Performance Evaluation of a Maisotsenko Cycle Cooling Tower with Uneven Length of Dry and Wet Channels in Hot and Humid Conditions
Abstract
:1. Introduction
2. Heat and Mass Transfer Analysis of MCTs
3. The Experimental System of MCTs
4. Results and Discussion
4.1. Impact of Structural Parameters on the Performance of the MCT
4.2. Impact of Operating Parameters on the Performance of the MCT
4.3. Resistance Characteristics of the Novel Fill
5. Conclusions
- The water was cooled below the inlet air’s wet-bulb temperature the MCT, which is not achievable by TWCTs;
- NTU1 increased from ~1.0 to 1.5 with an increase in ldry from 1.5 to 2.4 m, but decreased from ~1.5 to 1.45 with an increase in ldry from 2.4 to 2.7 m. Therefore, it is important to ensure the optimal value of ldry for MCTs;
- The wet-bulb effectiveness increased by ~10% with an increase in NTU1 of ~0.5, indicating that MCTs should maximize NTU1 within the optimal value of pressure drops;
- The inlet air’s humidity ratio affected wet-bulb effectiveness more significantly than its temperature; however, the MCT still obtained wet-bulb effectiveness of up to ~180%, even under conditions of very high inlet air temperature and humidity ratio (t1i ≥ 35 °C, x1i ≥ 16 g/kg);
- In order to ensure that MCTs have high wet-bulb efficiency (εWB ≥ 0.9), W1/Ww should be maintained at a high value (W1/Ww ≥ 0.3);
- The results of this study have significance for the guidance of the industrial application and performance improvement of MCTs.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Nomenclature
cp | Specific heat capacity of moist air, (J/(kg K)) |
cpw | Specific heat capacity of water vapor, (J/(kg K)) |
cw | Specific heat capacity of water, (J/(kg K)) |
F | Surface area, (m2) |
G | Mass flow rate, (kg/s) |
l | Length, (m) |
M | Water vapor mass transfer rate, (kg/s) |
r | Specific heat of water evaporation, (kJ/kg) |
Q | Rate of heat transfer, (W) |
t | Temperature, (°C) |
Δtm | Logarithmic mean temperature difference, (°C) |
W | Heat capacity rate of the fluid, (W/K) |
x | Humidity ratio, (kg/kg) |
X | Coordinate along water flow direction, (m) |
v | Velocity, (m/s) |
Δp | Pressure drops, (Pa) |
Special characters | |
α | Convective heat transfer coefficient, (W/(m2 K)) |
β | Mass transfer coefficient, (kg/(m2 s)) |
ε | Effectiveness, (–) |
εDP1 | Dew-point effectiveness of primary air, (–) |
εWB | Wet-bulb effectiveness of MCT, (–) |
Non dimensional coordinates | |
Le | Lewis factor, Le =α/(βcp), (–) |
NTU | Number of transfer units, NTU =αF/(Gcp), (–) |
subscripts | |
1 | Primary airflow in dry channel |
2 | Working airflow in wet channel |
i | Inlet |
o | Outlet |
p | Channel plate |
w | Water |
WB | Wet-bulb temperature |
DP | Dew-point temperature |
dry | Dry channels |
wet | Wet channels |
′ | Conditions at air/water interface |
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Parameters | Instruments | Accuracy | Range |
---|---|---|---|
Temperature of water | T-type thermocouple | ±0.1 °C | −50~200 °C |
Water flow velocity | Ultrasonic flowmeter | ±0.5% | 0.005~32 m/s |
Inlet air velocity | Hot-wire anemometer | ±3% | 0~50 m/s |
Temperature and relative humidity of air | Testo 645 humidity meter | ±0.1 °C, ±0.1% RH | −50~150 °C, 0~100% RH |
Pressure drops | Differential pressure meters | ±0.5% | 0~500 Pa |
Experimental Parameters | Experimental Details |
---|---|
Length of dry channels ldry | 1.5, 1.8, 2.1, 2.4, and 2.7 m |
Inlet water temperature twi | 30, 40, and 50 °C |
Inlet air temperature t1i | 30, 35, and 40 °C |
Inlet air humidity ratio x1i | 16, 18, and 20 g/kg |
Water flow rate Gw (spray water rate) | 1.496 t/h (12 t/h·m2) |
Air flow rate G1 (air velocity in wet channels va) | 518, 1037, 1555, and 2073 m3/h (1.16, 2.31, 3.47, and 4.62 m/s, respectively) |
heat capacity ratio between air and water W1/Ww | 0.1, 0.2, 0.3 and 0.4 |
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Fan, X.; Lu, X.; Wang, J.; Li, Z.; Wang, Q.; Dong, Z.; Zhang, R. Performance Evaluation of a Maisotsenko Cycle Cooling Tower with Uneven Length of Dry and Wet Channels in Hot and Humid Conditions. Energies 2021, 14, 8249. https://doi.org/10.3390/en14248249
Fan X, Lu X, Wang J, Li Z, Wang Q, Dong Z, Zhang R. Performance Evaluation of a Maisotsenko Cycle Cooling Tower with Uneven Length of Dry and Wet Channels in Hot and Humid Conditions. Energies. 2021; 14(24):8249. https://doi.org/10.3390/en14248249
Chicago/Turabian StyleFan, Xuchen, Xiaofeng Lu, Jiping Wang, Zilong Li, Quanhai Wang, Zhonghao Dong, and Rongdi Zhang. 2021. "Performance Evaluation of a Maisotsenko Cycle Cooling Tower with Uneven Length of Dry and Wet Channels in Hot and Humid Conditions" Energies 14, no. 24: 8249. https://doi.org/10.3390/en14248249
APA StyleFan, X., Lu, X., Wang, J., Li, Z., Wang, Q., Dong, Z., & Zhang, R. (2021). Performance Evaluation of a Maisotsenko Cycle Cooling Tower with Uneven Length of Dry and Wet Channels in Hot and Humid Conditions. Energies, 14(24), 8249. https://doi.org/10.3390/en14248249