Analysis of supercritical carbon dioxide Brayton cycles for a helium-cooled pebble bed blanket DEMO-like fusion power plant

被引:7
|
作者
Hidalgo-Salaverri, J. [1 ,2 ,3 ]
Cano-Megias, P. [1 ,2 ]
Chacartegui, R. [2 ]
Ayllon-Guerola, J. [1 ,3 ]
Viezzer, E. [1 ,4 ]
机构
[1] Univ Seville, CSIC, J de Andalucia, CNA, C Tomas Alva Edison 7, Seville 41092, Spain
[2] Univ Seville, Escuela Tecn Super Ingn, Dept Ingn Energet, Camino Descubrimientos S-N, Seville 41092, Spain
[3] Univ Seville, Escuela Tecn Super Ingn, Dept Ingn Mecon & Fabricac, Camino Descubrimientos S-N, Seville 41092, Spain
[4] Univ Seville, Fac Fis, Dept Fis Atom Mol & Nucl, Avda Reina Mercedes S-N, Seville 41012, Spain
基金
欧洲研究理事会; 欧盟地平线“2020”;
关键词
Balance Of Plant (BOP); PROCESS; EU-DEMO nuclear fusion power plant; Thermal Energy Storage (TES); Supercritical carbon dioxide (S-CO2) Brayton cycle; CONCENTRATED SOLAR POWER; ENERGY-STORAGE; SYSTEMS CODE; DESIGN; INTEGRATION; TEMPERATURE; STATE; PART;
D O I
10.1016/j.fusengdes.2021.112860
中图分类号
TL [原子能技术]; O571 [原子核物理学];
学科分类号
0827 ; 082701 ;
摘要
Nuclear fusion is expected to be a clean and almost-unlimited power source in the near future. The first net power demonstration plant (DEMO) is planned to start operation in 2050. The supercritical carbon dioxide (S-CO2) Brayton cycle is an excellent candidate for integration with a fusion power plant, such as DEMO, because of its high efficiency at intermediate temperatures and low interaction of coolant with tritium. This work analyses a set of S-CO2 Brayton cycle layouts for its integration in a DEMO-like fusion power plant, considering the specific requirements and heat availability characteristics. A framework has been developed to integrate the PROCESS code and the numerical solver EES to study the thermal and economic aspects of integrating the different S-CO2 cycle layouts. In total, 14 layouts have been studied and grouped into a more conservative (DEMO1, pulsed operation) and more advanced (DEMO2, steady-state operation) fusion reactors. The PROCESS code has been used to obtain the DEMO 2018 Baseline, which defines the available power from each heat source and their boundary conditions. This code has also been used to assess the cost of the optimal layout. Thermal storage has been added to the DEMO1 scenario to avoid standby times that could negatively affect the cycle equipment lifetime and efficiency. Besides, these boundary conditions have been extended to account for possible technical improvements by the time of its construction in the DEMO2 scenario. A sensitivity analysis of the most characteristic parameters of the cycles shows a strong dependence on the turbine inlet temperature for all layouts, which is constrained by the reactor material limits. The cycle efficiency (electric power produced before consumptions non-related to the cycle) has been selected as the figure of merit for the optimisation. The results show a 38% cycle efficiency for DEMO1 and 56% for DEMO2 scenarios. These efficiencies drop to 20% and 38% values, respectively, when the reactor and cooling loop power consumptions are considered. These values are obtained for current fusion reactor conceptual designs. The economic analysis shows the economic viability of DEMO2 scenarios.
引用
收藏
页数:13
相关论文
共 11 条
  • [1] Supercritical CO2 Brayton power cycles for DEMO fusion reactor based on Helium Cooled Lithium Lead blanket
    Ignacio Linares, Jose
    Enrique Herranz, Luis
    Fernandez, Ivan
    Cantizano, Alexis
    Yolanda Moratilla, Beatriz
    APPLIED THERMAL ENGINEERING, 2015, 76 : 123 - 133
  • [2] Thermal-Hydraulic Analysis of the EU DEMO Helium-Cooled Pebble Bed Breeding Blanket Using the GETTHEM Code
    Froio, Antonio
    Cismondi, Fabio
    Savoldi, Laura
    Zanino, Roberto
    IEEE TRANSACTIONS ON PLASMA SCIENCE, 2018, 46 (05) : 1436 - 1445
  • [3] On the numerical assessment of the thermo-mechanical performances of the DEMO Helium-Cooled Pebble Bed breeding blanket module
    Di Maio, P. A.
    Arena, P.
    Boccaccini, L. V.
    Bongiovi, G.
    Carloni, D.
    Chiovaro, P.
    Giammusso, R.
    Kecskes, S.
    Vella, G.
    FUSION ENGINEERING AND DESIGN, 2014, 89 (7-8) : 1411 - 1416
  • [4] Supercritical CO2 Brayton power cycles for DEMO (demonstration power plant) fusion reactor based on dual coolant lithium lead blanket
    Ignacio Linares, Jose
    Cantizano, Alexis
    Yolanda Moratilla, Beatriz
    Martin-Palacios, Victor
    Batet, Lluis
    ENERGY, 2016, 98 : 271 - 283
  • [5] Breeding blanket design and systems integration for a helium-cooled lithium-lead fusion power plant
    Li Puma, A
    Berton, JL
    Brañas, B
    Bühler, L
    Doncel, J
    Fischer, U
    Farabolini, W
    Giancarli, L
    Maisonnier, D
    Pereslavtsev, P
    Raboin, S
    Salavy, JF
    Sardain, P
    Szczepanski, J
    Ward, D
    FUSION ENGINEERING AND DESIGN, 2006, 81 (1-7) : 469 - 476
  • [6] Preliminary thermal-hydraulic analysis of the EU-DEMO Helium-Cooled Pebble Bed fusion reactor by using the RELAP5-3D system code
    D'Amico, Salvatore
    Di Maio, Pietro Alessandro
    Jin, Xue Zhou
    Gonzalez, Francisco Alberto Hernandez
    Moscato, Ivo
    Zhou, Guangming
    FUSION ENGINEERING AND DESIGN, 2021, 162
  • [7] Preliminary design and assessment of concentrated solar power plant using supercritical carbon dioxide Brayton cycles
    Khatoon, Saboora
    Kim, Man-Hoe
    ENERGY CONVERSION AND MANAGEMENT, 2022, 252
  • [8] Thermal performance and economic analysis of supercritical Carbon Dioxide cycles in combined cycle power plant
    Thanganadar, Dhinesh
    Asfand, Faisal
    Patchigolla, Kumar
    APPLIED ENERGY, 2019, 255
  • [9] Recuperated versus single-recuperator re-compressed supercritical CO2 Brayton power cycles for DEMO fusion reactor based on dual coolant lithium lead blanket
    Ignacio Linares, Jose
    Cantizano, Alexis
    Arenas, Eva
    Yolanda Moratilla, Beatriz
    Martin-Palacios, Victor
    Batet, Lluis
    ENERGY, 2017, 140 : 307 - 317
  • [10] Thermodynamic analysis of a parabolic trough power plant integrating supercritical carbon dioxide Brayton cycle and direct contact membrane distillation
    Zaharil, Hafiz Aman
    Yang, Hongxing
    APPLIED THERMAL ENGINEERING, 2024, 252