Pressurized Regenerative Calcium Cycle for Utility-Scale Energy Storage: A Techno-Economic Assessment

被引:0
|
作者
Moghtaderi, Behdad [1 ]
Tremain, Priscilla [1 ]
Warner, John [2 ]
机构
[1] Univ Newcastle, Ctr Innovat Energy Technol, Callaghan, NSW 2308, Australia
[2] Jord Int Pty Ltd, St Leonards, NSW 2065, Australia
关键词
pressurized regenerative calcium cycle (PRC2); carbonation/calcination reaction (carbal); calcium looping; thermochemical energy storage; utility-scale energy storage; CO2; CAO; DECOMPOSITION; CARBONATION; INTEGRATION; SORBENT; SYSTEM; STEAM;
D O I
10.3390/pr12081778
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
The University of Newcastle (UON) and Jord International Pty Ltd. (Jord) have jointly developed a novel concept for the storage of energy from renewable and fossil fuel sources. The process, referred to as the pressurized regenerative calcium cycle (PRC2), relies on cyclic carbonation and calcination of CaO/CaCO3, in which low-cost electrical energy (i.e., off-peak, or excess generation from renewables) drives the calcination reaction and electricity is generated as required through the carbonation reaction. Initial proof-of-concept testing of the process was previously conducted within an existing fluid bed reactor at UON. The PRC2 concept was successfully demonstrated by maintaining the fluid bed reactor at a constant temperature by using the heat released during the reaction of calcium oxide and carbon dioxide. Following proof-of-concept testing, further refinement of the PRC2 process, which is the subject of this paper, was conducted to address its shortcomings and, importantly, facilitate the detailed design, construction, and operation of a large-scale demonstration plant. Nine different configurations were examined for the PRC2 process, for each of which a combined experimental, process modelling, and techno-economic assessment was completed. Experimental investigations were conducted to determine the suitability of carbonate materials for the PRC2 process. Process modelling and levelized cost of storage (LCOS) calculations were concurrently conducted and revealed that the molten salt approach (Option 9) was the most promising, having superior round-trip efficiency and lowest LCOS. For practical reasons (e.g., technical difficulties of working with molten salts), Option 3 (indirect power generation using a fluid bed reactor) was deemed the most feasible option for a demonstration scale plant. The LCOS for Option 3 (assuming a 100 MWe capacity) was calculated to be AUD 245 per MWh, which is on par with the cost of batteries for peak power replacement applications (the cost associated with lithium-ion batteries is AUD 370 per MWh).
引用
收藏
页数:31
相关论文
共 50 条
  • [41] A techno-economic assessment of wave energy resources in the Philippines
    Quitoras, Marvin Rhey D.
    Abundo, Michael Lochinvar S.
    Danao, Louis Angelo M.
    RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2018, 88 : 68 - 81
  • [42] Techno-economic and life cycle analysis of renewable energy storage systems in buildings: The effect of uncertainty
    Le, Son Tay
    Nguyen, Tuan Ngoc
    Bui, Dac-Khuong
    Ngo, Tuan Duc
    ENERGY, 2024, 307
  • [43] Techno-Economic Assessment of Offshore Wind Energy in the Philippines
    Maandal, Gerard Lorenz D.
    Tamayao-Kieke, Mili-Ann M.
    Danao, Louis Angelo M.
    JOURNAL OF MARINE SCIENCE AND ENGINEERING, 2021, 9 (07)
  • [44] Utility-scale energy storage in an imperfectly competitive power sector
    Virasjoki, Vilma
    Siddiqui, Afzal S.
    Oliveira, Fabricio
    Salo, Ahti
    ENERGY ECONOMICS, 2020, 88 (88)
  • [45] Reconfigurable battery energy storage system for utility-scale applications
    20162402483365
    (1) UNSW Australia, Sydney; NSW; 2052, Australia, 1600, IEEE Industrial Electonics Society (IES) (Institute of Electrical and Electronics Engineers Inc., United States):
  • [46] Impedance Characterization of Utility-Scale Renewable Energy and Storage Systems
    Shah, Shahil
    Koralewicz, Przemyslaw
    Wallen, Robb
    Gevorgian, Vahan
    2019 IEEE ENERGY CONVERSION CONGRESS AND EXPOSITION (ECCE), 2019, : 2609 - 2616
  • [47] Reconfigurable Battery Energy Storage System for Utility-Scale Applications
    Wang, Guishi
    Pou, Josep
    Agelidis, Vassilios G.
    IECON 2015 - 41ST ANNUAL CONFERENCE OF THE IEEE INDUSTRIAL ELECTRONICS SOCIETY, 2015, : 4086 - 4091
  • [48] Life cycle multi-objective (geospatial, techno-economic, and environmental) feasibility and potential assessment of utility scale photovoltaic power plants
    Ahmad, Momina
    Zeeshan, Muhammad
    Khan, Junaid Aziz
    ENERGY CONVERSION AND MANAGEMENT, 2023, 291
  • [49] Seasonal thermal energy storage: A techno-economic literature review
    Yang, Tianrun
    Liu, Wen
    Kramer, Gert Jan
    Sun, Qie
    RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2021, 139
  • [50] Techno-economic and social analysis of energy storage for commercial buildings
    Yan, Xiaohui
    Zhang, Xuehui
    Chen, Haisheng
    Xu, Yujie
    Tan, Chunqing
    ENERGY CONVERSION AND MANAGEMENT, 2014, 78 : 125 - 136