The Effect of Nozzle Configuration on Adsorption-Chiller Performance

Broadly defined climate protection is a powerful incentive in the search for environmentally friendly refrigeration technologies. Adsorption chillers are considered to be one such technology; however, their main disadvantages include a low cooling capacity, a low energy efficiency ratio (EER), and c...

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Published in:Energies
Main Authors: Wojciech Kalawa, Karol Sztekler, Jakub Kozaczuk, Łukasz Mika, Ewelina Radomska, Wojciech Nowak, Andrzej Gołdasz
Format: Article
Language:English
Published: MDPI AG 2024-03-01
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Online Access:https://www.mdpi.com/1996-1073/17/5/1181
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author Wojciech Kalawa
Karol Sztekler
Jakub Kozaczuk
Łukasz Mika
Ewelina Radomska
Wojciech Nowak
Andrzej Gołdasz
author_facet Wojciech Kalawa
Karol Sztekler
Jakub Kozaczuk
Łukasz Mika
Ewelina Radomska
Wojciech Nowak
Andrzej Gołdasz
author_sort Wojciech Kalawa
collection DOAJ
container_title Energies
description Broadly defined climate protection is a powerful incentive in the search for environmentally friendly refrigeration technologies. Adsorption chillers are considered to be one such technology; however, their main disadvantages include a low cooling capacity, a low energy efficiency ratio (EER), and cyclic operation. Thus, a great deal of effort is being put into improving adsorption-chiller performance. In this paper, the influence of the spray angle, the number of nozzles, and the water flow rate through the nozzles on adsorption-chiller performance was investigated. Adsorption-chiller performance was investigated mainly in terms of the cooling capacity (CC), the energy efficiency ratio (EER), and the specific cooling power (SCP). The results indicated that the chiller’s cooling capacity increased from about 210 W to 316 W and that the EER increased from 0.110 to 0.167 when the spray angle of the nozzles was increased from 90° to 120°. It was also reported that increasing the flow rate of water through the nozzles did not improve the average cooling capacity or the other performance parameters but resulted in more stable operation of the chiller. Additionally, using six nozzles instead of three improved the average cooling capacity and EER tenfold.
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spelling doaj-art-e080daecb19e4d48a09bbd9010b1be062025-08-20T00:42:41ZengMDPI AGEnergies1996-10732024-03-01175118110.3390/en17051181The Effect of Nozzle Configuration on Adsorption-Chiller PerformanceWojciech Kalawa0Karol Sztekler1Jakub Kozaczuk2Łukasz Mika3Ewelina Radomska4Wojciech Nowak5Andrzej Gołdasz6Department of Thermal and Fluid Flow Machines, Faculty of Energy and Fuels, AGH University of Krakow, al. A. Mickiewicza 30, 30-059 Krakow, PolandDepartment of Thermal and Fluid Flow Machines, Faculty of Energy and Fuels, AGH University of Krakow, al. A. Mickiewicza 30, 30-059 Krakow, PolandJWA Polska, ul. Ks. I. J. Skorupki 11/1, 31-519 Krakow, PolandDepartment of Thermal and Fluid Flow Machines, Faculty of Energy and Fuels, AGH University of Krakow, al. A. Mickiewicza 30, 30-059 Krakow, PolandDepartment of Thermal and Fluid Flow Machines, Faculty of Energy and Fuels, AGH University of Krakow, al. A. Mickiewicza 30, 30-059 Krakow, PolandDepartment of Thermal and Fluid Flow Machines, Faculty of Energy and Fuels, AGH University of Krakow, al. A. Mickiewicza 30, 30-059 Krakow, PolandDepartment of Thermal and Fluid Flow Machines, Faculty of Energy and Fuels, AGH University of Krakow, al. A. Mickiewicza 30, 30-059 Krakow, PolandBroadly defined climate protection is a powerful incentive in the search for environmentally friendly refrigeration technologies. Adsorption chillers are considered to be one such technology; however, their main disadvantages include a low cooling capacity, a low energy efficiency ratio (EER), and cyclic operation. Thus, a great deal of effort is being put into improving adsorption-chiller performance. In this paper, the influence of the spray angle, the number of nozzles, and the water flow rate through the nozzles on adsorption-chiller performance was investigated. Adsorption-chiller performance was investigated mainly in terms of the cooling capacity (CC), the energy efficiency ratio (EER), and the specific cooling power (SCP). The results indicated that the chiller’s cooling capacity increased from about 210 W to 316 W and that the EER increased from 0.110 to 0.167 when the spray angle of the nozzles was increased from 90° to 120°. It was also reported that increasing the flow rate of water through the nozzles did not improve the average cooling capacity or the other performance parameters but resulted in more stable operation of the chiller. Additionally, using six nozzles instead of three improved the average cooling capacity and EER tenfold.https://www.mdpi.com/1996-1073/17/5/1181adsorption chillercooling capacityenergy efficiency ratioevaporatorspray angle
spellingShingle Wojciech Kalawa
Karol Sztekler
Jakub Kozaczuk
Łukasz Mika
Ewelina Radomska
Wojciech Nowak
Andrzej Gołdasz
The Effect of Nozzle Configuration on Adsorption-Chiller Performance
adsorption chiller
cooling capacity
energy efficiency ratio
evaporator
spray angle
title The Effect of Nozzle Configuration on Adsorption-Chiller Performance
title_full The Effect of Nozzle Configuration on Adsorption-Chiller Performance
title_fullStr The Effect of Nozzle Configuration on Adsorption-Chiller Performance
title_full_unstemmed The Effect of Nozzle Configuration on Adsorption-Chiller Performance
title_short The Effect of Nozzle Configuration on Adsorption-Chiller Performance
title_sort effect of nozzle configuration on adsorption chiller performance
topic adsorption chiller
cooling capacity
energy efficiency ratio
evaporator
spray angle
url https://www.mdpi.com/1996-1073/17/5/1181
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