Optimal design and integration of a cryogenic Air Separation Unit (ASU) with Liquefied Natural Gas (LNG) as heat sink, thermodynamic and economic analyses

被引:102
作者
Ebrahimi, Armin [1 ]
Ziabasharhagh, Masoud [1 ]
机构
[1] KN Toosi Univ Technol, Fac Mech Engn, Pardis St,Molasadra Ave,Vanak Sq, Tehran 1999143344, Iran
关键词
Liquefied natural gas; Cryogenic air separation unit; Pinch analysis; Annualized cost of system; EXERGY ANALYSIS; EFFICIENCY; SYSTEM; CYCLE; GASIFICATION;
D O I
10.1016/j.energy.2017.02.145
中图分类号
O414.1 [热力学];
学科分类号
摘要
LNG regasification terminals are the final destination of LNG carriers. This is where the liquefied natural gas is returned to the gaseous state and fed into transmission and distribution grids. While regasification process, cryogenic LNG has a great potential for cold energy recovery. This cold energy can be used in various applications such as power generation, material freezing and sea water desalination. In this study, we used the mentioned cold energy for cryogenic air separation unit to improve the performance of this cycle. Some of the most important results of this integration are 8.04% reduction in the amount of power requirement and also 17.05% reduction in initial capital cost of ASU plant. In this paper, the required LNG flow rate for applied integration was 24.43% of ASU cycle generated oxygen flow rate. Annualized cost of system was chosen as an economic approach. A year reduction of system period of return in relation to the before integration of ASU cycle with LNG, was the most important economic result of this integration. Sensitivity analysis was done on the system economic parameters (electrical energy, oxygen and nitrogen price). The results show that the considered integration will have a more positive impact on the system period of return in higher prices of electrical energy and also in lower prices of oxygen in the market. (C) 2017 Elsevier Ltd. All rights reserved.
引用
收藏
页码:868 / 885
页数:18
相关论文
共 20 条
[1]   Carbon dioxide power cycles using liquid natural gas as heat sink [J].
Angelino, Gianfranco ;
Invernizzi, Costante M. .
APPLIED THERMAL ENGINEERING, 2009, 29 (14-15) :2935-2941
[2]  
[Anonymous], 2014, J STAT
[3]   Exergy based performance analysis of hydrogen production from rice straw using oxygen blown gasification [J].
Bhattacharya, Atmadeep ;
Das, Anirban ;
Datta, Amitava .
ENERGY, 2014, 69 :525-533
[4]   Energetic, exergetic and economic assessment of oxygen production from two columns cryogenic air separation unit [J].
Ebrahimi, Armin ;
Meratizaman, Mousa ;
Reyhani, Hamed Akbarpour ;
Pourali, Omid ;
Amidpour, Majid .
ENERGY, 2015, 90 :1298-1316
[5]   Using exergy analysis to reduce power consumption in air separation units for oxy-combustion processes [J].
Fu, Chao ;
Gundersen, Truls .
ENERGY, 2012, 44 (01) :60-68
[6]   Micro gas turbine thermodynamic and economic analysis up to 500 kWe size [J].
Galanti, Leandro ;
Massardo, Aristide F. .
APPLIED ENERGY, 2011, 88 (12) :4795-4802
[7]   Enhancing the overall efficiency of a lignite-fired oxyfuel power plant with CFB boiler and membrane-based air separation unit [J].
Kotowicz, Janusz ;
Balicki, Adrian .
ENERGY CONVERSION AND MANAGEMENT, 2014, 80 :20-31
[8]   Characteristics and applications of the cold heat exergy of liquefied natural gas [J].
Liu, HT ;
You, LX .
ENERGY CONVERSION AND MANAGEMENT, 1999, 40 (14) :1515-1525
[9]   A novel cryogenic power cycle for LNG cold energy recovery [J].
Liu, Yanni ;
Guo, Kaihua .
ENERGY, 2011, 36 (05) :2828-2833
[10]   Optimal coupling of site utility steam network with MED-RO desalination through total site analysis and exergoeconomic optimization [J].
Manesh, M. H. Khoshgoftar ;
Ghalami, H. ;
Amidpour, Majid ;
Hamedi, M. H. .
DESALINATION, 2013, 316 :42-52