The Effect of Air Parameters on the Evaporation Loss in a Natural Draft Counter-Flow Wet Cooling Tower

The measures to reduce the impact of evaporation loss in a natural draft counter-flow wet cooling tower (NDWCT) have important implications for water conservation and emissions reduction. A mathematical model of evaporation loss in the NDWCT was established by using a modified Merkel method. The NDW...

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Main Authors: Wei Yuan, Fengzhong Sun, Ruqing Liu, Xuehong Chen, Ying Li
Format: Article
Language:English
Published: MDPI AG 2020-11-01
Series:Energies
Subjects:
Online Access:https://www.mdpi.com/1996-1073/13/23/6174
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spelling doaj-cd82fece91b7420281be1484902dafb12020-11-27T07:56:25ZengMDPI AGEnergies1996-10732020-11-01136174617410.3390/en13236174The Effect of Air Parameters on the Evaporation Loss in a Natural Draft Counter-Flow Wet Cooling TowerWei Yuan0Fengzhong Sun1Ruqing Liu2Xuehong Chen3Ying Li4School of Energy and Power Engineering, Shandong University, Jinan 250061, ChinaSchool of Energy and Power Engineering, Shandong University, Jinan 250061, ChinaSchool of Energy and Power Engineering, Shandong University, Jinan 250061, ChinaSchool of Energy and Power Engineering, Shandong University, Jinan 250061, ChinaSchool of Energy and Power Engineering, Shandong University, Jinan 250061, ChinaThe measures to reduce the impact of evaporation loss in a natural draft counter-flow wet cooling tower (NDWCT) have important implications for water conservation and emissions reduction. A mathematical model of evaporation loss in the NDWCT was established by using a modified Merkel method. The NDWCTs in the 300 MW and 600 MW power plant were taken as the research objects. Comparing experimental values with calculated values, the relative error was less than 3%. Then, the effect of air parameters on evaporation loss of NDWCT was analyzed. The results showed that, with the increase of dry bulb temperature, the evaporation heat dissipation and the evaporation loss decreased, while the rate of evaporation loss caused by unit temperature difference increased. The ambient temperature increased by 1 °C and the evaporation loss was reduced by nearly 26.65 t/h. When the relative air humidity increased, the evaporation heat dissipation and evaporation loss decreased, and the rate of evaporation loss caused by unit temperature difference decreased. When relative air humidity increased by 1%, the outlet water temperature rose by about 0.08 °C, and the evaporation loss decreased by about 5.63 t/h.https://www.mdpi.com/1996-1073/13/23/6174natural transfermathematical modelingMerkel approachevaporation lossdry bulb temperaturerelative air humidity
collection DOAJ
language English
format Article
sources DOAJ
author Wei Yuan
Fengzhong Sun
Ruqing Liu
Xuehong Chen
Ying Li
spellingShingle Wei Yuan
Fengzhong Sun
Ruqing Liu
Xuehong Chen
Ying Li
The Effect of Air Parameters on the Evaporation Loss in a Natural Draft Counter-Flow Wet Cooling Tower
Energies
natural transfer
mathematical modeling
Merkel approach
evaporation loss
dry bulb temperature
relative air humidity
author_facet Wei Yuan
Fengzhong Sun
Ruqing Liu
Xuehong Chen
Ying Li
author_sort Wei Yuan
title The Effect of Air Parameters on the Evaporation Loss in a Natural Draft Counter-Flow Wet Cooling Tower
title_short The Effect of Air Parameters on the Evaporation Loss in a Natural Draft Counter-Flow Wet Cooling Tower
title_full The Effect of Air Parameters on the Evaporation Loss in a Natural Draft Counter-Flow Wet Cooling Tower
title_fullStr The Effect of Air Parameters on the Evaporation Loss in a Natural Draft Counter-Flow Wet Cooling Tower
title_full_unstemmed The Effect of Air Parameters on the Evaporation Loss in a Natural Draft Counter-Flow Wet Cooling Tower
title_sort effect of air parameters on the evaporation loss in a natural draft counter-flow wet cooling tower
publisher MDPI AG
series Energies
issn 1996-1073
publishDate 2020-11-01
description The measures to reduce the impact of evaporation loss in a natural draft counter-flow wet cooling tower (NDWCT) have important implications for water conservation and emissions reduction. A mathematical model of evaporation loss in the NDWCT was established by using a modified Merkel method. The NDWCTs in the 300 MW and 600 MW power plant were taken as the research objects. Comparing experimental values with calculated values, the relative error was less than 3%. Then, the effect of air parameters on evaporation loss of NDWCT was analyzed. The results showed that, with the increase of dry bulb temperature, the evaporation heat dissipation and the evaporation loss decreased, while the rate of evaporation loss caused by unit temperature difference increased. The ambient temperature increased by 1 °C and the evaporation loss was reduced by nearly 26.65 t/h. When the relative air humidity increased, the evaporation heat dissipation and evaporation loss decreased, and the rate of evaporation loss caused by unit temperature difference decreased. When relative air humidity increased by 1%, the outlet water temperature rose by about 0.08 °C, and the evaporation loss decreased by about 5.63 t/h.
topic natural transfer
mathematical modeling
Merkel approach
evaporation loss
dry bulb temperature
relative air humidity
url https://www.mdpi.com/1996-1073/13/23/6174
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