Absorption power cycles for low-temperature heat sources using aqueous salt solutions as working fluids

被引:34
|
作者
Novotny, Vaclav [1 ]
Kolovratnik, Michal [1 ]
机构
[1] Czech Tech Univ, Dept Energy Engn, Fac Mech Engn, Prague, Czech Republic
关键词
absorption power cycle; waste heat recovery; low temperature heat; LiBr; LiCl; CaCl2; THERMODYNAMIC PROPERTIES; ENERGY; OPTIMIZATION; RECOVERY; RANKINE;
D O I
10.1002/er.3671
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
There are many low-temperature heat sources; however, current technologies for their utilization have a relatively low efficiency and high cost. The leading technology in the low-temperature domain for heat-to-work conversion is the organic Rankine cycle (ORC). Absorption power cycles (APCs) are a second option. Nearly all currently known APCs, most importantly the Kalina cycle, use a water-ammonia mixture as their working fluids. This paper offers a theoretical exploration of the possibility of utilizing aqueous solutions of three salts (lithium bromide, lithium chloride and calcium chloride), known mainly from absorption cooling, as working fluids for APCs. The cycles are compared with a typical steam Rankine cycle, a water-ammonia APC, and (subcritical) ORCs with a range of working fluids explored. The analysis includes a parasitic load for heat rejection by a cooling tower or air-cooled condenser. The absorption cycles exhibit better performance than all Rankine-based cycles analysed in temperatures below 120 degrees C. For the LiBr-based APC, a detailed thermal design of the cycle is provided for 100 degrees C water as a heat source and a sensitivity analysis is performed of the parameters controlling the main cycle. Mechanical design considerations should not pose a problem for small power units, especially in the case of expansion machines, which are often problematic in ORCs. The salt-based APCs also carry environmental benefits, as the salts utilized in the working fluids are non-toxic. Copyright (C) 2016 John Wiley & Sons, Ltd.
引用
收藏
页码:952 / 975
页数:24
相关论文
共 50 条
  • [41] The design of CO2-based working fluids for high-temperature heat source power cycles
    Lasala, S.
    Bonalumi, D.
    Macchi, E.
    Privat, R.
    Jaubert, J-N.
    4TH INTERNATIONAL SEMINAR ON ORC POWER SYSTEMS, 2017, 129 : 947 - 954
  • [42] A review of thermodynamic cycles and working fluids for the conversion of low-grade heat
    Chen, Huijuan
    Goswami, D. Yogi
    Stefanakos, Elias K.
    RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2010, 14 (09): : 3059 - 3067
  • [43] Optimization of a cylindrical thermomagnetic engine for power generation from low-temperature heat sources
    Ahmed, Rahate
    Park, Jin Chul
    Zeeshan
    Mehmood, Muhammad Uzair
    Lim, Sang Hoon
    Lee, Jaeyoung
    Chun, Wongee
    INTERNATIONAL JOURNAL OF ENERGY RESEARCH, 2021, 45 (06) : 8606 - 8619
  • [44] COVELLITE FORMATION IN LOW-TEMPERATURE AQUEOUS-SOLUTIONS
    RICKARD, DT
    MINERALIUM DEPOSITA, 1972, 7 (02) : 180 - &
  • [45] LOW-TEMPERATURE RADIOLYSIS OF AQUEOUS SOLUTIONS OF DEOXY RNA
    SHARPATYI, VA
    PRISTUPA, AI
    PRIKHIDK.IN
    SULTANKH.MN
    IZVESTIYA AKADEMII NAUK SSSR-SERIYA KHIMICHESKAYA, 1970, (03): : 702 - +
  • [46] Effect of working fluids on the efficiency of low-temperature solar-thermal-electric power generation system
    Pei, Gang
    Li, Jing
    Ji, Jie
    Taiyangneng Xuebao/Acta Energiae Solaris Sinica, 2010, 31 (05): : 581 - 587
  • [47] A new absorption chiller to establish combined cold, heat, and power generation utilizing low-temperature heat
    Schweigler, CJ
    Riesch, P
    Demmel, S
    Alefeld, G
    ASHRAE TRANSACTIONS 1996, VOL 102, PT 1, 1996, 102 : 1118 - 1127
  • [48] SAMPLE CELL FOR LOW-TEMPERATURE OPTICAL-ABSORPTION STUDIES OF FROZEN AQUEOUS-SOLUTIONS
    PATTISON, MR
    KIM, YW
    REVIEW OF SCIENTIFIC INSTRUMENTS, 1974, 45 (02): : 304 - 305
  • [49] FLUIDS AND ELASTOMERS FOR LOW-TEMPERATURE HEAT TRANSFER AND HYDRAULIC SYSTEMS
    ARMSTRONG, CS
    ASLE TRANSACTIONS, 1966, 9 (01): : 59 - +
  • [50] Analysis and Comparison of Some Low-Temperature Heat Sources for Heat Pumps
    Neuberger, Pavel
    Adamovsky, Radomir
    ENERGIES, 2019, 12 (10)