Heat Transfer Improvement in a Double Backward-Facing Expanding Channel Using Different Working Fluids
Abstract
:1. Introduction
2. Numerical Approach
2.1. Physical Model
2.2. Governing Equations
3. Grid Independence Study and Data Validation
4. Results and Discussion
4.1. Nusselt Number
4.2. Flow Characteristics
4.3. Velocity Profile
5. Conclusions
- An increase in the local Nusselt number is detected with rises in the Reynolds number, while the critical effects are seen at the start region of the first and second steps.
- The results show that higher local Nusselt numbers occur in cases 1 and 3, compared to case 2, for all types of fluids.
- The maximum average Nusselt number, which represents the thermal performance, can clearly be seen in case 1 for EG, in comparison to water and ammonia.
- A rise in the local skin friction coefficient is apparent at the first and second steps of the downstream section due to the expansion of the passage, which produces the separation flow.
- The velocity decreases rapidly at the first and second steps and then increases. This is due to the recirculation flow, which is generated at the zones after the first and second steps.
Author Contributions
Funding
Conflicts of Interest
Nomenclature
A | Length of the bottom wall before the first step |
B | Length of the bottom wall after the first step |
C | Length of the bottom wall after the second step |
Cp | Specific heat |
H | Width of the channel at the entrance |
H1 | The step height of the first step |
H2 | The step height of the second step |
L | The total length of the channel |
Nu | Nusselt number |
P | Pressure |
Pr | Prandtl number |
Re | Reynolds number |
T | Temperature |
u, v | Axial velocity |
X, y | Cartesian coordinates |
Greek symbols | |
Ρ | Water density |
µ | Dynamic viscosity |
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Cases | H (cm) | H1 (cm) | H2 (cm) | a (cm) | b (cm) | c (cm) |
---|---|---|---|---|---|---|
1 | 0.98 | 1 | 1 | 200 | 50 | 50 |
2 | 0.98 | 2 | 1 | 200 | 50 | 50 |
3 | 0.98 | 1 | 2 | 200 | 50 | 50 |
Fluid Type | ρ (kg/m3) | μ (N s/m2) | k (W/m K) | Cp (J/kg K) |
---|---|---|---|---|
Ammonia (liquid) | 650 | 0.000152 | 0.493 | 4758 |
EG | 1111.4 | 0.0157 | 0.252 | 2415 |
Water | 998.2 | 0.001003 | 0.6 | 4182 |
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Abdulrazzaq, T.; Togun, H.; Alsulami, H.; Goodarzi, M.; Safaei, M.R. Heat Transfer Improvement in a Double Backward-Facing Expanding Channel Using Different Working Fluids. Symmetry 2020, 12, 1088. https://doi.org/10.3390/sym12071088
Abdulrazzaq T, Togun H, Alsulami H, Goodarzi M, Safaei MR. Heat Transfer Improvement in a Double Backward-Facing Expanding Channel Using Different Working Fluids. Symmetry. 2020; 12(7):1088. https://doi.org/10.3390/sym12071088
Chicago/Turabian StyleAbdulrazzaq, Tuqa, Hussein Togun, Hamed Alsulami, Marjan Goodarzi, and Mohammad Reza Safaei. 2020. "Heat Transfer Improvement in a Double Backward-Facing Expanding Channel Using Different Working Fluids" Symmetry 12, no. 7: 1088. https://doi.org/10.3390/sym12071088
APA StyleAbdulrazzaq, T., Togun, H., Alsulami, H., Goodarzi, M., & Safaei, M. R. (2020). Heat Transfer Improvement in a Double Backward-Facing Expanding Channel Using Different Working Fluids. Symmetry, 12(7), 1088. https://doi.org/10.3390/sym12071088