Numerical Modelling and Optimization of Thermal Performance of Heat Sink with Uniform Cross - Sectional Area using Shape Optimized Al2O3 - SiC Nanoparticles in Base Fluid

Authors

  • Ammembal Gopalkrishna Pai Department of ECE, Manipal Institute of Technology, Manipal Academy of Higher Education, Manipal, Karnataka, 576104, India
  • Rekha Gopalkrishna Pai Department of Mathematics, Manipal Institute of Technology, Manipal Academy of Higher Education, Manipal, Karnataka, 576104, India
  • Abdullah Abdul Samat Department of Mechanical Engineering, Universiti Malaysia Perlis, Pauh Putra Campus, 02600 Arau, Perlis, Malaysia
  • Akshatha Bekal Laxmish Department of Mathematics, Manipal Institute of Technology, Manipal Academy of Higher education, Manipal, Karnataka, 576104, India

DOI:

https://doi.org/10.37934/arfmts.125.2.145169

Keywords:

SiC - Al2O3, heat sink, shape factor, hybrid nanofluid, Lobatto

Abstract

This study explores the flow characteristics of proposed “Integrated hybrid nanofluid heat sink model (IHNFHSM)” with a novel mixture of Al2O3–SiC nanoparticles of various shape in base fluid. The primary objective is to evaluate the influence of various similarity parameters on the heat transfer performance of the fin structure subjected to convective and insulated tip boundary conditions. A novel combination of Al2O3–SiC hybrid nanoparticles offer a significant potential for improved dissipation of heat in engineering applications. The analysis is carried out using Darcy's model, incorporating temperature-dependent natural convection, and radiation effects. The governing energy equations are non - dimensionalized and solved using three stage Lobatto quadrature numerical technique with suitable boundary conditions. The results provide insight into the effect of similarity parameters on the thermal performance of the system under consideration. Quantitatively, the findings reveal an increase of 23% in the thermal conductivity of base fluid with hybrid nanoparticles. The heat transfer rate of convective fin tip was enhanced by an average of 17.13% at   = m2 = 1 compared to an insulated fin tip. An optimal thermal performance of the model in terms of heat transfer rate was observed by an enhancement of 100% in   and m2 values from 10 to 20. Additionally, dimensionless fin temperature at  = 1 enhanced by 12.16% for the lamina – lamina shape combination of nanoparticles over lamina – spherical, clearly showing its dominance in the thermal performance over the rest of the combinations.

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Author Biographies

Ammembal Gopalkrishna Pai, Department of ECE, Manipal Institute of Technology, Manipal Academy of Higher Education, Manipal, Karnataka, 576104, India

gopalkrishna.pai@manipal.edu

Rekha Gopalkrishna Pai, Department of Mathematics, Manipal Institute of Technology, Manipal Academy of Higher Education, Manipal, Karnataka, 576104, India

pai.rekha@manipal.edu

Abdullah Abdul Samat, Department of Mechanical Engineering, Universiti Malaysia Perlis, Pauh Putra Campus, 02600 Arau, Perlis, Malaysia

abdullahabdul@unimap.edu.my

Akshatha Bekal Laxmish, Department of Mathematics, Manipal Institute of Technology, Manipal Academy of Higher education, Manipal, Karnataka, 576104, India

akshathanayak3001@gmail.com

Published

2024-12-20

How to Cite

Pai, . A. G. ., Pai, R. G. ., Abdul Samat, A. ., & Laxmish, A. B. . (2024). Numerical Modelling and Optimization of Thermal Performance of Heat Sink with Uniform Cross - Sectional Area using Shape Optimized Al2O3 - SiC Nanoparticles in Base Fluid. Journal of Advanced Research in Fluid Mechanics and Thermal Sciences, 125(2), 145–169. https://doi.org/10.37934/arfmts.125.2.145169

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