Performance Analysis of a Double-effect Adsorption Refrigeration Cycle with a Silica Gel/Water Working Pair

A numerical investigation of the double-effect adsorption refrigeration cycle is examined in this manuscript. The proposed cycle is based on the cascading adsorption cycle, where condensation heat that is produced in the top cycle is utilized as the driving heat source for the bottom cycle. The resu...

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Main Authors: Atsushi Akisawa, Takahiko Miyazaki, Yuki Ueda, Marlinda, Aep Saepul Uyun
Format: Article
Language:English
Published: MDPI AG 2010-10-01
Series:Energies
Subjects:
Online Access:http://www.mdpi.com/1996-1073/3/11/1704/
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spelling doaj-b72273e08f3a47daa0d1ac14b07971302020-11-24T23:54:47ZengMDPI AGEnergies1996-10732010-10-013111704172010.3390/en3111704Performance Analysis of a Double-effect Adsorption Refrigeration Cycle with a Silica Gel/Water Working PairAtsushi AkisawaTakahiko MiyazakiYuki UedaMarlindaAep Saepul UyunA numerical investigation of the double-effect adsorption refrigeration cycle is examined in this manuscript. The proposed cycle is based on the cascading adsorption cycle, where condensation heat that is produced in the top cycle is utilized as the driving heat source for the bottom cycle. The results show that the double-effect cycle produces a higher coefficient of performance (COP) as compared to that of the conventional single-stage cycle for driving temperatures between 100 °C and 150 °C in which the average cycle chilled water temperature is fixed at 9 °C. Moreover, the COP of the double-effect cycle is more than twice that of the single-stage cycle when the temperature reaches 130 °C. It is also observed that the adsorbent mass ratio of the high temperature cycle (HTC) to the low temperature cycle (LTC) affects the performance of the double-effect adsorption refrigeration cycle. http://www.mdpi.com/1996-1073/3/11/1704/cascading cyclecondensation heatperformance
collection DOAJ
language English
format Article
sources DOAJ
author Atsushi Akisawa
Takahiko Miyazaki
Yuki Ueda
Marlinda
Aep Saepul Uyun
spellingShingle Atsushi Akisawa
Takahiko Miyazaki
Yuki Ueda
Marlinda
Aep Saepul Uyun
Performance Analysis of a Double-effect Adsorption Refrigeration Cycle with a Silica Gel/Water Working Pair
Energies
cascading cycle
condensation heat
performance
author_facet Atsushi Akisawa
Takahiko Miyazaki
Yuki Ueda
Marlinda
Aep Saepul Uyun
author_sort Atsushi Akisawa
title Performance Analysis of a Double-effect Adsorption Refrigeration Cycle with a Silica Gel/Water Working Pair
title_short Performance Analysis of a Double-effect Adsorption Refrigeration Cycle with a Silica Gel/Water Working Pair
title_full Performance Analysis of a Double-effect Adsorption Refrigeration Cycle with a Silica Gel/Water Working Pair
title_fullStr Performance Analysis of a Double-effect Adsorption Refrigeration Cycle with a Silica Gel/Water Working Pair
title_full_unstemmed Performance Analysis of a Double-effect Adsorption Refrigeration Cycle with a Silica Gel/Water Working Pair
title_sort performance analysis of a double-effect adsorption refrigeration cycle with a silica gel/water working pair
publisher MDPI AG
series Energies
issn 1996-1073
publishDate 2010-10-01
description A numerical investigation of the double-effect adsorption refrigeration cycle is examined in this manuscript. The proposed cycle is based on the cascading adsorption cycle, where condensation heat that is produced in the top cycle is utilized as the driving heat source for the bottom cycle. The results show that the double-effect cycle produces a higher coefficient of performance (COP) as compared to that of the conventional single-stage cycle for driving temperatures between 100 °C and 150 °C in which the average cycle chilled water temperature is fixed at 9 °C. Moreover, the COP of the double-effect cycle is more than twice that of the single-stage cycle when the temperature reaches 130 °C. It is also observed that the adsorbent mass ratio of the high temperature cycle (HTC) to the low temperature cycle (LTC) affects the performance of the double-effect adsorption refrigeration cycle.
topic cascading cycle
condensation heat
performance
url http://www.mdpi.com/1996-1073/3/11/1704/
work_keys_str_mv AT atsushiakisawa performanceanalysisofadoubleeffectadsorptionrefrigerationcyclewithasilicagelwaterworkingpair
AT takahikomiyazaki performanceanalysisofadoubleeffectadsorptionrefrigerationcyclewithasilicagelwaterworkingpair
AT yukiueda performanceanalysisofadoubleeffectadsorptionrefrigerationcyclewithasilicagelwaterworkingpair
AT marlinda performanceanalysisofadoubleeffectadsorptionrefrigerationcyclewithasilicagelwaterworkingpair
AT aepsaepuluyun performanceanalysisofadoubleeffectadsorptionrefrigerationcyclewithasilicagelwaterworkingpair
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