A dynamic multi-level model for adsorptive solar cooling

Giulio Santori*, Alessio Sapienza, Angelo Freni

*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

Abstract

This paper focuses on the development of a dynamic multi-level model for simulating of a solar cooling system adopting an adsorption chiller. The model integrates detailed simulation of the adsorption cycle (component level) into the transient simulation of the solar cooling system (system level). The chiller investigated was a standard two bed silica gel/water unit. The model was used to ascertain the feasibility of solar-driven adsorption cooling and for optimization purposes. In the base case simulated, the adsorption chiller cooled down the outdoor air to 16.1 degrees C. The daily average COP of the chiller was 0.18. Consequently, a spectral analysis was performed on these data for identification of the correlation among the variables involved in the solar cooling system in order to study the effects of the input parameters on the outputs. The outcomes were that the COP depends mainly on Tev > Qcond > Qcool > Qheat and the thermal power delivered to the hot storage unit correlates Tz1 > Tc.

Original languageEnglish
Pages (from-to)301-312
Number of pages12
JournalRenewable Energy
Volume43
DOIs
Publication statusPublished - Jul 2012

Keywords

  • Solar cooling
  • Adsorption
  • Dynamic model
  • Silica gel
  • Refrigeration
  • Spectral analysis
  • VARIABLE HEAT-SOURCE
  • CHILLER
  • PERFORMANCE
  • SYSTEM
  • DRIVEN
  • MULTISTAGE
  • PARAMETER

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