Extended exergy analysis of a novel integrated absorptional cooling system design without utilization of generator for economical and robust provision of higher cooling demands

dc.contributor.author Asli Tiktas
dc.contributor.author Huseyin Gunerhan
dc.contributor.author Arif Hepbasli
dc.contributor.author Emin Acikkalp
dc.date MAY 1
dc.date.accessioned 2025-10-06T16:23:28Z
dc.date.issued 2024
dc.description.abstract The focus of this study is on designing a novel system for the provision of high-capacity cooling and heating loads (4000 kW) with the utilization of absorption technology to increase economic viability and COP value of existing cooling plants via lower-grade waste heat sources (70 degrees C-90 degrees C). To achieve this aim in the novel system an integration including the LiBr-water solution based absorptional heat transformer (AHT) and absorptional cooling cycle (ACC) and flat plate solar collector (FPSC) systems was proposed. In the integration the utilization of the generator in the cooling cycle was avoided with the interaction of the high-temperature LiBr-water solution (120 degrees C-150 degrees C) from the AHT system and ACC system evaporator. In this way both the additional cost of the boiler and heat source and the enhancement of economic viability and COP value were achieved. Energy economic traditional and extended exergy sustainability and environmental analyses were implemented in this novel system. The COP value for the cooling system was determined to be 3.10 from energy analysis. This result forms a significant indicator for achieving of the main focus of the current study with the proposed novel system. The annual heating and cooling duty generations with this novel system were computed as 52.37 GWh and 52.40 GWh respectively. In the context of economically comparing the proposed system to other plants with similar scale that already exist the initial overall expenditure yearly operational expenses and the time it takes to recover the investment for the proposed system were set at $4.56 million $3.12 million and 1.75 years respectively. It is worth noting though that these figures fall within the range of $6 - 8 million $5 - 7 million and 5 - 10 years respectively for the currently operational plants. This result indicated that the proposed system provides a robust alternative to the existing cooling-heating cogeneration systems in terms of main output generation and is more economically viable. Also the novel system gained annually US$3.89 million in energy costs. The conventional exergy analysis results were summarized by forming an exergy flow and loss diagram namely the Grassmann diagram. In addition in this current study the novel extended exergy flow diagram indicating extended exergy content components energy carriers of the proposed system and exergy product rate streams was also proposed and drawn for the proposed system.
dc.identifier.doi 10.1016/j.enconman.2024.118350
dc.identifier.issn 0196-8904
dc.identifier.uri http://dx.doi.org/10.1016/j.enconman.2024.118350
dc.identifier.uri https://gcris.yasar.edu.tr/handle/123456789/7837
dc.language.iso English
dc.publisher PERGAMON-ELSEVIER SCIENCE LTD
dc.relation.ispartof Energy Conversion and Management
dc.source ENERGY CONVERSION AND MANAGEMENT
dc.subject Absorptional cooling cycle, Solar energy, Absorptional heat transformer, Extended exergy analysis, Environmental impact assessment
dc.subject POWER, PLANT, WATER, CYCLE
dc.title Extended exergy analysis of a novel integrated absorptional cooling system design without utilization of generator for economical and robust provision of higher cooling demands
dc.type Article
dspace.entity.type Publication
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gdc.coar.type text::journal::journal article
gdc.collaboration.industrial false
gdc.description.startpage 118350
gdc.description.volume 307
gdc.identifier.openalex W4393332475
gdc.index.type WoS
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gdc.oaire.impulse 12.0
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gdc.oaire.keywords Environmental Impact Assessment
gdc.oaire.keywords Extended Exergy Analysis
gdc.oaire.keywords Solar Energy
gdc.oaire.keywords Absorptional Heat Transformer
gdc.oaire.keywords Absorptional Cooling Cycle
gdc.oaire.keywords Absorptional cooling cycle
gdc.oaire.keywords Solar energy
gdc.oaire.keywords Extended exergy analysis
gdc.oaire.keywords Environmental impact assessment
gdc.oaire.keywords Absorptional heat transformer
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gdc.opencitations.count 6
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person.identifier.orcid TIKTAS- Asli/0000-0003-3685-5134,
publicationvolume.volumeNumber 307
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