Modelling and performance study of a continuous adsorption refrigeration system driven by parabolic trough solar collector

被引:100
作者
El Fadar, A. [1 ]
Mimet, A. [1 ]
Perez-Garcia, M. [2 ]
机构
[1] Abdelmalek Essaadi Univ, Fac Sci, Energet Lab, Tetouan 93000, Morocco
[2] Univ Almeria, Dpto Fis Aplicada, Almeria, Spain
关键词
Parabolic trough collector; Adsorption; Refrigeration; Activated carbon/ammonia; Continuous cycle; Simulation; ICE-MAKER; STEAM-GENERATION; COOLING SYSTEM; DESIGN; ENERGY; HEAT; EFFICIENT; PAIR;
D O I
10.1016/j.solener.2008.12.003
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
This article suggests a numerical study of a continuous adsorption refrigeration system consisting of two adsorbent beds and powered by parabolic trough solar collector (PTC). Activated carbon as adsorbent and ammonia as refrigerant are selected. A predictive model accounting for heat balance in the solar collector components and instantaneous heat and mass transfer in adsorbent bed is presented. The validity of the theoretical model has been tested by comparison with experimental data of the temperature evolution within the adsorber during isosteric heating phase. A good agreement is obtained. The system performance is assessed in terms of specific cooling power (SCP), refrigeration cycle COP (COPcycle) and solar coefficient of performance (COPs), which were evaluated by a cycle simulation computer program. The temperature, pressure and adsorbed mass profiles in the two adsorbers have been shown. The influences of some important operating and design parameters on the system performance have been analyzed. The study has put in evidence the ability of such a system to achieve a promising performance and to overcome the intermittence of the adsorption refrigeration systems driven by solar energy. Under the climatic conditions of daily solar radiation being about 14 MJ per 0.8 m(2) (17.5 MJ/m(2)) and operating conditions of evaporating temperature, T-ev = 0 degrees C, condensing temperature, T-con = 30 degrees C and heat source temperature of 100 degrees C, the results indicate that the system could achieve a SCP of the order of 104 W/kg, a refrigeration cycle COP of 0.43, and it could produce a daily useful cooling of 2515 kJ per 0.8 m(2) of collector area, while its gross solar COP could reach 0.18. (C) 2009 Elsevier Ltd. All rights reserved.
引用
收藏
页码:850 / 861
页数:12
相关论文
共 41 条
[11]   An experimental solar-powered adsorptive refrigerator tested in Burkina-Faso [J].
Buchter, F ;
Dind, P ;
Pons, M .
INTERNATIONAL JOURNAL OF REFRIGERATION-REVUE INTERNATIONALE DU FROID, 2003, 26 (01) :79-86
[12]  
*CHEMVIRON, 1988, GRAN ACT CARB
[13]   Rapid cycling solar/biomass powered adsorption refrigeration system [J].
Critoph, RE .
RENEWABLE ENERGY, 1999, 16 (1-4) :673-678
[14]   AN AMMONIA CARBON SOLAR REFRIGERATOR FOR VACCINE COOLING [J].
CRITOPH, RE .
RENEWABLE ENERGY, 1994, 5 (1-4) :502-508
[15]  
Dubinin MM, 1971, DEV CONCEPT VOLUME F
[16]   Solar powered adsorption refrigerator with CPC collection system:: Collector design and experimental test [J].
Gonzalez, Manuel I. ;
Rodriuez, Luis R. .
ENERGY CONVERSION AND MANAGEMENT, 2007, 48 (09) :2587-2594
[17]   SOLAR POWERED SOLID ADSORPTION COLD STORE [J].
GRENIER, P ;
GUILLEMINOT, JJ ;
MEUNIER, F ;
PONS, M .
JOURNAL OF SOLAR ENERGY ENGINEERING-TRANSACTIONS OF THE ASME, 1988, 110 (03) :192-197
[18]   A new solar powered adsorption refrigerator with high performance [J].
Hildbrand, C ;
Dind, P ;
Pons, M ;
Buchter, F .
SOLAR ENERGY, 2004, 77 (03) :311-318
[19]  
*I INT FROID, 1981, TABL DIAGR IND FROID
[20]   Use of parabolic trough solar energy collectors for sea-water desalination [J].
Kalogirou, S .
APPLIED ENERGY, 1998, 60 (02) :65-88