A recent mathematical technique of homotopy perturbation method (HPM) for solving nonlinear differential equations has been applied in this paper for the analysis of steady-state heat transfer in an annular fin with temperature-dependent thermal conductivity and with the variation of thermogeometric fin parameters. Excellent benchmark agreement indicates that this method is a very simple but powerful technique and practical for solving nonlinear heat transfer equations and does not require large memory space that arises out of discretization of equations in numerical computations, particularly for multidimensional problems. Three conditions of heat transfer, namely, convection, radiation, and combined convection and radiation, are considered. Dimensionless parameters pertinent to design optimization are identified and their effects on fin heat transfer and efficiency are studied. Results indicate that the heat dissipation under combined mode from the fin surface is a convection-dominant phenomenon. However, it is also found that, at relatively high base temperature, radiation heat transfer becomes comparable to pure convection. It is worth noting that, for pure radiation condition, the dimensionless parameter of aspect ratio (AR) of a fin is a more desirable controlling parameter compared to other parameters in augmenting heat transfer rate without much compromise on fin efficiency.
Skip Nav Destination
Article navigation
Research-Article
Homotopy Perturbation Method for the Analysis of Heat Transfer in an Annular Fin With Temperature-Dependent Thermal Conductivity
Rishi Roy,
Rishi Roy
Mechanical Engineering Department,
Jadavpur University,
Kolkata 700032, India
e-mail: rishi.arkm@gmail.com
Jadavpur University,
Kolkata 700032, India
e-mail: rishi.arkm@gmail.com
Search for other works by this author on:
Sujit Ghosal
Sujit Ghosal
Mechanical Engineering Department,
Jadavpur University,
Kolkata 700032, India
e-mail: sujit.ghosal@gmail.com
Jadavpur University,
Kolkata 700032, India
e-mail: sujit.ghosal@gmail.com
Search for other works by this author on:
Rishi Roy
Mechanical Engineering Department,
Jadavpur University,
Kolkata 700032, India
e-mail: rishi.arkm@gmail.com
Jadavpur University,
Kolkata 700032, India
e-mail: rishi.arkm@gmail.com
Sujit Ghosal
Mechanical Engineering Department,
Jadavpur University,
Kolkata 700032, India
e-mail: sujit.ghosal@gmail.com
Jadavpur University,
Kolkata 700032, India
e-mail: sujit.ghosal@gmail.com
Contributed by the Heat Transfer Division of ASME for publication in the JOURNAL OF HEAT TRANSFER. Manuscript received March 24, 2015; final manuscript received September 21, 2016; published online October 26, 2016. Assoc. Editor: Alan McGaughey.
J. Heat Transfer. Feb 2017, 139(2): 022001 (8 pages)
Published Online: October 26, 2016
Article history
Received:
March 24, 2015
Revised:
September 21, 2016
Citation
Roy, R., and Ghosal, S. (October 26, 2016). "Homotopy Perturbation Method for the Analysis of Heat Transfer in an Annular Fin With Temperature-Dependent Thermal Conductivity." ASME. J. Heat Transfer. February 2017; 139(2): 022001. https://doi.org/10.1115/1.4034811
Download citation file:
Get Email Alerts
Cited By
The Effect of Biot Number on a Generalized Heat Conduction Solution
J. Heat Mass Transfer
Numerical Investigation of Conjugate Natural Convection From a Vertical Cylindrical Open Cavity
J. Heat Mass Transfer (August 2023)
Heat Transfer and Pressure Loss of Turbulent Flow in a Wedge-Shaped Cooling Channel With Different Types of Triply Periodic Minimal Surfaces
J. Heat Mass Transfer (September 2023)
Related Articles
Modeling the Effect of Infrared Opacifiers on Coupled Conduction-Radiation Heat Transfer in Expanded Polystyrene
J. Heat Transfer (November,2018)
Conjugate Thermal Analysis of Air-Cooled Discrete Flush-Mounted Heat Sources in a Horizontal Channel
J. Electron. Packag (December,2011)
Heat Transfer Regimes in Microstructures
J. Heat Transfer (August,1992)
A Simplified Model for Effective Thermal Conductivity of Highly Porous Ceramic Fiber Insulation
J. Thermal Sci. Eng. Appl (December,2015)
Related Chapters
Radiation
Thermal Management of Microelectronic Equipment
Radiation
Thermal Management of Microelectronic Equipment, Second Edition
Research on HPM Coupling into the Nose of Anti-Radiation Missile with Air Breakdown
International Conference on Measurement and Control Engineering 2nd (ICMCE 2011)