagarajaBGB. J. Gireesha

Key Points

  • The aim is to analyze the impact of roughness, wetness, and heat generation on heat transfer and thermal profiles in semispherical fins.
  • Investigated heat transfer dynamics through natural convection and radiation effects.
  • Nondimensionalized the governing equations and solved them using Keller-box and Chebyshev collocation methods.
  • Tabulated the robustness of the numerical methods and computed fin efficiency.
  • Analyzed the effects of critical dimensionless parameters graphically and quantitatively.
  • The thermal profile of the fin improves with increased thermal generation, surface roughness, and ambient temperature.
  • Heat transfer rate significantly decreases as the critical parameters rise.
  • Wetness, convection, and radiation parameters positively impact the heat transfer rate while degrading the thermal profile.

Abstract

ABSTRACT We consider heat transfer by natural convection with radiation effects on a rough, wet, semispherical fin. The wetness on the fin surface with varying roughness, compounded with the internal heat generation and their influence on the fin's thermal profile and heat transfer rate, is investigated. The governing equation of the model is nondimensionalized, and the resulting nonlinear differential equation is numerically solved by the Keller‐box method and validated using the Chebyshev collocation method subject to quasilinearization. The robustness of these numerical methods is tabulated, and the impact of the critical dimensionless parameters on the thermal profile of the extended surface and the heat transfer rate along it is analyzed graphically and quantitatively. Fin efficiency is also computed, and the influence of the pertinent parameters on it is inferred. The study reveals that the fin's thermal profile is enhanced with a surge in the generation number, temperature‐dependent heat generation parameter, surface roughness, ambient temperature, and exponent of the convective heat transfer, while there is a significant drop in the heat transfer rate with a surge in these parameters. The wetness, convection, and radiation parameters assist the heat transfer rate throughout the fin and degrade its thermal profile.

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Cite This Study

Kumar et al. (2026) studied this question.

synapsesocial.com/papers/696b25f3d2a12237a9349435https://doi.org/10.1002/htj.70179
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