THERMODYNAMIC ANALYSIS AND SYSTEM DESIGN OF THE SUPERCRITICAL CO2 BRAYTON CYCLE FOR WASTE HEAT RECOVERY OF GAS TURBINE

被引:4
作者
Xie, Min [1 ,2 ]
Xie, Yonghui [1 ]
He, Yichuan [2 ]
Dong, Aihua [2 ]
Zhang, Chunwei [2 ]
Shi, Yuwen [2 ]
Zhang, Qiuhong [2 ]
Yang, Qiguo [2 ]
机构
[1] Xi An Jiao Tong Univ, Sch Energy & Power Engn, Xian 710049, Peoples R China
[2] Harbin Elect Co Ltd, Harbin 150028, Peoples R China
关键词
energetic analysis; exergetic analysis; system design; supercritical CO2 cycle; waste heat recovery; turbine exhausted gas; MULTIOBJECTIVE OPTIMIZATION; RANKINE CYCLES; TECHNOLOGIES; EXERGY; POWER;
D O I
10.1615/HeatTransRes.2019028447
中图分类号
O414.1 [热力学];
学科分类号
摘要
The supercritical CO2 cycle is regarded as a potential replacement of steam on concentrated solar power, new generation nuclear reactor, fossil combustion power, waste heat recovery, and so on. It has advantages in high energy flux density, compact equipment, higher cycle efficiency, product modularization. In this paper, the thermodynamic analysis of supercritical CO2 Brayton cycle for the waste heat recovery of the LM2500 gas turbine is discussed with the energetic and exergetic analyses via a system simulation program. The efficiency of waste heat utilization should be considered as the prior target in the system design and optimization. As regards the basic cycle, there are huge energy/exergy losses from the boiler due to the high temperature exit gas and the temperature gap between the exhausted gas and the supercritical CO2. Besides, in the recuperator, the exergy loss is also significant due to the temperature difference on both sides. Therefore, an energy classification utilization cycle (the advanced cycle) is designed and analyzed. In both the energetic and exergetic analyses, the advanced cycle shows good system performances. Through the optimization, the advanced cycle can output the maximum net power as 8.81-MW higher 2.35MW output than the basic cycle, with the efficiency of waste heat utilization of 25.10% and the efficiency of exergy of 64.78% increased by 6.7% and 17.28% compared to the basic cycle, respectively.
引用
收藏
页码:129 / 146
页数:18
相关论文
共 35 条
[1]   High efficiency and low cost of electricity generation from fossil fuels while eliminating atmospheric emissions, including carbon dioxide [J].
Allam, R. J. ;
Palmer, Miles R. ;
Brown, G. William, Jr. ;
Fetvedt, Jeremy ;
Freed, David ;
Nomoto, Hideo ;
Itoh, Masao ;
Okita, Nobuo ;
Jones, Charles, Jr. .
GHGT-11, 2013, 37 :1135-1149
[2]  
[Anonymous], 2018, PROC 6 INT S SUPERCR
[3]   Exergetic optimization and comparison of combined gas turbine supercritical CO2 power cycles [J].
Ayub, Abubakr ;
Sheikh, Nadeem Ahmed ;
Tariq, Rasikh ;
Khan, Muhammad Mahabat ;
Invernizzi, Costante Mario .
JOURNAL OF RENEWABLE AND SUSTAINABLE ENERGY, 2018, 10 (04)
[4]   A multivariable optimization of a Brayton power cycle operating with CO2 as working fluid [J].
Battisti, Felipe G. ;
Cardemil, Jose M. ;
da Silva, Alexandre K. .
ENERGY, 2016, 112 :908-916
[5]   INFLUENCE OF VARIABLE AIR DISTRIBUTION ON POLLUTANT EMISSIONS IN A MODEL WALL JET CAN COMBUSTOR [J].
Bazdidi-Tehrani, Farzad ;
Abedinejad, Mohammad Sadegh ;
Yazdani-Ahmadabadi, Hosein .
HEAT TRANSFER RESEARCH, 2018, 49 (17) :1667-1688
[6]  
Chen Y., 2017, THERM POWER GENER, V46, P22
[7]  
DRESSER-RAND, 2018, ENV SOL ECHOGEN EPS1
[8]   Comparison of CO2 and steam in transcritical Rankine cycles for concentrated solar power [J].
Garg, P. ;
Srinivasan, K. ;
Dutta, P. ;
Kumar, P. .
PROCEEDINGS OF THE SOLARPACES 2013 INTERNATIONAL CONFERENCE, 2014, 49 :1138-1146
[9]  
Gianfranco A., 1968, US Patent, Patent No. 3376706
[10]   OPTIMIZED CORE DESIGN OF A SUPERCRITICAL CARBON DIOXIDE-COOLED FAST REACTOR [J].
Handwerk, Christopher S. ;
Driscoll, Michael J. ;
Hejzlar, Pavel .
NUCLEAR TECHNOLOGY, 2008, 164 (03) :320-336