LAPSE:2023.23819
Published Article

LAPSE:2023.23819
Power Optimization of a Modified Closed Binary Brayton Cycle with Two Isothermal Heating Processes and Coupled to Variable-Temperature Reservoirs
March 27, 2023
Abstract
A modified closed binary Brayton cycle model with variable isothermal pressure drop ratios is established by using finite time thermodynamics in this paper. A topping cycle, a bottoming cycle, two isothermal heating processes and variable-temperature reservoirs are included in the new model. The topping cycle is composed of a compressor, a regular combustion chamber, a converging combustion chamber, a turbine and a precooler. The bottoming cycle is composed of a compressor, an ordinary regenerator, an isothermal regenerator, a turbine and a precooler. The heat conductance distributions among the six heat exchangers are optimized with dimensionless power output as optimization objective. The results show that the double maximum dimensionless power output increases first and then tends to be unchanged while the inlet temperature ratios of the regular combustion chamber and the converging combustion chamber increase. There also exist optimal thermal capacitance rate matchings among the working fluid and heat reservoirs, leading to the optimal maximum dimensionless power output.
A modified closed binary Brayton cycle model with variable isothermal pressure drop ratios is established by using finite time thermodynamics in this paper. A topping cycle, a bottoming cycle, two isothermal heating processes and variable-temperature reservoirs are included in the new model. The topping cycle is composed of a compressor, a regular combustion chamber, a converging combustion chamber, a turbine and a precooler. The bottoming cycle is composed of a compressor, an ordinary regenerator, an isothermal regenerator, a turbine and a precooler. The heat conductance distributions among the six heat exchangers are optimized with dimensionless power output as optimization objective. The results show that the double maximum dimensionless power output increases first and then tends to be unchanged while the inlet temperature ratios of the regular combustion chamber and the converging combustion chamber increase. There also exist optimal thermal capacitance rate matchings among the working fluid and heat reservoirs, leading to the optimal maximum dimensionless power output.
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Keywords
energy saving, finite time thermodynamics, heat exchanger optimization, modified binary Brayton cycle power plant, power output
Subject
Suggested Citation
Tang C, Chen L, Feng H, Wang W, Ge Y. Power Optimization of a Modified Closed Binary Brayton Cycle with Two Isothermal Heating Processes and Coupled to Variable-Temperature Reservoirs. (2023). LAPSE:2023.23819
Author Affiliations
Tang C: Institute of Thermal Science and Power Engineering, Wuhan Institute of Technology, Wuhan 430205, China; School of Mechanical and Electrical Engineering, Wuhan Institute of Technology, Wuhan 430205, China; College of Power Engineering, Naval University of
Chen L: Institute of Thermal Science and Power Engineering, Wuhan Institute of Technology, Wuhan 430205, China; School of Mechanical and Electrical Engineering, Wuhan Institute of Technology, Wuhan 430205, China [ORCID]
Feng H: Institute of Thermal Science and Power Engineering, Wuhan Institute of Technology, Wuhan 430205, China; School of Mechanical and Electrical Engineering, Wuhan Institute of Technology, Wuhan 430205, China
Wang W: College of Power Engineering, Naval University of Engineering, Wuhan 430033, China
Ge Y: Institute of Thermal Science and Power Engineering, Wuhan Institute of Technology, Wuhan 430205, China; School of Mechanical and Electrical Engineering, Wuhan Institute of Technology, Wuhan 430205, China
Chen L: Institute of Thermal Science and Power Engineering, Wuhan Institute of Technology, Wuhan 430205, China; School of Mechanical and Electrical Engineering, Wuhan Institute of Technology, Wuhan 430205, China [ORCID]
Feng H: Institute of Thermal Science and Power Engineering, Wuhan Institute of Technology, Wuhan 430205, China; School of Mechanical and Electrical Engineering, Wuhan Institute of Technology, Wuhan 430205, China
Wang W: College of Power Engineering, Naval University of Engineering, Wuhan 430033, China
Ge Y: Institute of Thermal Science and Power Engineering, Wuhan Institute of Technology, Wuhan 430205, China; School of Mechanical and Electrical Engineering, Wuhan Institute of Technology, Wuhan 430205, China
Journal Name
Energies
Volume
13
Issue
12
Article Number
E3212
Year
2020
Publication Date
2020-06-20
ISSN
1996-1073
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PII: en13123212, Publication Type: Journal Article
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LAPSE:2023.23819
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https://doi.org/10.3390/en13123212
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