Heat Transfer Enhancement of Diamond Rib Mounted in Periodic Merging Chambers of Micro Channel Heat Sink
Abstract
:1. Introduction
2. Physical Model
2.1. Geometric Model
2.2. Mathematical Model
2.3. Boundary Condition
3. Validation of Numerical Method
3.1. Mesh Independence and Numerical Model Validation
3.2. Theoretical Verification
3.3. Experimental Verification
4. Results and Discussion
4.1. The Local Characteristics
4.1.1. Velocity Fields
4.1.2. Temperature Fields
4.1.3. Local Nusselt Number
4.1.4. Span Local Nusselt Number
4.2. The Averaged Characteristics
4.2.1. The Averaged Characteristics at Different Rib Widths, [b/Wch]
4.2.2. The Averaged Characteristics at Different Rib Lengths, [l/Lmerg]
4.2.3. The Averaged Characteristics at Different Rib Heights, [h/Hch]
4.2.4. The Averaged Characteristics at Different Rib Mounted Positions, [s/Lmerg]
4.2.5. The Correlations of Nu and f
4.3. Heat Transfer Enhancement and Its Mechanisms
4.3.1. Heat Transfer Enhancement
- Heat transfer enhancement at different rib widths, [b/Wch]
- Heat transfer enhancement at different rib lengths, [l/Lmerg]
- Heat transfer enhancement at different rib heights, [h/Hch]
- Heat transfer enhancement at different rib mounted positions, [s/Lmerg]
4.3.2. Heat Transfer Enhancement Mechanism
4.4. Comparison with the Other Ribs
5. Conclusions
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
Nomenclature
Ab | area of heated bottom wall [m2] |
Acontact | contact area between the fluid and the substrate [m2] |
b | ribs width [m] |
Cp | specific heat [J/(kg·K)] |
Dh | hydraulic diameter [m] |
f | average friction factor |
fapp,ave | Darcy friction coefficient |
h | ribs height [m] |
hlocal | local convective heat transfer coefficient [W/(m2.K)] |
average convective heat transfer coefficient [W/(m2.K)] | |
Hch | height of MCs [m] |
JnABS | absolute vorticity [1/s] |
JF | heat transfer performance factor |
Kn | Knudsen number |
Lx, Ly, Lz | overall dimensions of the MC heat sink (width, height, length) [m] |
l | ribs length [m] |
Nulocal | local Nusselt number |
Nu | averaged Nusselt number |
Nus | span-averaged over the cross-sectional area |
Δp | pressure drop [Pa] |
q | heat flux [W/m2] |
Re | Reynolds number |
S | distance of transverse MCs [m] |
s | distance from the rib to the entrance of MC [m] |
Sev | volumetrically aveaged dimensionless secondary flow strength |
Ses | Cross-section averaged dimensionless secondary flow strength |
Tf | fluid temperature [K] |
averaged fluid temperature [K] | |
Tw | heated bottom wall temperature [K] |
Us | characteristic velocity of secondary flow [m/s] |
win | fluid flow inlet velocity [m/s] |
wm | average fluid flow velocity [m/s] |
Wch | MC width [m] |
Ww | MC wall width [m] |
Wb | base thickness of the heat sink [m] |
x,y,z | coordinates (Figure 1) [m] |
Greeks | |
ratio of width to height of MC | |
β | separation angle |
k | thermal conductivity [W/(m·K)] |
μ | dynamic viscosity [kg/(m·s)] |
ρ | density [kg/m3] |
ω | vorticity component [1/s] |
Subscripts | |
ABS | absolute value |
b | heat sink base |
f | fluid |
h | hydraulic |
in | inlet |
local | local value |
m | mean |
out | outlet |
s | substrate, span averaged |
0 | rectangular straight MCs without microchambers |
abbreviation list | |
MC | micro channel |
MEMS | micro electro-mechanical system |
CMC | continuous micro channel |
PMMC | MC having periodically merged chamber |
PMMC-C | MC having periodically merged chamber mounted with cylindrical ribs |
PMMC-D | MC having periodically merged chamber mounted with diamond ribs |
PMMC-R | MC having periodically merged chamber mounted with rectangular ribs |
PMMC-T | MC having periodically merged chamber mounted with triangular ribs |
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Wb | Ww | Wch | Hch | Sz | Lmerg | l | h | b | s | Lx | Ly | Lz |
---|---|---|---|---|---|---|---|---|---|---|---|---|
0.15 | 0.3 | 0.1 | 0.2 | 3.7 | 1.1 | 0.4 | 0.2 | 0.16 | 0.35 | 2.5 | 0.35 | 10 |
cp J/(kg·K) | ρ (kg/m3) | λ W/(m·K) |
---|---|---|
700 | 2330 | 148 |
Scheme | Grid Number | (K) | Nu | f |
---|---|---|---|---|
1 | 1,280,165 | 297.8 | 11.04 | 0.16 |
2 | 1,064,070 | 297.8 | 10.99 | 0.15 |
3 | 886,439 | 297.8 | 10.83 | 0.15 |
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Lu, X.; Wang, L.; Wang, L.; Hu, Y. Heat Transfer Enhancement of Diamond Rib Mounted in Periodic Merging Chambers of Micro Channel Heat Sink. Micromachines 2025, 16, 533. https://doi.org/10.3390/mi16050533
Lu X, Wang L, Wang L, Hu Y. Heat Transfer Enhancement of Diamond Rib Mounted in Periodic Merging Chambers of Micro Channel Heat Sink. Micromachines. 2025; 16(5):533. https://doi.org/10.3390/mi16050533
Chicago/Turabian StyleLu, Xin, Lu Wang, Liangbi Wang, and Yao Hu. 2025. "Heat Transfer Enhancement of Diamond Rib Mounted in Periodic Merging Chambers of Micro Channel Heat Sink" Micromachines 16, no. 5: 533. https://doi.org/10.3390/mi16050533
APA StyleLu, X., Wang, L., Wang, L., & Hu, Y. (2025). Heat Transfer Enhancement of Diamond Rib Mounted in Periodic Merging Chambers of Micro Channel Heat Sink. Micromachines, 16(5), 533. https://doi.org/10.3390/mi16050533