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Also, six heat sink designs were tested: one with single cavity, two with parallel fin arrangement, two with cross fin arrangement, and one with honeycomb insert inside the single cavity.
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A mystical look crossed Fin's face.
Different fin structures, namely plate fin, crossed fin and pin fin are investigated and compared; the effects of fin number, fin width and base thickness are parametrically studied; the influence of the structural material is briefly discussed.
The proposed cross-fin heat sink provides a practical alternative to the widely adopted plate-fin heat sinks.
The design principle of the cross-fin heat sink was based on overcoming internal thermal fluid-flow defects in a conventional plate-fin heat sink.
It was demonstrated that, compared to the reference plate-fin heat sink, the cross-fin heat sink enhanced the overall (including natural convection and radiation) and convective (excluding radiation) heat transfer coefficients by 11%and15%5%, respectively.
A novel cross-fin heat sink consisting of a series of long fins and a series of perpendicularly arranged short fins was proposed to enhance natural convective heat transfer.
Then, transient thermal performances of E-BiInSn based heat sinks with internal crossed fins were tested, in comparison with that of organic PCM (octadecanol) which has close melting point.
Design variables are encoded to shape the fin geometry with several pin fin cross-sections.
Figure 2a shows the simulated bulk FinFET's structure and the cross-section of fin channel.
Yousefi et al. (2012) utilized ICA to optimize a cross-flow plate fin heat exchanger.
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