Heat and mass transfer during adsorption of ammonia in a cylindrical adsorbent bed: thermal performance study of a combined parabolic solar collector, water heat pipe and adsorber generator assembly

被引:33
作者
Aghbalou, F
Mimet, A
Badia, F
Illa, J
El Bouardi, A
Bougard, J
机构
[1] Univ Lleida, Dept Comp & Ind Engn, Lleida 25001, Spain
[2] Fac Sci, Energet & Fluid Mech Lab, Tetouan 39000, Morocco
[3] Univ Lleida, Dept Soil & Environm Sci, Lleida 25001, Spain
[4] Abdelmalek Essaadi Univ, Fac Sci, Thermal Solar Energy & Environm Lab, Tetouan 93000, Morocco
[5] Fac Polytech Mons, Solar Energy Res Ctr, B-7000 Mons, Belgium
[6] Univ Brussels, B-7000 Mons, Belgium
关键词
solar energy; refrigeration; adsorption; activated carbon-ammonia; heat pipe;
D O I
10.1016/j.applthermaleng.2004.04.009
中图分类号
O414.1 [热力学];
学科分类号
摘要
In this paper we present the study of adsorption refrigerator which use an activated carbon-pair ammonia. The ability of activated carbons to adsorb large mass of ammonia makes them ideal for use in adsorption refrigeration and pump systems. These systems have not reasonable efficiency. In order to make these systems economically viable, their size must be reduced. This implies a need for a rapid heating and cooling the adsorbent/refrigerant pair. However, the main problems to be overcome is related to the poor heat transfer in the adsorbent bed. So, it is necessary to study and understand the heat and mass transfer within the bed and to improve it. A detailed model of heat and mass transfer into the generator has been developed. For a given heat flux, temperature and adsorbed mass have been computed in every point at each step time along the adsorbed bed (generator). Experimental installation simulating an adsorption machine working within a temperature ranging from 20 to 250 degreesC and pressure ranging from 0 to 2.5 x 10(6) Pa, allows for identification of the generator's equivalent thermal conductivity and internal heat transfer coefficient. These two parameters are then used to simulate thermal performance of a design whose features include the insertion of stainless steel water heat pipe (HP's) condensers into the generator. The HP's evaporator heat input is of solar origin using a compound parabolic collector (CPC). Nominal Solar coefficient of performance, COPs = 14.37% obtained through both Adimensional Exergy Loss (AEL), and COP study, shows the competitiveness of the proposed design. (C) 2004 Elsevier Ltd. All rights reserved.
引用
收藏
页码:2537 / 2555
页数:19
相关论文
共 24 条
[1]  
AGHBALOU F, 1998, INT J RENEWABLE ENER, V14, P60
[2]  
AGHBALOU F, 1997, P INT THERM EN ENV C, V2, P867
[3]  
ALMERS A, 2002, THESIS FAC SCI TETOU
[4]   THEORY OF VOLUME FILLING FOR VAPOR ADSORPTION [J].
BERING, BP ;
DUBININ, MM ;
SERPINSKY, VV .
JOURNAL OF COLLOID AND INTERFACE SCIENCE, 1966, 21 (04) :378-+
[5]  
*CHEMV, 1988, CRAN ACT CARB
[6]   EFFECT OF HEAT-GENERATION ON MEASUREMENT OF ADSORPTION RATE BY GRAVIMETRIC METHOD [J].
CHIHARA, K ;
SUZUKI, M ;
KAWAZOE, K .
CHEMICAL ENGINEERING SCIENCE, 1976, 31 (06) :505-507
[7]   HEAT-TRANSFER IN GRANULAR ACTIVATED CARBON BEDS IN THE PRESENCE OF ADSORBABLE GASES [J].
CRITOPH, RE ;
TURNER, L .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 1995, 38 (09) :1577-1585
[8]   Specific cooling power intensification limits in ammonia-carbon adsorption refrigeration systems [J].
Critoph, RE ;
Metcalf, SJ .
APPLIED THERMAL ENGINEERING, 2004, 24 (5-6) :661-678
[9]   ACTIVATED CARBON ADSORPTION CYCLES FOR REFRIGERATION AND HEAT PUMPING [J].
CRITOPH, RE .
CARBON, 1989, 27 (01) :63-70
[10]  
CRITOPH RE, 1986, INT J SOLAR ENERGY, V41, P21