首页 | 本学科首页   官方微博 | 高级检索  
     


Study on a dual-mode, multi-stage, multi-bed regenerative adsorption chiller
Authors:Bidyut B Saha  Shigeru Koyama  Kim Choon Ng  Yoshinori Hamamoto  Atsushi Akisawa  Takao Kashiwagi
Affiliation:aInstitute for Materials Chemistry and Engineering, Kyushu University, Kasuga-koen 6-1, Kasuga-shi, Fukuoka 816-8580, Japan;bDepartment of Mechanical Engineering, National University of Singapore, 10 Kent Ridge Crescent, Singapore 119260, Sigapore;cBio Applications and Systems Engineering, Tokyo University of Agriculture & Technology 2-24-16 Naka-machi, Koganei-shi, Tokyo 184-8588, Japan
Abstract:In this paper, a detailed parametric study on a dual-mode silica gel–water adsorption chiller is performed. This advanced adsorption chiller utilizes effectively low-temperature solar or waste heat sources of temperature between 40 and 95 °C. Two operation modes are possible for the advanced chiller. The first operation mode will be to work as a highly efficient conventional chiller where the driving source temperature is between 60 and 95 °C. The second operation mode will be to work as an advanced three-stage adsorption chiller where the available driving source temperature is very low (between 40 and 60 °C). With this very low driving source temperature in combination with a coolant at 30 °C, no other cycle except an advanced adsorption cycle with staged regeneration will be operational. In this paper, the effect of chilled-water inlet temperature, heat transfer fluid flow rates and adsorption–desorption cycle time effect on cooling capacity and COP of the dual-mode chiller is performed. Simulation results show that both cooling capacity and COP values increase with the increase of chilled water inlet temperature with driving source temperature at 50 and 80 °C in three-stage mode, and single-stage multi-bed mode, respectively. However, the delivered chilled-water temperature increases with chilled-water inlet temperature in both modes.
Keywords:Adsorption  Dual-mode  Multi-bed  Parametric study  Silica gel–  water  Solar energy utilization
本文献已被 ScienceDirect 等数据库收录!
设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号