Investigation of leakage reinjection system for supercritical CO2 power cycle using heat pump

被引:12
作者
Muhammad, Hafiz Ali [1 ,2 ]
Lee, Beomjoon [2 ]
Lee, Gilbong [2 ]
Cho, Junhyun [2 ]
Baik, Young-Jin [2 ]
机构
[1] Univ Sci & Technol, Dept Renewable Energy Engn, Daejeon 305350, South Korea
[2] Korea Inst Energy Res, Energy Efficiency & Mat Res Div, Daejeon 305343, South Korea
关键词
Supercritical carbon dioxide (sCO(2)); Heat pump; Leakage reinjection; Optimization; Genetic algorithm (GA); LIQUEFIED NATURAL-GAS; CARBON-DIOXIDE; SOLAR-ENERGY; THERMODYNAMIC ANALYSIS; BRAYTON CYCLE; RANKINE-CYCLE; GENERATION; DESIGN; TURBOMACHINERY; STORAGE;
D O I
10.1016/j.renene.2018.10.059
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Supercritical carbon dioxide power cycle (sCO(2)) has recently attracted a great deal of interest owing to its compact size and potential for achieving high efficiency over a wide temperature range. However, several challenges still need to be overcome before the sCO(2) cycle can be commercialized. One such challenge is leakage at the rotor components. The present paper discusses an innovative heat-pump application that can be used for leakage reinjection. The unique consideration of this leakage supplement system for the supercritical CO2 cycle stems from the high energy density of sCO(2) and the high rotational speeds seen in turbomachinery. This paper proposes a heat-pump system that collects CO2 leakage at the turbine and liquefies this gas at the evaporator. The liquefied CO2 is then pressurized to the high pressure required for the main power generating cycle, and subsequently heat from the heat-pump working fluid is transferred to the CO2 in the heat-pump condenser. This heat-pump system offers superior compression performance over conventional methods of reinjection. Thermodynamic analysis reveals that the performance of the heat-pump system is sensitive to the saturation temperature of CO2 in the evaporator and superheating at the heat-pump's compressor inlet. Then, the genetic algorithm optimization module in MATLAB is used to optimize the system for net power consumption. Various heat-pump working fluids are investigated; R290 (Propane) delivers the best performance at 38.9% reduction in net power compared to a base case. (C) 2018 Elsevier Ltd. All rights reserved.
引用
收藏
页码:97 / 106
页数:10
相关论文
共 35 条
  • [1] REVIEW OF SUPERCRITICAL CO2 POWER CYCLE TECHNOLOGY AND CURRENT STATUS OF RESEARCH AND DEVELOPMENT
    Ahn, Yoonhan
    Bae, Seong Jun
    Kim, Minseok
    Cho, Seong Kuk
    Baik, Seungjoon
    Lee, Jeong Ik
    Cha, Jae Eun
    [J]. NUCLEAR ENGINEERING AND TECHNOLOGY, 2015, 47 (06) : 647 - 661
  • [2] Design consideration of supercritical CO2 power cycle integral experiment loop
    Ahn, Yoonhan
    Lee, Jekyoung
    Kim, Seong Gu
    Lee, Jeong Ik
    Cha, Jae Eun
    Lee, Si-Woo
    [J]. ENERGY, 2015, 86 : 115 - 127
  • [3] [Anonymous], 2007, REFPROP VERS 8 0, P23
  • [4] Atif M., 2014, 5 INT REN EN C IREC
  • [5] Bruckner R., 2009, P ASME TURB EXP 2009
  • [6] Parametric study and optimization of a transcritical power cycle using a low temperature source
    Cayer, Emmanuel
    Galanis, Nicolas
    Nesreddine, Hakim
    [J]. APPLIED ENERGY, 2010, 87 (04) : 1349 - 1357
  • [7] Analysis of a carbon dioxide transcritical power cycle using a low temperature source
    Cayer, Emmanuel
    Galanis, Nicolas
    Desilets, Martin
    Nesreddine, Hakim
    Roy, Philippe
    [J]. APPLIED ENERGY, 2009, 86 (7-8) : 1055 - 1063
  • [8] Cho J., 2017, P ASME TURB EXP 2017
  • [9] Development of the turbomachinery for the supercritical carbon dioxide power cycle
    Cho, Junhyun
    Choi, Munkyoung
    Baik, Young-Jin
    Lee, Gilbong
    Ra, Ho-Sang
    Kim, Byunghui
    Kim, Minsung
    [J]. INTERNATIONAL JOURNAL OF ENERGY RESEARCH, 2016, 40 (05) : 587 - 599
  • [10] Clementoni E. M., 2016, P ASME TURB EXP 2016