Optimization of a Solar-Driven Trigeneration System with Nanofluid-Based Parabolic Trough Collectors

The objective of this work was to optimize and to evaluate a solar-driven trigeneration system which operates with nanofluid-based parabolic trough collectors. The trigeneration system includes an organic Rankine cycle (ORC) and an absorption heat pump operating with LiBr-H2O which is powered by the...

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Main Authors: Evangelos Bellos, Christos Tzivanidis
Format: Article
Language:English
Published: MDPI AG 2017-06-01
Series:Energies
Subjects:
Online Access:http://www.mdpi.com/1996-1073/10/7/848
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spelling doaj-ab03f095dd0d40acaf107a1e282934342020-11-24T23:02:10ZengMDPI AGEnergies1996-10732017-06-0110784810.3390/en10070848en10070848Optimization of a Solar-Driven Trigeneration System with Nanofluid-Based Parabolic Trough CollectorsEvangelos Bellos0Christos Tzivanidis1Solar Energy Laboratory, Thermal Department, School of Mechanical Engineering, National Technical University of Athens, Zografou, Heroon Polytechniou 9, Athens 15780, GreeceSolar Energy Laboratory, Thermal Department, School of Mechanical Engineering, National Technical University of Athens, Zografou, Heroon Polytechniou 9, Athens 15780, GreeceThe objective of this work was to optimize and to evaluate a solar-driven trigeneration system which operates with nanofluid-based parabolic trough collectors. The trigeneration system includes an organic Rankine cycle (ORC) and an absorption heat pump operating with LiBr-H2O which is powered by the rejected heat of the ORC. Toluene, n-octane, Octamethyltrisiloxane (MDM) and cyclohexane are the examined working fluids in the ORC. The use of CuO and Al2O3 nanoparticles in the Syltherm 800 (base fluid) is investigated in the solar field loop. The analysis is performed with Engineering Equation Solver (EES) under steady state conditions in order to give the emphasis in the exergetic optimization of the system. Except for the different working fluid investigation, the system is optimized by examining three basic operating parameters in all the cases. The pressure in the turbine inlet, the temperature in the ORC condenser and the nanofluid concentration are the optimization variables. According to the final results, the combination of toluene in the ORC with the CuO nanofluid is the optimum choice. The global maximum exergetic efficiency is 24.66% with pressure ratio is equal to 0.7605, heat rejection temperature 113.7 °C and CuO concentration 4.35%.http://www.mdpi.com/1996-1073/10/7/848solar energytrigenerationorganic Rankine cycle (ORC)absorption heat pumpheat transformernanofluidsparabolic trough collector (PTC)optimizationLiBr-H2Oexergy
collection DOAJ
language English
format Article
sources DOAJ
author Evangelos Bellos
Christos Tzivanidis
spellingShingle Evangelos Bellos
Christos Tzivanidis
Optimization of a Solar-Driven Trigeneration System with Nanofluid-Based Parabolic Trough Collectors
Energies
solar energy
trigeneration
organic Rankine cycle (ORC)
absorption heat pump
heat transformer
nanofluids
parabolic trough collector (PTC)
optimization
LiBr-H2O
exergy
author_facet Evangelos Bellos
Christos Tzivanidis
author_sort Evangelos Bellos
title Optimization of a Solar-Driven Trigeneration System with Nanofluid-Based Parabolic Trough Collectors
title_short Optimization of a Solar-Driven Trigeneration System with Nanofluid-Based Parabolic Trough Collectors
title_full Optimization of a Solar-Driven Trigeneration System with Nanofluid-Based Parabolic Trough Collectors
title_fullStr Optimization of a Solar-Driven Trigeneration System with Nanofluid-Based Parabolic Trough Collectors
title_full_unstemmed Optimization of a Solar-Driven Trigeneration System with Nanofluid-Based Parabolic Trough Collectors
title_sort optimization of a solar-driven trigeneration system with nanofluid-based parabolic trough collectors
publisher MDPI AG
series Energies
issn 1996-1073
publishDate 2017-06-01
description The objective of this work was to optimize and to evaluate a solar-driven trigeneration system which operates with nanofluid-based parabolic trough collectors. The trigeneration system includes an organic Rankine cycle (ORC) and an absorption heat pump operating with LiBr-H2O which is powered by the rejected heat of the ORC. Toluene, n-octane, Octamethyltrisiloxane (MDM) and cyclohexane are the examined working fluids in the ORC. The use of CuO and Al2O3 nanoparticles in the Syltherm 800 (base fluid) is investigated in the solar field loop. The analysis is performed with Engineering Equation Solver (EES) under steady state conditions in order to give the emphasis in the exergetic optimization of the system. Except for the different working fluid investigation, the system is optimized by examining three basic operating parameters in all the cases. The pressure in the turbine inlet, the temperature in the ORC condenser and the nanofluid concentration are the optimization variables. According to the final results, the combination of toluene in the ORC with the CuO nanofluid is the optimum choice. The global maximum exergetic efficiency is 24.66% with pressure ratio is equal to 0.7605, heat rejection temperature 113.7 °C and CuO concentration 4.35%.
topic solar energy
trigeneration
organic Rankine cycle (ORC)
absorption heat pump
heat transformer
nanofluids
parabolic trough collector (PTC)
optimization
LiBr-H2O
exergy
url http://www.mdpi.com/1996-1073/10/7/848
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AT christostzivanidis optimizationofasolardriventrigenerationsystemwithnanofluidbasedparabolictroughcollectors
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