DocumentCode :
2616432
Title :
Analysis and Optimization of the Power Cycle Based on the Cold Energy of Liquefied Natural Gas
Author :
Yuanwei, Lu ; Hongchang, Yang ; Chongfang, Ma
Author_Institution :
Key Lab. of Enhanced Heat Transfer & Energy Conservation, Beijing Univ. of Technol., Beijing, China
Volume :
1
fYear :
2011
fDate :
6-7 Jan. 2011
Firstpage :
455
Lastpage :
458
Abstract :
Liquid natural gas (LNG) delivered by sea-ships contains considerable cryogenic energy which can be used for power generation before its evaporation and introduction into the system of pipe line. Electric power generation utilizing LNG cold energy is a major research direction. There are two kinds of LNG cold energy utilization in electric power generation, that is, independent thermal cycle with natural gas direct expansion and close-loop Rankin cycle. However, the efficiency of LNG cold energy utilization is low. Recently, many efforts have been dedicated to improve the efficiency of LNG cold energy utilization. Different optimizing process has been proposed to improve the utilization of LNG cold energy. However, the optimizing target and methods needed to be further decided. In this paper a new methodology combining the energy level analysis and the pinch analysis is determined. A so-called T-Ω-H diagram is introduced, where T is temperature, W states the energy level and H indicates the amount of energy. The proposed method can promise modifications quickly for improving a base cycle design. Utilizing this method to analysis the normal Rankin power cycle with LNG cold energy as heat sink, the results show that the thermodynamic imperfection in heat exchanger is the main position for improvement. Based on which two cascading power cycle with LNG cold energy recovery is proposed and the analytical results show that the longitudinal cascading cycle has the high performance than transverse cascading cycle. The simulating results showed that this new method is effective for improving thermodynamic cycle of power generation.
Keywords :
combined cycle power stations; cryogenics; evaporation; exergy; natural gas technology; LNG cold energy; T-W-H diagram; base cycle design; close-loop Rankin cycle; cryogenic energy; electric power generation; energy level analysis; evaporation; heat exchanger; heat sink; independent thermal cycle; liquefied natural gas; longitudinal cascading cycle; natural gas direct expansion; normal Rankin power cycle; optimizing process; pinch analysis; pipe line; sea-ships; thermodynamic cycle; thermodynamic imperfection; transverse cascading cycle; Fluids; Heat sinks; Heating; Liquefied natural gas; Power generation; Power systems; Pumps; cold energy recovery; exergy; liquefied natural gast; optimization; pinch analysis;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Measuring Technology and Mechatronics Automation (ICMTMA), 2011 Third International Conference on
Conference_Location :
Shangshai
Print_ISBN :
978-1-4244-9010-3
Type :
conf
DOI :
10.1109/ICMTMA.2011.115
Filename :
5720818
Link To Document :
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