Supercritical Carbon Dioxide Applications for Energy Conversion Systems

被引:23
作者
Di Maio, Damiano Vitale [1 ]
Boccitto, Alessandro [1 ]
Caruso, Gianfranco [1 ]
机构
[1] Univ Roma La Sapienza, Dept Astronaut Elect & Energy Engn, Cso Vittorio Emanuele 2 244, I-00186 Rome, Italy
来源
70TH CONFERENCE OF THE ITALIAN THERMAL MACHINES ENGINEERING ASSOCIATION, ATI2015 | 2015年 / 82卷
关键词
SC-CO2; GateCycle; Supercritical Fluids; HEAT-TRANSFER; CO2; CYCLE; TUBE; GAS;
D O I
10.1016/j.egypro.2015.11.818
中图分类号
O414.1 [热力学];
学科分类号
摘要
In the present paper, the possibility of increasing the thermodynamic efficiency of an. electric energy production plant, by using an advanced energy conversion system based on supercritical carbon dioxide (S-CO2) as working fluid, has been analyzed. Since the supercritical carbon dioxide cycles are being considered as a favorable candidate for the next generation. of nuclear power plant energy conversion systems, a lead cooled fast reactor has been selected as reference in the present analyses. The main aim of the present study is to compare two different S-CO2 thermal cycles applied on the conversion system of a nuclear power plant. The reference Lead cooled Fast Reactor (LFR) used for the present analyses is the ALFRED reactor, which has a thermal power of 300 MW and it is considered the scaled down prototype of the industrial European Lead Fast Reactor (ELFR). Thermodynamic cycles selected for the present study are a Recompression Cycle and a. Brayton Cycle with Regeneration. Each of them has been analyzed under several design conditions regarding the maximum pressure and the regeneration coefficient. Among different design conditions, the solution allowing the maximization of the overall efficiency has been identified. Thermodynamic analyses have been carried out with GateCycle (TM) v. 6.1.1, which is a. General Electric software able to predict design and off-design performance of power plants. (C) 2015 The authors. Published by Elsevier Ltd.
引用
收藏
页码:819 / 824
页数:6
相关论文
共 12 条
[1]   CARBON DIOXIDE CONDENSATION CYCLES FOR POWER PRODUCTION [J].
ANGELINO, G .
JOURNAL OF ENGINEERING FOR POWER, 1968, 90 (03) :287-&
[2]   PERSPECTIVES FOR LIQUID PHASE COMPRESSION GAS TURBINE [J].
ANGELINO, G .
JOURNAL OF ENGINEERING FOR POWER, 1967, 89 (02) :229-&
[3]   A comparative study of the carbon dioxide transcritical power cycle compared with an organic rankine cycle with R123 as working fluid in waste heat recovery [J].
Chen, Y. ;
Lundqvist, P. ;
Johansson, A. ;
Platell, P. .
APPLIED THERMAL ENGINEERING, 2006, 26 (17-18) :2142-2147
[4]  
Dostal V., 2004, MIT, V154, P265
[5]   Modified heat transfer equation for in-tube supercritical CO2 cooling [J].
Fang, Xiande ;
Xu, Yu .
APPLIED THERMAL ENGINEERING, 2011, 31 (14-15) :3036-3042
[6]  
Feher G, 1968, ENERG CONVERS, V8, P85
[7]   Transcritical or supercritical CO2 cycles using both low- and high-temperature heat sources [J].
Kim, Y. M. ;
Kim, C. G. ;
Favrat, D. .
ENERGY, 2012, 43 (01) :402-415
[8]   Measurements of heat transfer coefficients from supercritical carbon dioxide flowing in horizontal mini/micro channels [J].
Liao, SM ;
Zhao, TS .
JOURNAL OF HEAT TRANSFER-TRANSACTIONS OF THE ASME, 2002, 124 (03) :413-420
[9]   Thermodynamic analysis of a transcritical CO2 power cycle driven by solar energy with liquified natural gas as its heat sink [J].
Song, Yuhui ;
Wang, Jiangfeng ;
Dai, Yiping ;
Zhou, Enmin .
APPLIED ENERGY, 2012, 92 :194-203
[10]  
Vitale Di Maio D, 2015, P 5 INT YOUTH C EN P