Efficiency Analysis on Low Temperature Energy Conversion System Based on Organic Rankine Cycle

被引:1
作者
Wang, Wei [1 ]
Wu, Yu-ting [1 ]
Ma, Chong-fang [1 ]
Yu, Jian [1 ]
机构
[1] Beijing Univ Technol, Minist Educ, Coll Environm & Energy Engn, Key Lab Enhanced Heat Transfer & Energy Conservat, Beijing 100124, Peoples R China
来源
RENEWABLE AND SUSTAINABLE ENERGY, PTS 1-7 | 2012年 / 347-353卷
关键词
low temperature; organic Rankine cycle; working fluid; expander; efficiency analysis;
D O I
10.4028/www.scientific.net/AMR.347-353.498
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
The amount of low temperature heat resources is very huge, efficient utilization that energy is very important issue for improving energy efficiency, saving energy and protecting environment. Due to the small available energy of low temperature heat source, how to improve thermodynamic efficiency is the key problem. In this paper, the thermodynamic model of low temperature thermal power conversion system based on organic Rankine cycle was described firstly. Turbine, single screw and piston expanders were briefly described. R123, R245fa and R134a were chose as working fluid because of quite different critical temperature. Based on this model, the influence of thermodynamic property of organic working fluid on the efficiency of low temperature thermal power conversion system was discussed. The calculating result showed that R123 is the best choice if no considering the impact of expander types and that R245fa is the best choice if considering the impact of expander. This conclusion indicated that it is very important to investigate the match relationship between working fluid and expander. Moreover, single screw expander was proved to be more suitable than turbine and piston expanders for low temperature heat power conversion system.
引用
收藏
页码:498 / +
页数:2
相关论文
共 8 条
  • [1] Analysis of the working process in a reciprocating expander in the region of wet vapor
    Greben'kov A.Zh.
    Aref'ev K.M.
    Belyaeva O.V.
    Zayats T.A.
    Pushkareva T.L.
    [J]. Journal of Engineering Physics and Thermophysics, 2008, 81 (03) : 551 - 556
  • [2] Austin A.L., 1973, UCRL51366
  • [3] Fukuta M, 2003, INT C REFR
  • [4] KANEKO T, 1985, B JSME, V28, P1970
  • [5] Kang Seok Hun, 2010, 9 INT C SUST EN TECH
  • [6] Kim Hyun Jin, 2008, APPL THERM ENG, p1654~1661
  • [7] Wang Wei, APPL THERMA IN PRESS
  • [8] Zhang Qing-nian, 1988, CHEM ENG OIL GAS, V17, P17