Evaluation of Two-Column Air Separation Processes Based on Exergy Analysis

被引:24
作者
Hamayun, Muhammad Haris [1 ,2 ]
Ramzan, Naveed [1 ]
Hussain, Murid [2 ]
Faheem, Muhammad [1 ]
机构
[1] Univ Engn & Technol, Dept Chem Engn, Lahore 54890, Pakistan
[2] COMSATS Univ Islamabad, Dept Chem Engn, Lahore Campus,Def Rd, Lahore 54000, Pakistan
关键词
cryogenic distillation; air separation; exergy analyssis; exergy efficiency; exergy destruction; process simulation;
D O I
10.3390/en13236361
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
Cryogenic air separation processes are widely used for the large-scale production of nitrogen and oxygen. The most widely used design for this process involves two distillation columns operating at different pressures. This work focuses on the selection of suitable cryogenic air separation process by evaluating seven alternative designs of the two-column air separation process based on detailed exergy analysis. The feed conditions (500 tons/h, and 50% relative humidity of air), product purities (99 mole% for both nitrogen and oxygen), and operational conditions (pressures of both distillation columns) are kept same in all designs. The two cryogenic distillation columns in each configuration are heat-integrated to eliminate the need for external utilities. Steady-state simulation results are used to calculate the exergy efficiency (%) of each equipment as well as its contribution toward the overall exergy destruction rate (kW) of the process. The results show that the compression section is a major source of exergy destruction, followed by the low-pressure column, and the multi-stream heat exchanger. A Petlyuk-like configuration, labeled as C1, provides the lowest exergy destruction rate.
引用
收藏
页数:20
相关论文
共 39 条
[1]  
Agrawal R., 1991, Gas separation purification, V5, P139
[2]  
[Anonymous], 2019, AIR SEP PLANTS HIST
[3]   Air separation and liquefaction: recent developments and prospects for the beginning of the new millennium [J].
Castle, WF .
INTERNATIONAL JOURNAL OF REFRIGERATION-REVUE INTERNATIONALE DU FROID, 2002, 25 (01) :158-172
[4]   Modeling, Characteristic Analysis, and Optimization of Ideal Internal Thermally Coupled Air Separation Columns [J].
Chang, Liang ;
Liu, Xinggao ;
Dai, Liankui ;
Sun, Youxian .
INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2012, 51 (44) :14517-14524
[5]   Thermodynamic evaluation of the novel distillation column of the air separation unit with integration of liquefied natural gas (LNG) regasification [J].
Chen, Shiqing ;
Dong, Xuezhi ;
Xu, Jian ;
Zhang, Hualiang ;
Gao, Qing ;
Tan, Chunqing .
ENERGY, 2019, 171 :341-359
[6]   Energy and cost efficient manganese chemical looping air separation cycle for decarbonized power generation based on oxy-fuel combustion and gasification [J].
Cormos, Calin-Cristian .
ENERGY, 2020, 191
[7]  
Cornelissen R., 1999, Thermodynamic optimization of complex energy systems, P195, DOI 10.1007/978-94-011-4685-2_13
[8]   Exergy analysis of cryogenic air separation [J].
Cornelissen, RL ;
Hirs, GG .
ENERGY CONVERSION AND MANAGEMENT, 1998, 39 (16-18) :1821-1826
[9]   Exergy analysis of a reactive extraction process [J].
de los Angeles Olan-Acosta, Maria ;
Barajas-Fernandez, Juan ;
Garcia-Alamilla, Pedro ;
Omar Castrejon-Gonzalez, Edgar ;
Rico-Ramirez, Vicente .
CHEMICAL ENGINEERING RESEARCH & DESIGN, 2020, 162 :1-11
[10]  
Dominic S., 2014, IFAC Proc. Vol, V47, P432, DOI 10.3182/20140824-6-ZA-1003.01510