An adsorptive solar ice-maker dynamic simulation for north Mediterranean climate

被引:30
作者
Vasta, S. [1 ]
Maggio, G. [1 ]
Santori, G. [2 ]
Freni, A. [1 ]
Polonara, F. [2 ]
Restuccia, G. [1 ]
机构
[1] CNR, Ist Tecnol Avanzate Energia Nicola Giordano, I-98126 Messina, Italy
[2] Univ Politecn Marche, Fac Ingn, Dipartimento Energet, I-60131 Ancona, Italy
关键词
Adsorption cooling; Solar ice-maker; Climatic data; Ice-maker simulation;
D O I
10.1016/j.enconman.2008.06.020
中图分类号
O414.1 [热力学];
学科分类号
摘要
This paper presents a model for dynamic simulation of an adsorptive ice-maker. The model describes the different phases of the thermodynamic cycle of the ice-maker components: solar collector, adsorbent bed, condenser and cold chamber (evaporator and water to be frozen). The adsorbent/adsorbate working pair is active carbon/ methanol. The simulations were performed for a whole year using measured climatic data of Messina (38 degrees 12'N). The detailed results of a week of June and December 2005 are shown, as representative of typical summer and winter conditions. These simulations showed that the ice-maker is able to freeze 5 kg of water during all days of June, and, if the weather conditions are not too unfavourable, also during December. Further simulations, carried out for the whole year 2005, demonstrated that during the most part of the year (from April to October) a daily ice production (DIP) of 5 kg can be obtained, and an equivalent daily ice production (DIPeq) near to 5.5 kg can be reached. During the months of February and March the average monthly DIP is about 4 kg. Finally, for the coldest months (January, November and December) the DIP was 2.0-3.5 kg. The average monthly solar coefficient of performance (COPs) varies from a minimum of about 0.045 (July) to a maximum of 0.11 (January), with an annual mean of 0.07. (C) 2008 Elsevier Ltd. All rights reserved.
引用
收藏
页码:3025 / 3035
页数:11
相关论文
共 23 条
[1]   Design, construction and test run of a solid adsorption solar refrigerator using activated carbon/methanol, as adsorbent/adsorbate pair [J].
Anyanwu, EE ;
Ezekwe, CI .
ENERGY CONVERSION AND MANAGEMENT, 2003, 44 (18) :2879-2892
[2]   Simulation of a solid adsorption solar refrigerator using activated carbon/methanol adsorbent/refrigerant pair [J].
Anyanwu, EE ;
Oteh, UU ;
Ogueke, NV .
ENERGY CONVERSION AND MANAGEMENT, 2001, 42 (07) :899-915
[3]   Adsorptive solar powered ice maker: Experiments and model [J].
Boubakri, A ;
Guilleminot, JJ ;
Meunier, F .
SOLAR ENERGY, 2000, 69 (03) :249-263
[4]   REVERSIBLE ADSORPTION HEAT-PUMP - A THERMODYNAMIC MODEL [J].
CACCIOLA, G ;
RESTUCCIA, G .
INTERNATIONAL JOURNAL OF REFRIGERATION-REVUE INTERNATIONALE DU FROID, 1995, 18 (02) :100-106
[5]   PERFORMANCE LIMITATIONS OF ADSORPTION CYCLES FOR SOLAR COOLING [J].
CRITOPH, RE .
SOLAR ENERGY, 1988, 41 (01) :21-31
[6]   Heat and mass transfer in the adsorbent of a solar adsorption cooling system with glass tube insulation [J].
Dai, YJ ;
Sumathy, K .
ENERGY, 2003, 28 (14) :1511-1527
[7]   Literature review on solar adsorption technologies for ice-making and air-conditioning purposes and recent developments in solar technology [J].
Dieng, AO ;
Wang, RZ .
RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2001, 5 (04) :313-342
[8]   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
[9]   Simulated results of a non-valve, daily-cycled, solar-powered carbon/methanol refrigerator with a tubular solar collector [J].
Hu, EJ .
APPLIED THERMAL ENGINEERING, 1996, 16 (05) :439-445
[10]  
HU EJ, 1994, RENEW ENERG, V4, P133