Latent thermal storage for air conditioning

1987 ◽  
Vol 8 (4) ◽  
pp. 97-103 ◽  
Author(s):  
David Arnold
2015 ◽  
Vol 19 (sup5) ◽  
pp. S5-983-S5-987 ◽  
Author(s):  
G. Feng ◽  
X. Xu ◽  
G. Li ◽  
H. Li ◽  
K. Huang

Author(s):  
Vivek Vishwakarma ◽  
Nitin Singhal ◽  
Vikrant Khullar ◽  
Himanshu Tyagi ◽  
Robert A. Taylor ◽  
...  

A solar-energy based vapor absorption refrigeration system is potentially an excellent alternative air-conditioning system. However, there are several research challenges to ensure sufficient efficiency and reliability for ensuring widespread implementation. Integration of a parabolic trough solar collector utilizing a mixture of nanoparticles and water with a vapor absorption system has the potential to significantly enhance the efficiency of the system. Such a system makes use of the superior thermo-physical properties of the nanofluid compared to the base fluid. Moreover, the direct absorption phenomenon of solar radiation through interaction with the participating medium (nanofluid) results in a higher temperature rise of the medium in conjunction with higher operating efficiencies as well. At the same time there are certain challenges that need to be identified and addressed in the implementation of this novel concept. For instance, to make it reliable, the system further needs to be integrated with a thermal storage system which facilitates air-conditioning even during non-sunshine hours. Integration of vapor absorption refrigeration technology, parabolic trough with water-nanoparticles mixture as the absorbing medium and a thermal storage facility is the uniqueness of this design which under certain conditions and locations may prove to be an efficient and reliable substitute to the conventional electrical air-conditioning systems. In this particular study a space cooling application for approximately 100 Tons of refrigeration is studied. Hourly variation in sunlight as well as seasonal changes for temperate climate conditions is considered. Parameters such as the cooling load of the space, and waste heat produced by electronics are evaluated. The cooling system driven by the nanofluid-based concentrated parabolic solar collector is mathematical modeled and then the optimization is done by varying the nanoparticle size and volume fraction in order to obtain the best result for collector outlet temperature, thermal efficiency and optical efficiency.


2013 ◽  
Vol 112 ◽  
pp. 160-169 ◽  
Author(s):  
Evan Fleming ◽  
Shaoyi Wen ◽  
Li Shi ◽  
Alexandre K. da Silva

2004 ◽  
Vol 29 (12) ◽  
pp. 1991-1996 ◽  
Author(s):  
H.O. Paksoy ◽  
Z. Gürbüz ◽  
B. Turgut ◽  
D. Dikici ◽  
H. Evliya

2016 ◽  
Vol 78 (5-8) ◽  
Author(s):  
Norhafizah Ahmad Junaidi ◽  
Tohru Suwa

Solar energy is an attractive energy source among various renewable energy resources in Malaysia as relatively high solar radiation is available throughout the year. This solar energy can be utilized for air-conditioning by using solar-powered adsorption refrigeration cycle. Intermittent nature of the solar radiation leads to a challenge for continuous air-conditioning operation. In the present study, a combination of solar-powered adsorption refrigeration system and thermal storage is studied. Activated carbon-ammonia and activated carbon-methanol are the working pairs of the adsorption reaction. Analytical calculation results show that activated carbon-methanol pair indicates higher coefficient of performance (COP) than activated carbon-ammonia pair, while adsorption chiller system with hot water thermal storage has higher COP than the system with ice thermal storage. For the activated carbon-methanol case with hot water thermal storage, the COP is 0.79. Since this COP analysis is based on the ideal case with uniform temperature distribution within the reactor beds, which achieves equilibrium states at the end of the reactions. In more realistic situation, the reaction process will be terminated before reaching to the equilibrium states because of the non-uniform temperature distribution and the time required for the reaction. Transient simulation in which heat transfer and reaction equation are combined will be performed to model actual reactors.


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