Integration of a novel Chemical Looping Combustion reactor into a thermochemical energy storage system

被引:4
|
作者
Astolfi, M. [1 ]
Diego, M. E. [2 ]
Romano, M. [1 ]
Abanades, J. C. [2 ]
机构
[1] Politecn Milan, Dept Energy, Via Lambruschini 4, I-20156 Milan, Italy
[2] CSIC, Inst Ciencia & Tecnol Carbono INCAR, Francisco Pintado Fe 26, Oviedo 33011, Spain
关键词
Energy storage; Decarbonized electricity; Chemical looping; CO; 2; capture; System integration; Back-up power; RECYCLABLE METAL FUELS; LEVELIZED COST; POWER-PLANT; HEAT; TECHNOLOGY; DESIGN;
D O I
10.1016/j.enconman.2023.116985
中图分类号
O414.1 [热力学];
学科分类号
摘要
This study analyses the performance of a back-up power process that uses a novel chemical looping packed bed air reactor to oxidize a batch of reduced solids while heating high pressure flowing air. In this arrangement, the solids are slowly oxidized by a diffusionally-controlled flow of oxygen perpendicular to the main air flow, thus imposing very long oxidation times for all reacting particles. A decay in the thermal power output of the reactor can be expected with time due to the increasing resistance to O2 diffusion towards the unreacted oxygen carrier particles as the reaction progresses. In this work, integration of the dynamic system formed by the reactor and the power plant used to produce power from the exploitation of the variable thermal output of the reactor is investigated. Different case studies are assessed for decarbonization of energy production and storage of renewable energy. The reactor is rated at a maximum 50 MWth power output in all cases, employing iron- or nickel-based particles as oxygen carrier. A simplified model for mass and heat transfer in the proximity of the wall orifices allows the definition of operating windows and reactor dimensions. In the chosen case examples, each single reactor operates in discharge mode for around 4-5 h (depending on plant configuration) as a back-up power generator, heating up a compressed air stream up to - 1000 degrees C and achieving an energy density between 816 and 2214 kWhth/m3. Gas turbines in recuperative, steam injected and combined cycle power plant architectures integrated in the novel chemical looping combustion (CLC) reactor are investigated. Cycle efficiencies up to 49% are calculated for systems that make use of a single reactor configuration and exploit the residual heat for power production through a organic Rankine cycle (ORC) bottomed system. A more flexible multi-reactor configuration is also investigated to address the unavoidable decay in power output during discharge and provide power output controllability. The levelized cost of electricity (LCOE) is estimated be comparable to system elements from the literature when H2 is used as reducing gas. The use of biogas to reduce the solids during the energy charge stage is found to be particularly advantageous, leading to LCOE values between - 120 and 175 euro/MWh for the reference reactor system using iron-based solids. This also allows achieving negative CO2 emissions if the captured CO2 generated during the reduction stage is stored.
引用
收藏
页数:23
相关论文
共 50 条
  • [21] A novel air reactor concept for chemical looping combustion systems operated at high pressure
    Abanades, J. C.
    Diego, M. E.
    Fernandez, J. R.
    CHEMICAL ENGINEERING JOURNAL, 2020, 390
  • [22] Integration of Chemical Looping Combustion in the Graz Power Cycle
    del Pozo, Carlos Arnaiz
    Sanchez-Orgaz, Susana
    Navarro-Calvo, Alberto
    Alvaro, Angel Jimenez
    Cloete, Schalk
    ENERGIES, 2024, 17 (10)
  • [23] EFFECT OF FUEL AND OXYGEN CARRIERS ON THE HYDRODYNAMICS OF FUEL REACTOR IN A CHEMICAL LOOPING COMBUSTION SYSTEM
    Harichandan, Atal B.
    Shamim, Tariq
    PROCEEDINGS OF THE ASME SUMMER HEAT TRANSFER CONFERENCE - 2013, VOL 2, 2014,
  • [24] Application of the Calcium Looping Process for Thermochemical Storage of Variable Energy
    Atkinson, Kelly
    Hughes, Robin
    Macchi, Arturo
    ENERGIES, 2023, 16 (07)
  • [25] Coupling of a novel boron-based thermochemical cycle with chemical looping combustion to produce ammonia and power
    Mohamed, Amro M. O.
    Bicer, Yusuf
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2021, 46 (57) : 28949 - 28960
  • [26] A 300 W laboratory reactor system for chemical-looping combustion with particle circulation
    Johansson, Eva
    Mattisson, Tobias
    Lyngfelt, Anders
    Thunman, Hilmer
    FUEL, 2006, 85 (10-11) : 1428 - 1438
  • [27] Design and operation of a multi-stage reactor system for chemical looping combustion process
    Zhu, Xiao
    Shen, Tianxu
    Bollas, George
    Shen, Laihong
    FUEL PROCESSING TECHNOLOGY, 2021, 215
  • [28] Effect of Fuel and Oxygen Carriers on the Hydrodynamics of Fuel Reactor in a Chemical Looping Combustion System
    Harichandan, Atal Bihari
    Shamim, Tariq
    JOURNAL OF THERMAL SCIENCE AND ENGINEERING APPLICATIONS, 2014, 6 (04)
  • [29] Integration of chemical looping oxygen production and chemical looping combustion in integrated gasification combined cycles
    Cloete, Schalk
    Giuffrida, Antonio
    Romano, Matteo
    Chiesa, Paolo
    Pishahang, Mehdi
    Larring, Yngve
    FUEL, 2018, 220 : 725 - 743
  • [30] A reduced fidelity model for the rotary chemical looping combustion reactor
    Iloeje, Chukwunwike O.
    Zhao, Zhenlong
    Ghoniem, Ahmed F.
    APPLIED ENERGY, 2017, 190 : 725 - 739