Numerical Analysis of Tube Heat Exchanger with Perforated Star-Shaped Fins
Abstract
:1. Introduction
2. Materials and Methods
2.1. The Geometry Description
2.2. Numerical Analysis
- The air entering the computational domain had uniform velocity over the cross-section and ranged from 1 m/s to 7 m/s. The turbulence intensity was set to 5%.
- The air temperature at the inlet to the heat exchanger was 288 K.
- Hot water at the inlet to tubes was 353 K. Water has a high thermal capacity, and thus it was assumed that the temperature of the tube inner wall was constant and equal to the water temperature.
- The gauge pressure at the outlet of the channel was zero, which corresponds to atmospheric conditions.
- Hydraulically smooth walls were assumed for outer tube surfaces and fin surfaces.
- The symmetry boundary condition was set at the sides of the computational domain.
- Moreover, the symmetry boundary condition was set for the top, bottom, left, and right sides of the computational domain. Symmetry condition was applied for simplifying the calculation and to reduce the computational domain where possible.
- The normal velocity component on the plane of symmetry was equal to zero, i.e., there was no convective flow through the plane of symmetry. Thus, the temperature gradients and tangential components of the velocity gradients in the normal direction were set to zero.
2.3. Governing Equations
3. Results
Flow Characteristics
4. Discussion
5. Conclusions
Author Contributions
Funding
Conflicts of Interest
Nomenclature
A | surface area | m² |
d0 | outside tube diameter | mm |
Eu | Euler number | - |
f | friction factor | - |
fi | vector of the mass density of the external forces | N/kg |
hf | fin height | mm |
j | Colburn factor | - |
Nl | number of tubes in the flow direction | - |
Nu | Nusselt number | - |
Δp | pressure drop | Pa |
pout | mass-weighted average pressure outlet of the channel | Pa |
Q | heat flow rate | W |
q | heat flux vector | W |
Re | Reynolds number | - |
sf | fin pitch | mm |
sl | longitudinal tube pitch | mm |
st | transverse tube pitch | mm |
t | time | s |
tf | fin thickness | mm |
Tin | air inlet temperature | K |
Tout | air outlet temperature | K |
Tw | tube wall temperature | K |
U | overall heat transfer coefficient | W/(m2·K) |
u | air velocity | m/s |
uff | air velocity at minimum flow area | m/s |
uin | air velocity at the inlet of the heat exchanger | m/s |
α0 | actual average gas-side heat transfer coefficient | W/(m2·K) |
εf | fin effectiveness | - |
ηf,th | theoretical fin efficiency | - |
μav | average air kinematic viscosity | m2/s |
ρav | average air density (at mean air temperature in tube bundle) | kg/m3 |
λbl | thermal conductivity of boundary layer | W/(m·K) |
σij | tensor of stress in a fluid | Pa |
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Item | Variable | Unit | Amount |
---|---|---|---|
Material | - | - | stainless steel |
Tube data | d0 | mm | 20 |
- | - | staggered | |
st | mm | 50 | |
sl | mm | 40 | |
Nl | - | 5 | |
Fin data | tf | mm | 0.5 |
sf | mm | 4.5 | |
The diameter of the perforation hole | - | mm | 2, 3, and 4 |
Number of perforation holes per fin | - | - | 8 |
Boundary Condition | Variable | Unit | Amount |
---|---|---|---|
Air temperature at the inlet | Tin | K | 288 |
Air velocity at inlet | uin | m/s | 1, 2, 3, 5, and 7 |
Wall temperature of the internal tube | Tw | K | 353 |
Gauge air pressure at the outlet | pout | Pa | 0 |
Wall condition (airside) | Hydraulically smooth wall |
Number of Finite Volumes (Millions) | 5.8 | 8.2 | 10.8 | 15.0 |
---|---|---|---|---|
Nu | 54.7 | 51.4 | 51.3 | 51.4 |
Eu | 0.34 | 0.38 | 0.41 | 0–41 |
Air Velocity at Tube Bundle Inlet uin (m/s) | Air Temperature at the Outlet of Tube Bundle Tout (K) | Pressure Drop in the Tube Bundle Δp (Pa) |
---|---|---|
1.0 | 321.53 | 10.25 |
2.0 | 312.90 | 35.75 |
3.0 | 308.59 | 75.65 |
5.0 | 304.16 | 196.98 |
7.0 | 301.79 | 371.35 |
Air Velocity at Tube Bundle Inlet uin (m/s) | Air Temperature at the Outlet of Tube Bundle Tout (K) | Pressure Drop in the Tube Bundle Δp (Pa) |
---|---|---|
1.0 | 320.9 | 10.19 |
2.0 | 312.38 | 35.64 |
3.0 | 308.18 | 75.55 |
5.0 | 303.84 | 196.82 |
7.0 | 301.54 | 371.70 |
Air Velocity at Tube Bundle Inlet uin (m/s) | Air Temperature at the Outlet of Tube Bundle Tout (K) | Pressure Drop in the Tube Bundle Δp (Pa) |
---|---|---|
1.0 | 319.70 | 10.05 |
2.0 | 311.43 | 35.42 |
3.0 | 307.42 | 75.34 |
5.0 | 303.31 | 197.58 |
7.0 | 301.10 | 374.14 |
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Bošnjaković, M.; Muhič, S. Numerical Analysis of Tube Heat Exchanger with Perforated Star-Shaped Fins. Fluids 2020, 5, 242. https://doi.org/10.3390/fluids5040242
Bošnjaković M, Muhič S. Numerical Analysis of Tube Heat Exchanger with Perforated Star-Shaped Fins. Fluids. 2020; 5(4):242. https://doi.org/10.3390/fluids5040242
Chicago/Turabian StyleBošnjaković, Mladen, and Simon Muhič. 2020. "Numerical Analysis of Tube Heat Exchanger with Perforated Star-Shaped Fins" Fluids 5, no. 4: 242. https://doi.org/10.3390/fluids5040242
APA StyleBošnjaković, M., & Muhič, S. (2020). Numerical Analysis of Tube Heat Exchanger with Perforated Star-Shaped Fins. Fluids, 5(4), 242. https://doi.org/10.3390/fluids5040242