Exergy study of hydrogen cogeneration and seawater desalination coupled to the HTR-PM nuclear reactor

被引:7
|
作者
Rodriguez, Daniel Gonzalez [1 ]
Lira, Carlos Alberto Brayner de Oliveira [1 ]
Lima, Fernando Roberto de Andrade [1 ]
Hernandez, Carlos Garcia [2 ]
机构
[1] CRCN NE, Ctr Reg Ciencias Nucl Nordeste, BR-28610974 Recife, PE, Brazil
[2] Univ La Habana, Inst Super Tecnolo & Ciencias Aplicadas, InSTEC, Ave Salvador Allende Esq Luaces, Havana 10400, Cuba
关键词
Nuclear hydrogen production; Sulfur-iodine; HTR-PM nuclear Reactor; CPS; Efficiency; Exergy; SULFUR-IODINE CYCLE; BUNSEN REACTION; THERMOCHEMICAL CYCLE; LIQUID-EQUILIBRIA; HIGH-TEMPERATURE; DECOMPOSITION; ENERGY; EFFICIENCY; FLOWSHEET; ELECTROLYSIS;
D O I
10.1016/j.ijhydene.2022.10.162
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
This work presents a novel integration system of the high-temperature gas-cooled reactor-pebble bed module project to a hydrogen production process using the iodine-sulfur cycle in cogeneration with seawater desalination. The current approach includes a Rankine cycle, a sulfur-iodine thermochemical cycle for hydrogen production and a multi-stage flash desalination process. The use of a catalyst that allows the H2SO4 decomposition re-action to being carried out at temperatures compatible with the nuclear reactor project is considered. The residual heat from the acid decomposition reactions is used to desalinate seawater through the multi-stage flash process. A chemical process simulator is used to create a computational model that allows estimates of global and local efficiencies of the proposed flow diagram. Some operating parameters were sized, and their influence on the efficiency is also reported. The proposed model for the sulfur-iodine cycle can produce 0.41 kg/s of hydrogen with partial energy and exergetic efficiency of 37.35% and 38.64%. The desalination process can process 40.70 kg/s with energy and exergy efficiencies of 58.78% and 82.66%, respectively. The higher exergy destruction share is obtained in the heat ex-changers (36.55%), chemical reactors (16.56%) and separators (12.80%). The global system showed efficiencies of 40.13% and 52.04%, respectively.(c) 2022 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
引用
收藏
页码:2483 / 2509
页数:27
相关论文
共 50 条
  • [21] Seawater desalination plant using nuclear heating reactor coupled with MED process
    WU Shao-Rong
    DONG Duo
    ZHANG Da-Fang
    WANG Xiu-Zhen (Institute of Nuclear Energy Technology
    NuclearScienceandTechniques, 2000, (01) : 6 - 12
  • [22] Seawater desalination plant using nuclear heating reactor coupled with MED process
    Wu, Shaorong
    Dong, Duo
    Zhang, Dafang
    Wang, Xiuzhen
    Nuclear Science and Techniques/Hewuli, 2000, 11 (01): : 6 - 12
  • [23] Modeling and simulation of cogeneration nuclear power plant for seawater desalination
    Asiedu-Boateng, P.
    Akaho, E. H. K.
    Nyarko, B. J. B.
    Yamoah, S.
    NUCLEAR ENGINEERING AND DESIGN, 2012, 242 : 143 - 147
  • [24] STUDY ON OFFSITE EMERGENCY PREPAREDNESS FOR THE INDUSTRY APPLICATION OF HTR-PM
    Ding, Hongchun
    Tong, Jiejuan
    Zhang, Liguo
    PROCEEDINGS OF THE 26TH INTERNATIONAL CONFERENCE ON NUCLEAR ENGINEERING, 2018, VOL 4, 2018,
  • [25] Economic Feasibility of Hydrogen Generation Using HTR-PM Technology in Saudi Arabia
    Al-Shikh, Saud A.
    Al-Ammar, Essam A.
    Alomari, Abdullah S.
    SUSTAINABILITY, 2025, 17 (04)
  • [26] Testing the feasibility of multi-modular design in an HTR-PM nuclear plant
    Dong, Zhe
    Zhang, Zuoyi
    Dong, Yujie
    Shi, Lei
    Huang, Xiaojin
    Zhu, Yunlong
    Jiang, Di
    NATURE COMMUNICATIONS, 2025, 16 (01)
  • [27] Heat Removal Power Analysis of HTR-PM Passive Reactor Cavity Cooling System
    Qin H.
    Li X.
    Liu X.
    Zhang L.
    Wu X.
    Zheng Y.
    Yuanzineng Kexue Jishu/Atomic Energy Science and Technology, 2023, 57 (02): : 225 - 233
  • [28] RADIATION SHIELDING DESIGN OF HIGH TEMPERATURE REACTOR PEBBLE BED MODULE (HTR-PM)
    Sun, Sida
    Fang, Sheng
    Li, Hong
    PROCEEDINGS OF THE 24TH INTERNATIONAL CONFERENCE ON NUCLEAR ENGINEERING, 2016, VOL 4, 2016,
  • [29] Statistical Burnup Distribution of Moving Pebbles in the High-Temperature Reactor HTR-PM
    Vitullo, Fanny
    Krepel, Jiri
    Kalilainen, Jarmo
    Prasser, Horst-Michael
    Pautz, Andreas
    JOURNAL OF NUCLEAR ENGINEERING AND RADIATION SCIENCE, 2020, 6 (02):
  • [30] TESTING AND RELIABILITY MODELLING OF SAFETY SOFTWARE FOR DIGITAL REACTOR PROTECTION SYSTEM OF HTR-PM
    Guo, Chao
    Xiong, Huasheng
    Li, Duo
    Zhou, Shuqiao
    PROCEEDINGS OF THE 24TH INTERNATIONAL CONFERENCE ON NUCLEAR ENGINEERING, 2016, VOL 1, 2016,