Space cooling using geothermal single‐effect water/lithium bromide absorption chiller
Abstract This research is proposed to fully investigate the performance of a single‐effect water/lithium bromide absorption chiller driven by geothermal energy. Since absorption cycles are considered as low‐grade energy cycles, this innovative idea of rejecting fluid from a single‐flash geothermal p...
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Online Access: | https://doi.org/10.1002/ese3.946 |
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doaj-cc13dfe60d3743d9b0733e8a80c4dec12021-10-03T06:34:54ZengWileyEnergy Science & Engineering2050-05052021-10-019101747176010.1002/ese3.946Space cooling using geothermal single‐effect water/lithium bromide absorption chillerMamdouh El Haj Assad0Milad Sadeghzadeh1Mohammad Hossein Ahmadi2Mohammad Al‐Shabi3Mona Albawab4Amjad Anvari‐Moghaddam5Ehab Bani Hani6Sustainable and Renewable Energy Engineering Department University of Sharjah Sharjah UAEDepartment of Renewable Energy and Environmental Engineering University of Tehran Tehran IranFaculty of Mechanical Engineering Shahrood University of Technology Shahrood IranMechanical Engineering Department University of Sharjah Sharjah UAESustainable and Renewable Energy Engineering Department University of Sharjah Sharjah UAEDepartment of Energy Aalborg University AalborgDenmarkSchool of Engineering Mechanical Engineering Department Australian College of Kuwait Mishref KuwaitAbstract This research is proposed to fully investigate the performance of a single‐effect water/lithium bromide absorption chiller driven by geothermal energy. Since absorption cycles are considered as low‐grade energy cycles, this innovative idea of rejecting fluid from a single‐flash geothermal power plant with low‐grade energy would serve as efficient, economical, and promising technology. In order to examine the feasibility of this approach, a residential building which is located in Sharjah, UAE, considered to evaluate its cooling capacity of 39 kW which is calculated using MATLAB software. Based on the obtained cooling load, modeling of the required water/lithium bromide single‐effect absorption chiller machine is implemented and discussed. A detailed performance analysis of the proposed model under different conditions is performed using Engineering Equation Solver software (EES). Based on the obtained results, the major factors in the design of the proposed system are the size of the heat exchangers and the input heat source temperature. The results are presented graphically to find out the geofluid temperature and mass flow and solution heat exchanger effectiveness effects on the chiller thermal performance. Moreover, the effects of the size of all components of the absorption chiller on the cooling load to meet the space heating are presented. The thermal efficiency of the single‐flash geothermal power plant is about 13% when the power plant is at production well temperature 250℃, separator pressure 0.24 MPa, and condenser pressure 7.5 kPa. The results show that the coefficient of performance (COP) reaches about 0.87 at solution heat exchanger effectiveness of 0.9, when the geofluid temperature is 120℃.https://doi.org/10.1002/ese3.946absorption chillergeothermal power plantlithium bromidespace cooling |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Mamdouh El Haj Assad Milad Sadeghzadeh Mohammad Hossein Ahmadi Mohammad Al‐Shabi Mona Albawab Amjad Anvari‐Moghaddam Ehab Bani Hani |
spellingShingle |
Mamdouh El Haj Assad Milad Sadeghzadeh Mohammad Hossein Ahmadi Mohammad Al‐Shabi Mona Albawab Amjad Anvari‐Moghaddam Ehab Bani Hani Space cooling using geothermal single‐effect water/lithium bromide absorption chiller Energy Science & Engineering absorption chiller geothermal power plant lithium bromide space cooling |
author_facet |
Mamdouh El Haj Assad Milad Sadeghzadeh Mohammad Hossein Ahmadi Mohammad Al‐Shabi Mona Albawab Amjad Anvari‐Moghaddam Ehab Bani Hani |
author_sort |
Mamdouh El Haj Assad |
title |
Space cooling using geothermal single‐effect water/lithium bromide absorption chiller |
title_short |
Space cooling using geothermal single‐effect water/lithium bromide absorption chiller |
title_full |
Space cooling using geothermal single‐effect water/lithium bromide absorption chiller |
title_fullStr |
Space cooling using geothermal single‐effect water/lithium bromide absorption chiller |
title_full_unstemmed |
Space cooling using geothermal single‐effect water/lithium bromide absorption chiller |
title_sort |
space cooling using geothermal single‐effect water/lithium bromide absorption chiller |
publisher |
Wiley |
series |
Energy Science & Engineering |
issn |
2050-0505 |
publishDate |
2021-10-01 |
description |
Abstract This research is proposed to fully investigate the performance of a single‐effect water/lithium bromide absorption chiller driven by geothermal energy. Since absorption cycles are considered as low‐grade energy cycles, this innovative idea of rejecting fluid from a single‐flash geothermal power plant with low‐grade energy would serve as efficient, economical, and promising technology. In order to examine the feasibility of this approach, a residential building which is located in Sharjah, UAE, considered to evaluate its cooling capacity of 39 kW which is calculated using MATLAB software. Based on the obtained cooling load, modeling of the required water/lithium bromide single‐effect absorption chiller machine is implemented and discussed. A detailed performance analysis of the proposed model under different conditions is performed using Engineering Equation Solver software (EES). Based on the obtained results, the major factors in the design of the proposed system are the size of the heat exchangers and the input heat source temperature. The results are presented graphically to find out the geofluid temperature and mass flow and solution heat exchanger effectiveness effects on the chiller thermal performance. Moreover, the effects of the size of all components of the absorption chiller on the cooling load to meet the space heating are presented. The thermal efficiency of the single‐flash geothermal power plant is about 13% when the power plant is at production well temperature 250℃, separator pressure 0.24 MPa, and condenser pressure 7.5 kPa. The results show that the coefficient of performance (COP) reaches about 0.87 at solution heat exchanger effectiveness of 0.9, when the geofluid temperature is 120℃. |
topic |
absorption chiller geothermal power plant lithium bromide space cooling |
url |
https://doi.org/10.1002/ese3.946 |
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