Published May 2005 | Version v1
Journal article

Exergetic analysis of a double stage LiBr-H2O thermal compressor cooled by air/water and driven by low grade heat

  • 1. Instituto C.C. Eduardo Torroja (CSIC), Edificacion y Habitabilidad, C. Serrano Galvache, 4, 28033 Madrid (Spain)
  • 2. Departamento de Ingenieria Termica y de Fluidos, Universidad Carlos III de Madrid, Avda. Universidad, 30, 28911 Leganes, Madrid (Spain)
  • 3. Departamento de Mecanica Industrial, EUITI, Universidad Politecnica de Madrid, Ronda de Valencia, 3, 28012 Madrid (Spain)

Description

In the present paper, an exergetic analysis of a double stage thermal compressor using the lithium bromide-water solution is performed. The double stage system considered allows obtaining evaporation temperatures equal to 5 deg. C using solar heat coming from flat plate collectors and other low grade thermal sources. In this study, ambient air and water are alternatively used as cooling fluids without crystallization problems up to condensation-absorption temperatures equal to 50 deg. C. The results obtained give the entropy generated, the exergy destroyed and the exergetic efficiency of the double stage thermal compressor as a function of the absorption temperature. The conclusions obtained show that the irreversibilities generated by the double stage thermal compressor will tend to increase with the absorption temperature up to 45 deg. C. The maximum value corresponds to 1.35 kJ kg-1 K-1. The entropy generated and the exergy destroyed by the air cooled system are higher than those by the water cooled one. The difference between the values increases when the absorption temperature increases. For an absorption temperature equal to 50 deg. C, the air cooled mode generates 14% more entropy and destroys 14% more exergy than the water cooled one. Also, the results are compared with those of previous studies for single and double effect air cooled and water cooled thermal compressors. The conclusions show that the double stage system has about 22% less exergetic efficiency than the single effect one and 32% less exergetic efficiency than the double effect one

Additional details

Identifiers

DOI
10.1016/j.enconman.2004.06.016;
PII
S0196-8904(04)00156-6;

Publishing Information

Journal Title
Energy Conversion and Management
Journal Volume
46
Journal Issue
7-8
Journal Page Range
p. 1029-1042
ISSN
0196-8904
CODEN
ECMADL

Optional Information

Copyright
Copyright (c) 2004 Elsevier Science B.V., Amsterdam, The Netherlands, All rights reserved.