Thermodynamic analysis and optimization of an oxy-combustion combined cycle power plant based on a membrane reactor equipped with a high-temperature ion transport membrane ITM

被引:8
|
作者
Kotowicz, Janusz [1 ]
Job, Marcin [2 ]
Brzeczek, Mateusz [1 ]
机构
[1] Silesian Tech Univ, Inst Power Engn & Turbomachinery, Konarskiego 18, PL-44100 Gliwice, Poland
[2] Marcin Job IT Serv, PL-44323 Polomia, Poland
关键词
Combined cycle power plant; Oxy-combustion; Ion transport membrane; Membrane reactor; Advanced zero emission power plant; AIR SEPARATION; CARBON CAPTURE; DESIGN; BA0.5SR0.5CO0.8FE0.2O3-DELTA; COMPRESSION; GENERATION; EFFICIENCY; EMISSIONS;
D O I
10.1016/j.energy.2020.117912
中图分类号
O414.1 [热力学];
学科分类号
摘要
This paper presents an advanced zero emission power plant (AZEP) which is a combined cycle power plant with a membrane reactor equipped with a high-temperature ion transport membrane (ITM). The membrane reactor, which is used as a replacement for a combustor in the gas turbine, combines three functions: combustion of fuel, oxygen separation from the air in the ITM, and heating of the oxygen-depleted air. Due to the membrane reactor, the AZEP does not need an energy-consuming external air separation unit, which is a significant advantage over other types of power plants which utilize oxy-combustion technology. The presented thermodynamic model for AZEP with an advanced numeric model of the ITM allows the user to perform thermodynamic analyses for a wide range of AZEP operating parameters and to select their optimal values, without the need to determine the geometric parameters of the ITM and heat exchangers. The obtained results allow one to indicate the basic features of this carbon capture technology. The selection of AZEP operating parameters is related to the balance between the power plant's efficiency maximization and the limitation of the ITM and heat exchangers surface areas. This manuscript also presents an analysis of the possible AZEP plant development. The development model of the E-AZEP plant assumes a number of improvements in the parameters of the ITM and the entire membrane reactor, with respect to the AZEP plant basic model. The ITM assumes an improvement in the ionic conductivity (sigma(ion)) by approx. 45%, by changing the value of the conductivity coefficient (C-2) as well as increasing the maximum operating temperature of the membrane from 900 degrees C to 1000 degrees C. The work demonstrated the great influence of the membrane surface. In the model of the membrane reactor, a higher flue gas temperature was assumed at the combustion chamber outlet, equal to t(1g) = 1600 degrees C, which together with the assumption of temperature approximation Delta T-he. HHX = 20 K gives an air temperature t(3a) = 1580 degrees C. With the current technological possibilities, AZEP plants are competitive compared to alternative solutions, but they do not have a significant advantage over them. However, overcoming the presented limitations may allow us to achieve an advantage in terms of achieved efficiency compared to alternative CO2 capture technologies. Achieving the air temperature at the inlet to the expander, at a level close to the temperatures used in J-class gas turbines (E-AZEP plant case), allows for a decrease in the efficiency when compared to modern combined cycle power plants, at a level of 3% points. (C) 2020 Published by Elsevier Ltd.
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页数:15
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共 38 条
  • [1] Modeling of a combined ion transport and porous membrane reactor for oxy-combustion
    Habib, M. A.
    Ahmed, Pervez
    Ben-Mansour, Rached
    Badr, Hassan M.
    Kirchen, Patrick
    Ghoniem, A. F.
    [J]. JOURNAL OF MEMBRANE SCIENCE, 2013, 446 : 230 - 243
  • [2] Oxy-combustion of liquid fuel in an ion transport membrane reactor
    Ben-Mansour R.
    Ahmed P.
    Habib M.A.
    Jamal A.
    [J]. International Journal of Energy and Environmental Engineering, 2018, 9 (1) : 21 - 37
  • [3] Thermodynamic analysis and numerical optimization of the NET Power oxy-combustion cycle
    Scaccabarozzi, Roberto
    Gatti, Manuele
    Martelli, Emanuele
    [J]. APPLIED ENERGY, 2016, 178 : 505 - 526
  • [4] Thermodynamic and economic analysis of a gas turbine combined cycle plant with oxy-combustion
    Kotowicz, Janusz
    Job, Marcin
    [J]. ARCHIVES OF THERMODYNAMICS, 2013, 34 (04) : 215 - 233
  • [5] Oxygen transport membrane unit applied to oxy-combustion coal power plants: A thermodynamic assessment
    Portillo, E.
    Gallego Fernandez, Luz M.
    Vega, F.
    Alonso-Farinas, B.
    Navarrete, B.
    [J]. JOURNAL OF ENVIRONMENTAL CHEMICAL ENGINEERING, 2021, 9 (04):
  • [6] Numerical investigation of oxygen permeation and methane oxy-combustion in a stagnation flow ion transport membrane reactor
    Ben Mansour, R.
    Nemitallah, M. A.
    Habib, M. A.
    [J]. ENERGY, 2013, 54 : 322 - 332
  • [7] A novel ion transport membrane reactor for fundamental investigations of oxygen permeation and oxy-combustion under reactive flow conditions
    Kirchen, Patrick
    Apo, Daniel J.
    Hunt, Anton
    Ghoniem, Ahmed F.
    [J]. PROCEEDINGS OF THE COMBUSTION INSTITUTE, 2013, 34 : 3463 - 3470
  • [8] Comparative Thermodynamic Analysis and Integration Issues of CCS Steam Power Plants Based on Oxy-Combustion with Cryogenic or Membrane Based Air Separation
    Pfaff, Imo
    Kather, Alfons
    [J]. GREENHOUSE GAS CONTROL TECHNOLOGIES 9, 2009, 1 (01): : 495 - 502
  • [9] Exergoeconomic analysis and optimization of a solar energy-based integrated system with oxy-combustion for combined power cycle and carbon capturing
    Al-Hamed, Khaled H. M.
    Dincer, Ibrahim
    [J]. ENERGY, 2022, 250
  • [10] Thermo-economic analysis of integrated membrane-SMR ITM-oxy-combustion hydrogen and power production plant
    Sanusi, Yinka S.
    Mokheimer, Esmail M. A.
    Habib, Mohamed A.
    [J]. APPLIED ENERGY, 2017, 204 : 626 - 640