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Energy and Exergy Analysis of Solar Organic Rankine Cycle Coupled with Vapor Compression Refrigeration Cycle
by
Kim, Man-Hoe
in
Air conditioning
/ Alternative energy sources
/ combined ORC–VCC system
/ Cooling
/ COP
/ Design
/ Electricity generation
/ Energy efficiency
/ Energy resources
/ Environmental impact
/ Fluids
/ Heat
/ organic Rankine cycle (ORC)
/ Renewable resources
/ second-law efficiency
/ Software
/ Solar energy
/ thermal efficiency
/ vapor compression cycle (VCC)
2022
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Energy and Exergy Analysis of Solar Organic Rankine Cycle Coupled with Vapor Compression Refrigeration Cycle
by
Kim, Man-Hoe
in
Air conditioning
/ Alternative energy sources
/ combined ORC–VCC system
/ Cooling
/ COP
/ Design
/ Electricity generation
/ Energy efficiency
/ Energy resources
/ Environmental impact
/ Fluids
/ Heat
/ organic Rankine cycle (ORC)
/ Renewable resources
/ second-law efficiency
/ Software
/ Solar energy
/ thermal efficiency
/ vapor compression cycle (VCC)
2022
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Do you wish to request the book?
Energy and Exergy Analysis of Solar Organic Rankine Cycle Coupled with Vapor Compression Refrigeration Cycle
by
Kim, Man-Hoe
in
Air conditioning
/ Alternative energy sources
/ combined ORC–VCC system
/ Cooling
/ COP
/ Design
/ Electricity generation
/ Energy efficiency
/ Energy resources
/ Environmental impact
/ Fluids
/ Heat
/ organic Rankine cycle (ORC)
/ Renewable resources
/ second-law efficiency
/ Software
/ Solar energy
/ thermal efficiency
/ vapor compression cycle (VCC)
2022
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Energy and Exergy Analysis of Solar Organic Rankine Cycle Coupled with Vapor Compression Refrigeration Cycle
Journal Article
Energy and Exergy Analysis of Solar Organic Rankine Cycle Coupled with Vapor Compression Refrigeration Cycle
2022
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Overview
This study investigates a combined power generation and cooling system comprising an organic Rankine cycle (ORC) and a vapor compression cycle (VCC). Thermodynamic analyses of the system were conducted for two operation modes, i.e., the basic ORC mode and the ORC–VCC mode, using six different working fluids: R245fa, R114, R600, R142b, R152a, and R1234yf. The results showed that the thermal efficiency of the combined ORC–VCC system was almost twice that of the basic ORC system. The effects of thermodynamic parameters, such as the turbine inlet temperature and pressure and the condensing temperature, on the system performance were discussed. The second-law efficiency, cooling capacity, and coefficient of performance were addressed by varying the condensing temperature.
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