Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Heat Sink Performance Improvement Using Perforated Pin Fins of Various Shapes

View through CrossRef
ABSTRACT This research focuses on heat sinks with perforated pin fins of cylindrical, rectangular, and conical shapes to meet the thermal demands of rapidly evolving electronics. Heat transfer performance of perforated fins (Np = 1–5) under a range of Reynolds numbers (Re = 8547–21,367) was examined by COMSOL Multiphysics and a k‐ε turbulence model. The findings indicate that all perforated fins outperform solid fins, with a hydrothermal performance factor (HTPF) > 1. The rectangular fin shows a good performance when Np = 5, boosting the Nusselt number (Nu) by 27% while reducing the pressure drop (Δ p ) by 46% at Re = 21,367, and attains a maximum HTPF of 1.45. On the other hand, the cylindrical fin performs best at Np = 2, with HTPF = 1.43, yielding an equivalent advantage. The conical fins achieve the maximum heat transfer, raising Nu by 35% at Np = 3, but also increasing Δp by 4.8% compared with the other two shapes. The number of holes varies by the best option for each: rectangular fins require more perforations; cylindrical fins are better with fewer perforations; but conical fins prioritize heat transfer, even if they cause greater flow resistance. These results suggest that proper perforations can not only enhance heat dissipation but also reduce material usage, hence making perforated pin fins a promising solution for cooling microelectronics and heat management in power systems.
Title: Heat Sink Performance Improvement Using Perforated Pin Fins of Various Shapes
Description:
ABSTRACT This research focuses on heat sinks with perforated pin fins of cylindrical, rectangular, and conical shapes to meet the thermal demands of rapidly evolving electronics.
Heat transfer performance of perforated fins (Np = 1–5) under a range of Reynolds numbers (Re = 8547–21,367) was examined by COMSOL Multiphysics and a k‐ε turbulence model.
The findings indicate that all perforated fins outperform solid fins, with a hydrothermal performance factor (HTPF) > 1.
The rectangular fin shows a good performance when Np = 5, boosting the Nusselt number (Nu) by 27% while reducing the pressure drop (Δ p ) by 46% at Re = 21,367, and attains a maximum HTPF of 1.
45.
On the other hand, the cylindrical fin performs best at Np = 2, with HTPF = 1.
43, yielding an equivalent advantage.
The conical fins achieve the maximum heat transfer, raising Nu by 35% at Np = 3, but also increasing Δp by 4.
8% compared with the other two shapes.
The number of holes varies by the best option for each: rectangular fins require more perforations; cylindrical fins are better with fewer perforations; but conical fins prioritize heat transfer, even if they cause greater flow resistance.
These results suggest that proper perforations can not only enhance heat dissipation but also reduce material usage, hence making perforated pin fins a promising solution for cooling microelectronics and heat management in power systems.

Related Results

Magnesium Heat Sink Evaluations
Magnesium Heat Sink Evaluations
<div class="htmlview paragraph">A system has been constructed to estimate heat dissipated from geometrically identical heat sinks and pinfins extruded from magnesium (M1A) an...
Numerical Evaluation of Clearance Requirements Around Obstructions in Finned Heat Sinks
Numerical Evaluation of Clearance Requirements Around Obstructions in Finned Heat Sinks
This study uses CFD to consider the effects of obstructions (bosses) on the fluid flow and heat transfer in finned heat sinks used for cooling electronic components. In particular,...
Understanding multi-fin swimming and maneuvering to develop highly capable swimming robots
Understanding multi-fin swimming and maneuvering to develop highly capable swimming robots
Fish swim underwater with levels of agility and maneuverability that far exceed those of contemporary unmanned underwater vehicles (UUVs). While UUVs primarily rely on rectilinear ...
Thermal–Hydrodynamic Behavior and Design of a Microchannel Pin-Fin Hybrid Heat Sink
Thermal–Hydrodynamic Behavior and Design of a Microchannel Pin-Fin Hybrid Heat Sink
A three-dimensional convective heat transfer model of a microchannel pin-fin hybrid heat sink was established. Considering the non-uniform heat generation of 3D stacked chips, the ...
Solidification Enhancement in a Triple-Tube Latent Heat Energy Storage System Using Twisted Fins
Solidification Enhancement in a Triple-Tube Latent Heat Energy Storage System Using Twisted Fins
This work evaluates the influence of combining twisted fins in a triple-tube heat exchanger utilised for latent heat thermal energy storage (LHTES) in three-dimensional numerical s...
A Review on Application of Pin-Fins in Enhancing Heat Transfer
A Review on Application of Pin-Fins in Enhancing Heat Transfer
The pin-fin is one of the main technologies in enhancing heat transfer. The accelerated flow and vortex structures are produced, which can disrupt the development of the flow bound...
Numerical investigation of thermal performance of a combined heat sink with various microchannel shapes
Numerical investigation of thermal performance of a combined heat sink with various microchannel shapes
The influence of channel shape on a combined heat sink of three different channel forms is investigated numerically in this work. The channel shapes considered were the trapezoidal...
Heat Transfer Enhancement on Staggered Perforated Circular Pin-Fin Heat Sink: An Experimental Assessment
Heat Transfer Enhancement on Staggered Perforated Circular Pin-Fin Heat Sink: An Experimental Assessment
This experimental study examines how forced convective flow affects heat transfer properties in a rectangular channel with staggered pin fins featuring different perforation patter...

Back to Top