Have a personal or library account? Click to login
Forced Convection Heat Dissipation from Pin Fin Heat Sinks Modified by Rings and Circular Perforation Cover

Forced Convection Heat Dissipation from Pin Fin Heat Sinks Modified by Rings and Circular Perforation

Open Access
|Mar 2025

References

  1. Yuan J, Qu Y, Deng N, Du L, Hu W, Zhang X, et al. Three-dimensional numerical simulation of heat transfer enhancement of electronic devices by single crystal diamond rhombus-shaped pin fin microchannel heat sink. Diam Relat Mater. 2024;143(February):110887.
  2. Ahmed HE, Salman BH, Kherbeet AS, Ahmed MI. Optimization of thermal design of heat sinks: A review. Int J Heat Mass Transf. 2018;118:129–53.
  3. Kumar S, Kumar A, Darshan Kothiyal A, Singh Bisht M. A review of flow and heat transfer behaviour of nanofluids in micro channel heat sinks. Therm Sci Eng Prog. 2018;8(June):477–93.
  4. Chingulpitak S, Wongwises S. A review of the effect of flow directions and behaviors on the thermal performance of conventional heat sinks. Int J Heat Mass Transf. 2015;81:10–8.
  5. Wang Q, Tao J, Cui Z, Zhang T, Chen G. Passive enhanced heat transfer, hotspot management and temperature uniformity enhancement of electronic devices by micro heat sinks: A review. Int J Heat Fluid Flow. 2024;107(December 2023):109368.
  6. Castillo E, Santos A, Gonzalez A. Numerical study of the use of shear-thinning nanofluids in a microchannel heat sink with different pin densities and including vortex generator. Case Stud Therm Eng. 2024;57(March):104328.
  7. Ho CJ, Pan J, Yang TF, Rashidi S, Yan WM. Experimental study on thermal performance of water/nano-phase change emulsion through a mini- and micro-channel stacked double-layer heat sink. Int J Heat Mass Transf. 2023;217(September).
  8. Cheng J, Tang D, Li X, Tang Z. Multi-objective optimization of a combined heat sink with triangular protrusion and corrugated surface impinged by a nanofluid slit-confined jet. Int J Heat Mass Transf. 2024;218(September 2023):124769.
  9. Ho CJ, Peng JK, Yang TF, Rashidi S, Yan WM. Comparison of cooling performance of nanofluid flows in mini/micro-channel stacked double-layer heat sink and single-layer micro-channel heat sink. Int J Therm Sci. 2023;191(May 2022).
  10. Panja SK, Das B, Mahesh V. Numerical study of parabolic trough solar collector’s thermo-hydraulic performance using CuO and Al2O3 nanofluids. Appl Therm Eng. 2024;248(PB):123179.
  11. Gaur SK, Sahoo RR, Sarkar J. Numerical investigation on assessing the influence of diverse-shaped hybrid nanofluids on thermal performance of triple tube heat exchanger. Powder Technol. 2024;439(January):119690.
  12. Tian MW, Rostami S, Aghakhani S, Goldanlou AS, Qi C. A techno-economic investigation of 2D and 3D configurations of fins and their effects on heat sink efficiency of MHD hybrid nanofluid with slip and non-slip flow. Int J Mech Sci. 2021;189(July 2020):105975.
  13. Ghaneifar M, Arasteh H, Mashayekhi R, Rahbari A. Thermohydraulic analysis of hybrid nanofluid in a multilayered copper foam heat sink employing local thermal non-equilibrium condition : Optimization of layers thickness. Appl Therm Eng. 2020;181(June):115961.
  14. Tang Z, Yin C, Xiang Y, Yu P, Cheng J. Multi-objective optimization of a hybrid nanofluid jet impinging on a microchannel heat sink with semi-airfoil ribs based on field synergy principle. Int J Heat Mass Transf. 2024;225(November 2023):125431.
  15. Alnaqi AA, Alsarraf J, Al-Rashed AAAA, Afrand M. Thermal-hydraulic analysis and irreversibility of the MWCNTs-SiO2/EG-H2O non-Newtonian hybrid nanofluids inside a zigzag micro-channels heat sink. Int Commun Heat Mass Transf. 2021;122(February):105158.
  16. Chen J, Jiang J, Ma A, Song D. Research progress of phase change materials ( PCMs ) embedded with metal foam ( a review ). Procedia Mater Sci. 2014;4:389–94.
  17. Cui W, Si T, Li X, Li X, Lu L, Ma T, et al. Heat transfer enhancement of phase change materials embedded with metal foam for thermal energy storage: A review. Renew Sustain Energy Rev. 2022;169(September):112912.
  18. Heo JH, Rohini AK, Kim SM. Thermal design limits for flow boiling of R-134a in large mini/micro-channel heat sinks with wall temperature deviation restriction. Int J Multiph Flow. 2024;175(January):104783.
  19. Rehman T, Woo Park C. Optimising heat sink performance with porous media–PCM integration: An experimental investigation. Appl Therm Eng. 2024;242(January):122506.
  20. Sahel D, Bellahcene L, Yousfi A, Subasi A. Numerical investigation and optimization of a heat sink having hemispherical pin fins. Int Commun Heat Mass Transf. 2021;122(February):105133.
  21. Souida S, Sahel D, Ameur H, Yousfi A. Numerical simulation of heat transfer behaviors in conical pin fins heat sinks. Acta Mech Slovaca. 2022;26(3):32–41.
  22. Vilarrubí M, Regany D, Camarasa J, Ibañez M, Rosell JI, Barrau J. Numerical evaluation of doubly clamped self-adaptive fins acting as vortex generators inside micro heat sinks (MHS). Int J Heat Mass Transf. 2024;220(November 2023).
