Experimental Evaluation of Solar/Gas Hybrid-Powered Absorption Air Conditioning System

Authors

  • Talib Onimisi Ahmadu Department of mechanical engineering, Ahmadu Bello University, Zaria

Keywords:

solar energy, absorption, liquefied petroleum gas, air conditioning system, experimental evaluation, cooling.

Abstract

Energy is a vital need of all humans. Space air conditioning using conventional vapour compression systems usually leads to high electricity consumption. There is also the need to safe guard the environment from the harmful emissions of refrigerants used by these systems. In this study an absorption air conditioning system of 3 kW capacity, operating on the lithium bromide/ water pair was constructed and experimented on a test room. The test scale facility is a hybrid absorption cooling system whose thermal energy requirement was provided by solar energy and an auxiliary Liquefied Petroleum Gas (LPG) burner. Experimental tests were conducted in Zaria in the months of April and June, with each experimental day lasting 9 hours. The peak cooling energy demand of the test room was 1.3 kWh. Results from the experiments conducted showed the absorption air conditioning system was able to attain a peak cooling output of 1.5 kW. Maximum Coefficient of Performance (COP) of 0.437 and 0.439 were recorded in the experimental days of April and June respectively. The system achieved space cooling temperatures within 24oC to 27oC. Solar fractions of 0.61 was recorded in April and 0.27 was recorded in June.

References

Balghouthi, M.; M. H. Chahbani and A. Guizani. (2012). Investigation of a solar cooling installation in Tunisia. Applied energy, 98: 138 – 148.
Bermejo, P.; F. Pino and F. Rosa. (2010). Solar absorption cooling plant in Seville. Solar energy, 54: 1503 – 1512.
Blackman, C.; C. Bales and E. Thorin. (2015). Techno – economic evaluation of solar – assisted heating and cooling systems with sorption module integrated solar collectors. Energy procedia, 70: 409 – 417.
Bolocan, S.; F. Chiriac; A. Serban and G. Dragomir. (2015). Development of a small capacity solar cooling absorption plant. Energy procedia, 74: 624 – 632.
Demirel, Y. (2012). Energy, green energy and technology. Springer – Verlag, London ltd. Assessed from www.springer.com/cda/content on April 7, 2017.
Duffie,J.A. and Beckman, W.A. (2013). Solar engineering of thermal processes. 4th Edition John Wiley and sons incorporation.
Eke, A. B. (2011). Prediction of optimum angle of inclination for flat plate solar collector in Zaria. CIGR Journal, 2: 1 - 10.
Franchini, G.; E. Notarbartolo; L. Padovan and A. Perdichizzi. (2015). Modelling, design and construction of a micro scale absorption chiller. Energy procedia 82: 577 – 583.
Gonzalez – Gil, A.; M. Izquierdo; J. D. Marcos and D. Palicios. (2011). Experimental evaluation of a direct air cooled Lithium Bromide – water absorption prototype for solar air conditioning. Applied thermal engineering (31), 3358 – 3368.
Henning, H. (2007). Solar assisted air – conditioning of buildings, an overview. Applied thermal engineering, 27: 1734 – 49.
Kalkan, N.; E. A. Young and A. Celiktas. (2012). Solar thermal air conditioning technology reducing the foot print of solar thermal air conditioning. Renewable and sustainable energy reviews, 16: 6352 – 83.
Ketjoy, N.; R. Yongphayoon and K. Mansiri. (2013). Performance evaluation of a 35KW lithium bromide – water solar absorption cooling system in Thailand. Energy procedia, 34: 198 – 210.
Oyedepo, S. O. (2012). Energy and sustainable development in Nigeria: the way forward. Energy, Sustainability and Society. Springer open journal, 2(15): 1 – 17.
Sarbu, I. and Sebarchievici, C. (2015). General review of solar powered close sorption refrigeration systems. Energy conversion and management, 105: 403 – 442.
Sun, H.; Z. Y. Xu; H. Wang and R. Wang. (2015). A solar/gas fired absorption system for cooling and heating in a commercial building. Energy procedia, 70: 518 – 528.
Winston, R.; L. Jiang and B. Widyolar. (2014). Performance of a 23kW solar thermal cooling system employing a double effect absorption chiller and thermodynamically efficient non tracking concentrators. Energy procedia, 48: 1036 - 1046.
Yin, Y. L.; X. Q. Zhai and R. Z. Wang. (2013). Experimental investigation and performance analysis of a mini type solar absorption cooling system. Applied thermal energy, 59: 267 – 277.

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Published

2019-09-21

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