Role of expanders in helium liquefaction cycles: Parametric studies using Collins cycle

被引:28
作者
Thomas, Rijo Jacob [1 ]
Ghosh, Parthasarathi [1 ]
Chowdhury, Kanchan [1 ]
机构
[1] Indian Inst Technol, Cryogen Engn Ctr, Kharagpur 721302, W Bengal, India
关键词
Thermodynamic efficiency; Refrigeration; Expander; Aspen HYSYS (R); Parametric study; Collins helium liquefier; SYSTEM;
D O I
10.1016/j.fusengdes.2011.02.041
中图分类号
TL [原子能技术]; O571 [原子核物理学];
学科分类号
0827 ; 082701 ;
摘要
Large scale helium liquefaction/refrigeration plant is a key subsystem of fusion devices. Performance of these plants is dependent on a number of geometric and operating parameters of its constituting components such as compressors, heat exchangers. expanders, valves, etc. Expander has been chosen as the subject matter of analyses in the present study. As the sensible cold of helium vapor is lost in liquefiers, the expanders in liquefaction cycles have to provide more refrigeration than those in refrigeration cycles. The expander parameters such as rate of mass flow, operating pressure, inlet temperature, etc. are interdependent, and hence, it is difficult to predict the system behavior with variation of a particular parameter. This necessitates the use of process simulators. Parametric studies have been performed on Collins helium liquefaction cycle using Aspen HYSYS (R). Collins cycle has all the basic characteristics of a large-scale helium liquefier and the results of this study may be extrapolated to understand the behavior of large scale helium liquefiers. The study shows that the maximum liquid production is obtained when 80% of the compressor flow is diverted through the expanders and it is equally distributed between the two expanders. The relationships between the liquid production and the isentropic efficiency of expanders are almost linear and both the higher and lower temperature expanders exhibit similar trends. (C) 2011 Elsevier B.V. All rights reserved.
引用
收藏
页码:318 / 324
页数:7
相关论文
共 9 条
[1]  
ARONSON D, 1960, ADV CRYOGEN ENG, V3, P19
[2]   Thermodynamic analysis of Collins helium liquefaction cycle [J].
Atrey, MD .
CRYOGENICS, 1998, 38 (12) :1199-1206
[3]   Helium refrigeration system for the KSTAR [J].
Choi, C. H. ;
Chang, H. -S. ;
Park, D. S. ;
Kim, Y. S. ;
Bak, J. S. ;
Lee, G. S. ;
Kwon, I. K. ;
Kim, H. M. ;
Cho, M. C. ;
Kim, H. -S. ;
Fauve, E. ;
Abe, I. ;
Briend, P. ;
Bernhardt, J. -M. ;
Cardet, Y. ;
Dauguet, P. ;
Beauvisage, J. ;
Andrieu, F. ;
Yang, S. -H. ;
Baguer, G. M. Gistau .
FUSION ENGINEERING AND DESIGN, 2006, 81 (23-24) :2623-2631
[4]   The Tore Supra Cryoplant control system upgrade [J].
Garbil, R ;
Maréchal, JL ;
Gravil, B ;
Henry, D ;
Journeaux, JY ;
Balaguer, D ;
Baudet, J ;
Bocquillon, A ;
Fejoz, P ;
Prochet, P ;
Roux, C ;
Serries, JP .
FUSION ENGINEERING AND DESIGN, 2001, 58-59 :217-223
[5]   OPTIMIZATION OF HELIUM REFRIGERATORS AND LIQUEFIERS FOR LARGE SUPERCONDUCTING SYSTEMS [J].
HILAL, MA .
CRYOGENICS, 1979, 19 (07) :415-420
[6]  
HILAL MA, 1980, ADV CRYOGEN ENG, V25, P350
[7]   ITER cryogenic system [J].
Kalinin, V. ;
Tada, E. ;
Millet, F. ;
Shatil, N. .
FUSION ENGINEERING AND DESIGN, 2006, 81 (23-24) :2589-2595
[8]  
Khalil A., 1977, ADV CRYOGEN ENG, V23, P431
[9]  
THOMAS RJ, 2010, INT CRYOG ENG C ICEC