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  4. Intensification, optimization and economic evaluations of the CO2-capturing oxy-combustion CO2 power system integrated with the utilization of liquefied natural gas cold energy
 
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Intensification, optimization and economic evaluations of the CO2-capturing oxy-combustion CO2 power system integrated with the utilization of liquefied natural gas cold energy

Journal
Energy
Journal Volume
234
Date Issued
2021
Author(s)
Ong C.W
Chen C.-L.
CHENG-LIANG CHEN  
DOI
10.1016/j.energy.2021.121255
URI
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85109450632&doi=10.1016%2fj.energy.2021.121255&partnerID=40&md5=54659a575a853794a94fd9f1559e07ab
https://scholars.lib.ntu.edu.tw/handle/123456789/598107
Abstract
This work focuses on the investigation of CO2-capturing oxy-combustion CO2 power system integrated with the utilization of liquefied natural gas (LNG) cold energy. Working fluid CO2 is compressed and combusted with high purity oxygen and natural gas and is then expanded by the gas turbine to atmospheric pressure for driving the electricity generator. After recuperating the residual heat in the exhaust stream, the concentration of water is reduced to the standard of less than 1 ppm, to avoid the corrosion caused by the formation of ice in the following cryogenic process. Next, CO2 is compressed to its condensation pressure and condensed by using LNG cold energy. Liquid CO2 is then pumped to high pressure for recirculation where excess CO2 is captured. Besides, reheating procedure is applied to two-stage turbine expansion to increase energy efficiency, and an additional natural gas turbine is installed to generate more electricity. On the basis of 100 kg/s for both recirculating CO2 and LNG, this LNG enhanced CO2 power system shows its superiority in the net power output of 134.61 MW, the annual profit of 52.58 MUSD, the energy efficiency of 66.94%, CO2 recovery of 98.60% and the CO2 captured purity of 99.94 mol%. Furthermore, when turbine outlet pressure is adjusted to CO2 condensation pressure, higher energy efficiency can be achieved at 69.01%, but the net power output will decrease to 53.54 MW. ? 2021 Elsevier Ltd
Subjects
Carbon capture
Carbon dioxide
Cold energy utilization
Energy efficiency
Heat integration
Liquefied natural gas (LNG)
Oxy-combustion
Power plant
Power system
Process design
Techno-economic analysis
Atmospheric pressure
Combustion
Condensation
Economic analysis
Electric power generation
Energy utilization
Gas fuel purification
Gas turbines
Gases
Liquefied natural gas
Natural gasoline plants
Cold energy
Condensation pressure
Energy
Oxy combustions
Power
Techno-Economic analysis
atmospheric pressure
carbon dioxide
electricity generation
energy efficiency
liquefied natural gas
SDGs

[SDGs]SDG7

[SDGs]SDG13

Type
journal article

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