Optimal spacing of parallel boards with discrete heat sources cooled by laminar forced convection
This paper shows numerically how to select the optimal spacing between boards mounted in a stack of specified volume, so that the overall thermai conductance between the stack and the forced coolant is maximum. Several configurations are considered: boards with uniform flux, flush-mounted discrete sources, and protruding heat sources. The flow is laminar and the pressure difference across the stack is fixed (Δp). It is shown that for all the board geometries and thermal boundary conditions studied, the optimal board-to- board spacing is correlated by (Dopt/l) ~2.7(Δpl2/µα)-1/4, where I is the effective longitudinal (flow) distance occupied by the discrete sources and the unheated patches contained between them, and µ and α are the viscosity and thermal diffitsivity of the fluid. If U∞ is the free-stream velocity upstream of the stack, the optimal spacing is given by (Dopt /I) ~ 3.2P)-1/4 (U∞l/v)-1/2. © 1994 Taylor and Francis Group, LLC.
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Related Subject Headings
- Mechanical Engineering & Transports
- 4901 Applied mathematics
- 4012 Fluid mechanics and thermal engineering
- 0913 Mechanical Engineering
- 0905 Civil Engineering
- 0102 Applied Mathematics
Citation
Published In
DOI
EISSN
ISSN
Publication Date
Volume
Issue
Start / End Page
Related Subject Headings
- Mechanical Engineering & Transports
- 4901 Applied mathematics
- 4012 Fluid mechanics and thermal engineering
- 0913 Mechanical Engineering
- 0905 Civil Engineering
- 0102 Applied Mathematics