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"Flow Boiling in Microgap Channels: Experiment, Visualization and
Analysis" presents an up-to-date summary of the details of the
confined to unconfined flow boiling transition criteria, flow
boiling heat transfer and pressure drop characteristics,
instability characteristics, two phase flow pattern and flow regime
map and the parametric study of microgap dimension. Advantages of
flow boiling in microgaps over microchannels are also highlighted.
The objective of this Brief is to obtain a better fundamental
understanding of the flow boiling processes, compare the
performance between microgap and conventional microchannel heat
sinks, and evaluate the microgap heat sink for instabilities and
hotspot mitigation.
This Brief presents an up to date summary of details of the flow
boiling heat transfer, pressure drop and instability
characteristics; two phase flow patterns of expanding
microchannels. Results obtained from the different expanding
microscale geometries are presented for comparison and addition to
that, comparison with literatures is also performed. Finally,
parametric studies are performed and presented in the brief. The
findings from this study could help in understanding the complex
microscale flow boiling behavior and aid in the design and
implementation of reliable compact heat sinks for practical
applications.
The main aim of this book is to introduce and give an overview of a
novel, easy, and highly effective heat transfer augmentation
technique for single-phase micro/minichannel heat sink. The
specific objectives of the volume are to: Introduce a novel planar
oblique fin microchannel and cylindrical oblique fin minichannel
heat sink design using passive heat transfer enhancement techniques
Investigate the thermal transport in both planar and cylindrical
oblique fin structures through numerical simulation and systematic
experimental studies. Evaluate the feasibility of employing the
proposed solution in cooling non-uniform heat fluxes and hotspot
suppression Conduct the similarity analysis and parametric study to
obtain empirical correlations to evaluate the total heat transfer
rate of the oblique fin heat sink Investigate the flow mechanism
and optimize the dimensions of cylindrical oblique fin heat sink
Investigate the influence of edge effect on flow and temperature
uniformity in these oblique fin channels.
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