Effect of Airflow Non-Uniformities on the Thermal Performance of Water–Air Heat Exchangers—Experimental Study and Analysis
Abstract
:1. Introduction
- Development of experimental measurement techniques appropriate for underhood experimental analysis;
- Physical analysis of heat transfer phenomena occurring in the zone engine/components and development of associated analytical and semi-analytical models;
- Analysis and thermal modeling of the zone comprising the heat exchangers.
2. Theoretical Background
- Hot water inlet flow is uniformly distributed among the columns of the discretized HX surface.
- Perfect mixing is assumed at the outlet of the columns.
- The temperature at the outlet of each cell is considered as the inlet temperature of the neighboring cell.
- The method of obtaining an overall heat transfer coefficient of the entire HX is valid on each cell in the HX matrix.
3. Experimental Setup
3.1. The Thermal Part
3.2. The Aerodynamic Part
- An air duct (70 cm × 60 cm) is discretized into 15 smaller areas (cells). Accordingly, each small area consists of 18.3 × 14 cm2. Accordingly, this division allows controlling the airflow in each cell to have the desired configuration of non-uniformity. The reasoning behind this discretization is to be in accordance with the numerical methods that are based on the same principle.
- Fifteen 100 W fans, capable of providing an air velocity up to 13 m·s−1 through each cell (discretized duct).
- Speed regulators to control the speed of the fans is used in order to create the velocity maldistribution configuration through the discretized duct.
- 40-A/12-V batteries to power up the fans and their regulators.
3.3. Measurements and Uncertainty
4. Testing Configuration and Results
- Fix a certain water flow rate and mean airflow velocity;
- Try all the non-uniformity configurations at the prescribed mean air velocity;
- Record the inlet and outlet temperatures at each configuration.
5. Discussion
6. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Nomenclature
a | constant |
A | surface area (m2) |
b | constant |
heat capacity (J kg−1 K−1) | |
ETD | extreme temperature difference (°C) |
HX | heat exchanger |
m | number of column of heat exchanger matrix |
flow rate (kg s−1) | |
n | number of rows of heat exchanger matrix |
N | number of cells of heat exchanger matrix |
Q | water flowrate (L h−1) |
heat exchanger thermal performance (kW) | |
heat exchanger performance for a uniform airflow (kW) | |
T | temperature (°C) |
U | overall heat transfer coefficient (W m−2 K−1) |
V | airflow velocity (m/s) |
standard deviation of velocity distribution (m/s) | |
Subscripts | |
air | air |
cell | cell |
fluid | fluid |
in | inlet |
m | mean |
out | outlet |
w | water |
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Component | Description |
---|---|
Water tank | A 100 L capacity tank that supplies water to the heater. A gate valve is incorporated |
Electric heater | A 100 L capacity heater, responsible for heating the water to the desired temperature. Equipped with valves for the control of the flow rate. (Figure 2) |
Hot water pump | Characterized with a 10 m maximum head, 18 L·min−1 volume flow rate and 2900 rpm. Responsible for circulating the hot water in the heat exchanger. (Figure 2) |
Radiator | HX surface of 70 × 55 cm2, with temperature sensors at the inlet and outlet. (Figure 2) |
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Khaled, M.; Mortada, M.; Faraj, J.; Chahine, K.; Lemenand, T.; Ramadan, H.S. Effect of Airflow Non-Uniformities on the Thermal Performance of Water–Air Heat Exchangers—Experimental Study and Analysis. Energies 2022, 15, 8120. https://doi.org/10.3390/en15218120
Khaled M, Mortada M, Faraj J, Chahine K, Lemenand T, Ramadan HS. Effect of Airflow Non-Uniformities on the Thermal Performance of Water–Air Heat Exchangers—Experimental Study and Analysis. Energies. 2022; 15(21):8120. https://doi.org/10.3390/en15218120
Chicago/Turabian StyleKhaled, Mahmoud, Mostafa Mortada, Jalal Faraj, Khaled Chahine, Thierry Lemenand, and Haitham S. Ramadan. 2022. "Effect of Airflow Non-Uniformities on the Thermal Performance of Water–Air Heat Exchangers—Experimental Study and Analysis" Energies 15, no. 21: 8120. https://doi.org/10.3390/en15218120
APA StyleKhaled, M., Mortada, M., Faraj, J., Chahine, K., Lemenand, T., & Ramadan, H. S. (2022). Effect of Airflow Non-Uniformities on the Thermal Performance of Water–Air Heat Exchangers—Experimental Study and Analysis. Energies, 15(21), 8120. https://doi.org/10.3390/en15218120