DocumentCode
1214181
Title
Thermal/fluid characteristics of 3-D woven mesh structures as heat exchanger surfaces
Author
Wirtz, R.A. ; Xu, Jun ; Park, Ji-Wook ; Ruch, Dan
Author_Institution
Mech. Eng. Dept./MS, Univ. of Nevada, Reno, NV, USA
Volume
26
Issue
1
fYear
2003
fDate
3/1/2003 12:00:00 AM
Firstpage
40
Lastpage
47
Abstract
The present work demonstrates the fabrication methodology of a three-dimensional (3-D), aluminum wire filament, bonded mesh deployed as a heat exchange surface. A model of the effective thermal conductivity of the mesh is developed. Apparatus to measure the coolant pressure-drop and heat transfer coefficient are described. Measurements are reported for fabricated test samples of varying thickness. Mesh Stanton number and friction factor correlations for a coolant with Prandtl number equal to 9.5 (chilled water) are reported. A heat exchanger performance evaluation, comparing the 3-D woven mesh technology to another exchanger surface technology, is described. We have found that the weaving/wire bonding process must be carefully controlled to insure that target porosity, specific surface area and effective thermal conductivity are achieved. Effective thermal conductivities are found to be at least two-times larger than achieved in other comparable porous media configurations. Mesh friction factor and Stanton number are comparable to those achieved with other exchanger surface technologies. The exchanger performance comparison shows that exchangers having superior performance can be configured.
Keywords
aluminium; heat exchangers; heat transfer; porosity; porous materials; thermal analysis; thermal conductivity; thermal management (packaging); 3D woven mesh structures; Al; Al wire filament bonded mesh; coolant pressure-drop measurement; effective thermal conductivity model; fabrication methodology; friction factor; heat exchanger performance evaluation; heat exchanger surfaces; heat transfer coefficient measurement; mesh Stanton number; porosity; porous media; thermal/fluid characteristics; weaving/wire bonding process; Aluminum; Bonding; Coolants; Fabrication; Friction; Heat transfer; Testing; Thermal conductivity; Thickness measurement; Wire;
fLanguage
English
Journal_Title
Components and Packaging Technologies, IEEE Transactions on
Publisher
ieee
ISSN
1521-3331
Type
jour
DOI
10.1109/TCAPT.2003.811476
Filename
1202901
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