Title :
Thermodynamic analysis of adsorption refrigeration cycles
Author :
Saha, Bidyut Baran ; Akisawa, Atsushi ; Kashiwagi, Takao
Author_Institution :
Dept. of Mech. Syst. Eng., Tokyo Univ. of Agric. & Technol., Japan
fDate :
27 Jul-1 Aug 1997
Abstract :
High- and mid-temperature waste heat can be recovered by using existing heat pump technologies. However, heat utilization near environmental temperatures still faces technical hurdles. Silica gel-water adsorption cycles have a distinct advantage over other systems in their ability to be driven by near-ambient temperature heat. Waste heat (above 60°C) can be exploited by using conventional silica gel-water adsorption chiller. The advanced silica-gel-water adsorption chiller can operate effectively by utilizing low-grade waste heat (~50°C) as the driving source with a cooling source of 30°C. In this paper, the effect of operating temperatures on cycle performance is discussed from the thermodynamic viewpoint. The temperature effectiveness and the entropy generation number on cycle time are analyzed. For a comparatively short cycle time, adsorber/desorber heat exchanger temperature effectiveness reaches up to 92% after only 200 sec. The entropy generation number Ns is defined by the ratio between irreversibility generated during a cycle and availability of the heat transfer fluid. The result showed that for the advanced adsorption cycle the entropy generation number Ns is smaller for hot water temperature between 45 to 55°C with a cooling source of 30°C, while for the conventional cycle Ns is smaller for hot water temperature between 65 to 75°C with the same cooling source temperature
Keywords :
adsorption; cooling; entropy; heat pumps; refrigeration; silicon compounds; thermal analysis; thermodynamics; water; SiO2-H2O; adsorption refrigeration cycles; advanced adsorption cycle; cooling source; cooling source temperature; cycle performance; entropy generation; entropy generation number; environmental temperatures; heat pump; heat transfer fluid; heat utilization; hot water temperature; low-grade waste heat; near-ambient temperature heat; operating temperatures effect; silica gel-water adsorption chiller; silica gel-water adsorption cycles; thermodynamic analysis; thermodynamic viewpoint; waste heat recovery; Cooling; Entropy; Heat pumps; Heat recovery; Refrigeration; Silicon compounds; Temperature; Thermodynamics; Waste heat; Water resources;
Conference_Titel :
Energy Conversion Engineering Conference, 1997. IECEC-97., Proceedings of the 32nd Intersociety
Conference_Location :
Honolulu, HI
Print_ISBN :
0-7803-4515-0
DOI :
10.1109/IECEC.1997.661949