  23. Al-Asadi MT, Al-damook A, Wilson MCT. Assessment of vortex generator shapes and pin fin perforations for enhancing water-based heat sink performance. Int Commun Heat Mass Transf. 2018;91(December 2017):1–10.
  24. Al-Sallami W, Al-Damook A, Thompson HM. A numerical investigation of the thermal-hydraulic characteristics of perforated plate fin heat sinks. Int J Therm Sci. 2017;121:266–77.
  25. Abdollahi SA, Basem A, Alizadeh A, Jasim DJ, Ahmed M, Sultan AJ, et al. Combining artificial intelligence and computational fluid dynamics for optimal design of laterally perforated finned heat sinks. Results Eng. 2024;21(November 2023):102002.
  26. Huang CH, Huang YR. An optimum design problem in estimating the shape of perforated pins and splitters in a plate-pin-fin heat sink. Int J Therm Sci. 2021;170(September 2020):107096.
  27. Bencherif B, Sahel D, Benzeguir R, Ameur H. Performance analysis of central processing unit Heat sinks fitted with perforation technique and splitter inserts. ASME J Heat Mass Transf. 2023;145(1).
  28. Alam MW, Bhattacharyya S, Souayeh B, Dey K, Hammami F, Rahimi-Gorji M, et al. CPU heat sink cooling by triangular shape micro-pin-fin: Numerical study. Int Commun Heat Mass Transf. 2020;112.
  29. Hajialibabaei M, Saghir MZ, Dincer I, Bicer Y. Optimization of heat dissipation in novel design wavy channel heat sinks for better performance. Energy. 2024;297(March):131155.
  30. Bezaatpour M, Goharkhah M. Three dimensional simulation of hydrodynamic and heat transfer behavior of magnetite nanofluid flow in circular and rectangular channel heat sinks filled with porous media. Powder Technol. 2019;344:68–78.
  31. Chin SB, Foo JJ, Lai YL, Yong TKK. Forced convective heat transfer enhancement with perforated pin fins. Heat Mass Transf. 2013;49(10):1447–58.
  32. Sajedi R, Osanloo B, Talati F, Taghilou M. Splitter plate application on the circular and square pin fin heat sinks. Microelectron Reliab. 2016;62:91–101.
  33. Abdelmohimen MAH, Hussien MA, Algarni S, Karali MA, Ahamed Saleel C, Ahmed GMS, et al. Numerical investigation of thermal performance enhancement of pin fin heat sink using wings with different angles. Ain Shams Eng J. 2024;15(3):102584.
  34. Zohora FT, Haque MR, Haque MM. Numerical investigation of the hydrothermal performance of novel pin-fin heat sinks with hyperbolic, wavy, and crinkle geometries and various perforations. Int J Therm Sci. 2023;194(March).
  35. Haque MR, Hridi TJ, Haque MM. CFD studies on thermal performance augmentation of heat sink using perforated twisted, and grooved pin fins. Int J Therm Sci. 2022;182(August).
  36. Meganathan S, Arunkumar R, Ponshanmugakumar A. Numerical analysis of passive heat sink for different shapes. Mater Today Proc. 2020;46(1):3749–55.
  37. Haque MR, Redu RR, Rafi MAAA, Haque MM, Rahman MZ. Numerical investigation of heat transfer performance for rectangular, elliptical, and airfoil shaped pin fin heatsinks through the novel combination of perforation and bulge inserts. Int Commun Heat Mass Transf. 2022;138.
  38. Introduction To Comsol Multiphysics. Users Guid Multiphysics Model with Finite Elem Methods. 2006;1–26.
  39. Interface P, User B. Comsol Multiphysics. Interface. 2012.
  40. Sahel D. Thermal performance assessment of a tubular heat exchanger fitted with flower baffles. J Thermophys Heat Transf. 2021;35(4):726–34.
  41. Bencherif B, Sahel D, Ameur H, Benzeguir R. Investigation of the hydrothermal enhancement of grooved pin fins heat sinks. Int J Ambient Energy. 2022;43(1):8505–15.
  42. Anli EC, Teş AA, Bİlİr Ş. Derivation of Dimensionless Governing Equations for Axisymmetric Incompressible Turbulent Flow Heat Transfer Based on Standard k- ∈ Model Standart k- ∈ Modeli Temelinde Eksenel Simetrik Sıkıştırılamaz Türbülanslı Akış Isı Transferi i çin Boyutsuz Ana Denk. Afyon Kocatepe Üniversitesi Fen ve Mühendislik Bilim Derg. 2020;20:1096–111.
  43. Ate A, Bilir Ş. Developing Turbulent Flow in Pipes and Analysis of Entrance Region. Acad Platf J Eng Sci. 2021;9–2:332–53.
  44. Ali A, Ozdemir M, Canli E. Effects of pin fin height , spacing and orientation to natural convection heat transfer for inline pin fin and plate heat sinks by experimental investigation. Int J Heat Mass Transf. 2021;177:121527.
  45. Hakan A, Nacak H, Canli E. Effects of trapezoidal and twisted trapezoidal tapes on turbulent heat transfer in tubes. Appl Therm Eng. 2022;211:118386.
DOI: https://doi.org/10.2478/ama-2025-0014 | Journal eISSN: 2300-5319 | Journal ISSN: 1898-4088
Language: English
Page range: 117 - 125
Submitted on: Jun 15, 2024
Accepted on: Sep 2, 2024
Published on: Mar 31, 2025
Published by: Bialystok University of Technology
In partnership with: Paradigm Publishing Services
Publication frequency: 4 issues per year

© 2025 Karima Alem, Djamel Sahel, Warda Boudaoud, Redouane Benzeguir, published by Bialystok University of Technology
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 License.