Research and Development of the Oxy-Fuel Combustion Power Cycles with CO2 Recirculation

被引:26
|
作者
Rogalev, Andrey [1 ]
Rogalev, Nikolay [2 ]
Kindra, Vladimir [1 ]
Komarov, Ivan [1 ]
Zlyvko, Olga [1 ]
机构
[1] Natl Res Univ, Dept Innovat Technol High Tech Ind, Moscow Power Engn Inst, Moscow 111250, Russia
[2] Natl Res Univ, Dept Thermal Power Plants, Moscow Power Engn Inst, Moscow 111250, Russia
关键词
oxy-fuel combustion power cycle; carbon dioxide capture and storage; gas turbine coolant; thermodynamic optimization; net efficiency; THERMODYNAMIC ANALYSIS; NOX EMISSION; GAS-TURBINES; ALLAM CYCLE; CARBON; PERFORMANCE; CAPTURE; PLANTS; INTEGRATION; DESIGN;
D O I
10.3390/en14102927
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
The transition to oxy-fuel combustion power cycles is a prospective way to decrease carbon dioxide emissions into the atmosphere from the energy sector. To identify which technology has the highest efficiency and the lowest emission level, a thermodynamic analysis of the semiclosed oxy-fuel combustion combined cycle (SCOC-CC), the E-MATIANT cycle, and the Allam cycle was carried out. The modeling methodology has been described in detail, including the approaches to defining the working fluid properties, the mathematical models of the air separation unit, and the cooled gas turbine cycles' calculation algorithms. The gas turbine inlet parameters were optimized using the developed modeling methodology for the three oxy-fuel combustion power cycles with CO2 recirculation in the inlet temperature at a range of 1000 to 1700 degrees C. The effect of the coolant flow precooling was evaluated. It was found that a decrease in the coolant temperature could lead to an increase of the net efficiency up to 3.2% for the SCOC-CC cycle and up to 0.8% for the E-MATIANT cycle. The final comparison showed that the Allam cycle's net efficiency is 5.6% higher compared to the SCOC-CC cycle, and 11.5% higher compared with the E-MATIANT cycle.
引用
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页数:18
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