Numerical Investigation of Enhanced Heat Transfer with Micro Pin Fins in Heat Exchangers
Abstract
:1. Introduction
2. Geometrical and Numerical Models
2.1. Geometrical Model
2.2. Governing Equations
2.3. Computational Domain and Boundary Conditions
2.4. Solution Methods
2.5. Parameter Definitions
2.6. Grid Independence Study
2.7. Model Validation
3. Results and Discussion
3.1. Flow and Temperature Fields in Micro-Pin-Fin Arrays
3.2. Effects of Streamwise and Transverse Pin Pitches
3.3. Comparison of the Overall Performance between Pin Fins and Louvered Fins
4. Conclusions
- (1)
- Pin pitch significantly affects the airflow near the pin and the local heat transfer capacity. Increasing the streamwise pin pitch reduces the disturbance from low-velocity wake vortices caused by boundary layer separation on downstream pins, thereby increasing the heat transfer in front of these pins due to larger local temperature gradients.
- (2)
- For all pin diameters, reducing the streamwise and transverse pin pitch increases both the heat transfer rate per unit frontal area and the pressure drop under constant flow velocity conditions. Notably, the variation in pressure drop is more pronounced at smaller transverse pitches, indicating a decrease in overall performance and suggesting that smaller streamwise pitches are less effective under these conditions.
- (3)
- Optimal configurations for micro pin fins with diameters of 0.1 mm, 0.2 mm, and 0.3 mm were identified at the four fan power levels. These optimal configurations are characterized by a uniform streamwise pitch of 0.7 mm and varying transverse pitches of 0.8 mm, 1.0 mm, and 1.2 mm, respectively, with the ratio of transverse pitch to pin diameter increasing as the pin diameter decreases.
- (4)
- Among the optimal configurations, the 0.2 mm pin-diameter configuration consistently outperformed the other diameters at all fan power levels. Compared to louvered fins, this configuration offers satisfactory heat transfer efficiency with lower fin consumption and a more uniform structure, making it particularly suitable for use in evaporator applications.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Nomenclature
A | area, m2 |
Ao | total heat transfer area, m2 |
cp | specific heat, J/(kg·K) |
d | pin diameter, m |
dp | pressure difference between the leading and trailing edges of a pin, Pa |
Fd | flow depth, m |
Fh | fin height, m |
Fp | fin pitch of the louvered fin, m |
h | heat transfer coefficient, W/(m2·K) |
k | thermal conductivity, W/(m·K) |
fan power per unit frontal area, W/m2 | |
p | pressure, Pa |
Δp | pressure drop, Pa |
heat transfer rate per unit frontal area, W/m2 | |
Q | heat transfer rate, W |
Re | Reynolds number |
Sx | streamwise pin pitch, m |
Sy | transverse pin pitch, m |
Δs | size of the first layer element on fin surface, m |
T | temperature, K |
ΔTm | logarithmic mean temperature difference, K |
Tw | tube wall temperature, K |
U | velocity, m/s |
u | velocity vector, m/s |
Subscripts | |
a | air |
c | cross-section with minimal flow area |
in | inlet |
N | streamwise position number |
out | outlet |
f | fin |
Superscripts | |
L | leading edge of the pin |
T | trailing edge of the pin |
Greek symbols | |
μ | dynamic viscosity, kg/(m·s) |
ρ | density, kg/m3 |
Abbreviations | |
CFD | computational fluid dynamics |
LFFTHXs | louvered-fin and flat-tube heat exchangers |
PFFTHXs | pin-fin and flat-tube heat exchangers |
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d (mm) | Fh (mm) | Fd (mm) | Sx (mm) | Sy (mm) |
---|---|---|---|---|
0.1 | 8 | 32 | 0.7, 1.0, 1.3, 1.6 | 0.4, 0.6, 0.8, 1.0, 1.2 |
0.2 | 8 | 32 | 0.7, 1.0, 1.3, 1.6 | 0.6, 0.8, 1.0, 1.2, 1.4 |
0.3 | 8 | 32 | 0.7, 1.0, 1.3, 1.6 | 0.6, 0.9, 1.2, 1.5, 1.8 |
Type | Parameter | Value |
---|---|---|
Air | Thermal conductivity | 0.0247 W/(m·K) |
Specific heat | 1007 J/(kg·K) | |
Density | 1.225 kg/m3 | |
Dynamic viscosity | 1.8 × 10–5 kg/(m·s) | |
Aluminum fin | Thermal conductivity | 202.4 W/(m·K) |
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Zhou, Q.; Wang, H.; Wu, F.; Liu, S.; Wei, H.; Hu, G. Numerical Investigation of Enhanced Heat Transfer with Micro Pin Fins in Heat Exchangers. Micromachines 2024, 15, 1120. https://doi.org/10.3390/mi15091120
Zhou Q, Wang H, Wu F, Liu S, Wei H, Hu G. Numerical Investigation of Enhanced Heat Transfer with Micro Pin Fins in Heat Exchangers. Micromachines. 2024; 15(9):1120. https://doi.org/10.3390/mi15091120
Chicago/Turabian StyleZhou, Qin, Hongyan Wang, Fuyuan Wu, Shengfei Liu, Huafeng Wei, and Guoqing Hu. 2024. "Numerical Investigation of Enhanced Heat Transfer with Micro Pin Fins in Heat Exchangers" Micromachines 15, no. 9: 1120. https://doi.org/10.3390/mi15091120
APA StyleZhou, Q., Wang, H., Wu, F., Liu, S., Wei, H., & Hu, G. (2024). Numerical Investigation of Enhanced Heat Transfer with Micro Pin Fins in Heat Exchangers. Micromachines, 15(9), 1120. https://doi.org/10.3390/mi15091120