Abstract
Supercritical-CO2(S-CO2) cycle systems have appeared as an attractive option for waste-heat recovery from internal combustion engines (ICEs) thanks to the advantages offered by CO2as a working fluid, which is nontoxic and non-flammable, and does not suffer decomposition at high temperatures. Since the high density of CO2in the supercritical region enables compact component design, various S-CO2cycle system configurations have been presented involving different layouts and combinations of heat exchangers with which to enhance heat recovery from both engine exhaust gases and jacket water streams. Despite the thermodynamic performance improvement offered by more complex configurations, the additional heat exchangers bring extra costs and therefore key thermo-economic decisions need to be considered carefully during the design and development of such systems. This paper seeks to conduct both thermodynamic and economic (cost) assessments of a variety of S-CO2cycle system configurations in ICE waste-heat recovery applications, with results indicating that in some cases a significant thermodynamic performance improvement can compensate the extra costs associated with a more complex system structure. The comparison results across a range of ICEs can also be a valuable guide for the early-stage S-CO2cycle system design in ICE waste-heat recovery and other similar applications.
Original language | English |
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Title of host publication | 33rd International Conference on Efficiency, Cost, Optimization, Simulation and Environmental Impact of Energy Systems, ECOS 2020 |
Pages | 531-541 |
Number of pages | 11 |
Publication status | Published - 2020 |
Event | 33rd International Conference on Efficiency, Cost, Optimization, Simulation and Environmental Impact of Energy Systems, ECOS 2020 - Osaka, Japan Duration: 29 Jun 2020 → 3 Jul 2020 |
Conference
Conference | 33rd International Conference on Efficiency, Cost, Optimization, Simulation and Environmental Impact of Energy Systems, ECOS 2020 |
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Country/Territory | Japan |
City | Osaka |
Period | 29/06/20 → 3/07/20 |
Bibliographical note
Publisher Copyright:© ECOS 2020.All right reserved.
Keywords
- Configurations
- ICE waste-heat recovery
- Performance assessment
- Supercritical CO
- Thermo-economic
ASJC Scopus subject areas
- General Energy
- General Engineering
- General Environmental Science