Research on the Thermal Hydraulic Performance and Entropy Generation Characteristics of Finned Tube Heat Exchanger with Streamline Tube
Abstract
:Highlights
- Flow characteristics in the windward region and wake region flow characteristics were investigated.
- By decreasing wake region, the flow characteristic was improved and the overall performance was enhanced.
- The k-ε-enhance model was employed to numerically investigate the overall performance.
1. Introduction
2. Model Description
2.1. Physical Model
2.2. Governing Equations
- (1)
- A steady state was assumed;
- (2)
- The flow was three-dimensional and incompressible;
- (3)
- The working fluid was in a single phase, and their properties kept constant;
- (4)
- Effects of heat dissipation and thermal radiation were negligible;
2.3. Boundary Conditions
- (1)
- Boundary conditions of inlet part were described as follows [4].At inlet boundary condition:At side boundary conditions:At the top and bottom boundaries (periodic conditions):
- (2)
- The boundary conditions of outlet part were described as follows.At outlet boundary condition:At side boundary conditions:At the top and bottom boundaries (periodic conditions):
- (3)
- The boundary conditions of Fin-coil part are described as follows.At side boundary condition:At the top and bottom boundaries (periodic conditions):
3. Model Verification
3.1. Parameter Definition
- (1)
- Friction factor f represented the friction characteristic, defined as follows.
- (2)
- Colburn factor j represented the heat transfer capability, defined as follows.
- (3)
- In order to evaluate the overall performance of the tube-and-fin heat exchanger, the performance evaluation is used to evaluate the thermal performance, suggested by Webb [32], defined in terms of Colburn factor and Friction factor as follows.
3.2. Entropy Generation Analysis
3.3. Mesh Generation Technique
3.4. Code Validation
4. Results and Discussion
4.1. Discussion of the Effect of Geometrical Parameters
4.1.1. The Effect of Transversal Tube Pitch
4.1.2. The Effect of Longitudinal Tube Pitch
4.1.3. The Effect of Angle
4.2. Analysis on the Thermal Hydraulic Performance
4.2.1. Analysis on the Flow Characteristics and Thermal Performance
4.2.2. Analysis on Turbulence Kinetic Energy
4.2.3. Analysis on the Entropy Generation
5. Conclusions
Author Contributions
Funding
Conflicts of Interest
Nomenclature
The total area of heat transfer () | |
The wetted surface area () | |
The Bejan number () | |
() | |
The heat capacity of working fluid () | |
The perimeter of the heat transfer section () | |
The hydraulic diameter () | |
Fin pitch () | |
Fin thickness () | |
The friction factor ( | |
() | |
The turbulence intensity () | |
The Colburn factor () | |
k | Turbulent kinetic energy () |
() | |
The length of flow direction () | |
Longitudinal tube pitch () | |
Transverse tube pitch () | |
The mass flow of working fluid () | |
The Nusselt number () | |
P | () |
() | |
The total rate of heat transfer () | |
The Reynolds number () | |
The large radius of the heat transfer tube () | |
The small radius of the heat transfer tube () | |
The local thermal entropy generation rate | |
The local frictional entropy generation rate | |
The local volumetric entropy generations rate | |
The temperature of the outlet () | |
The temperature of the inlet () | |
The temperature of wall () | |
Temperature of the working fluid () | |
u | () |
() | |
Volume of working fluid () | |
Greek Symbols
The pressure drop between the inlet and outlet () | |
() | |
Dissipation rate of turbulent kinetic energy of the k- model () | |
() | |
() | |
Dynamic viscosity () | |
() | |
Kinematic viscosity () | |
Density of working fluid () | |
() | |
() | |
The streamline () |
Subscripts
References
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Parameters | Value | |
---|---|---|
Circular Tube | Streamline Tube | |
Tube outside radius (R) (mm) | 4.75 | 4.75 |
The number of tube row () | 4 | 4 |
Longitudinal tube pitch (Ll) (mm) | 22 | 22 |
Transverse tube pitch (Lt) (mm) | 12.7 | 12.7 |
Fin thickness (Ft) (mm) | 0.13 | 0.13 |
Fin pitch (Fp) (mm) | 3 | 3 |
VG angle () () | - | 60 |
CASE No. | Ll (mm) | Lt (mm) | R (mm) | C (mm) | |
---|---|---|---|---|---|
Case1 | 22 | 21.4 | 60 | 3.99 | 29.85 |
Case2 | 22 | 15.4 | 60 | 3.99 | 29.85 |
Case3 | 22 | 17.4 | 60 | 3.99 | 29.85 |
Case4 | 22 | 19.4 | 60 | 3.99 | 29.85 |
Case5 | 22 | 23.4 | 60 | 3.99 | 29.85 |
Case6 | 16 | 21.4 | 60 | 3.99 | 29.85 |
Case7 | 18 | 21.4 | 60 | 3.99 | 29.85 |
Case8 | 20 | 21.4 | 60 | 3.99 | 29.85 |
Case9 | 24 | 21.4 | 60 | 3.99 | 29.85 |
Case10 | 22 | 21.4 | 40 | 3.99 | 35.71 |
Case11 | 22 | 21.4 | 50 | 3.99 | 32.11 |
Case12 | 22 | 21.4 | 70 | 3.99 | 28.33 |
Case13 | 22 | 21.4 | 80 | 3.99 | 27.29 |
Case14 | 22 | 25.4 | 90 | 4.48 | 29.85 |
Case15 | 22 | 25.4 | 60 | 3.99 | 29.85 |
Case16 | 22 | 25.4 | 30 | 2.90 | 29.85 |
Case17 | 22 | 25.4 | 20 | 2.30 | 29.85 |
Case18 | 22 | 25.4 | 10 | 1.52 | 29.85 |
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Qian, Z.; Wang, Q.; Lv, S. Research on the Thermal Hydraulic Performance and Entropy Generation Characteristics of Finned Tube Heat Exchanger with Streamline Tube. Energies 2020, 13, 5408. https://doi.org/10.3390/en13205408
Qian Z, Wang Q, Lv S. Research on the Thermal Hydraulic Performance and Entropy Generation Characteristics of Finned Tube Heat Exchanger with Streamline Tube. Energies. 2020; 13(20):5408. https://doi.org/10.3390/en13205408
Chicago/Turabian StyleQian, Zuoqin, Qiang Wang, and Song Lv. 2020. "Research on the Thermal Hydraulic Performance and Entropy Generation Characteristics of Finned Tube Heat Exchanger with Streamline Tube" Energies 13, no. 20: 5408. https://doi.org/10.3390/en13205408
APA StyleQian, Z., Wang, Q., & Lv, S. (2020). Research on the Thermal Hydraulic Performance and Entropy Generation Characteristics of Finned Tube Heat Exchanger with Streamline Tube. Energies, 13(20), 5408. https://doi.org/10.3390/en13205408