Thermodynamic analysis of chemical looping coupling process for coproducing syngas and hydrogen with in situ CO2 utilization

被引:25
作者
Yang, Qian [1 ]
Yan, Ming [1 ]
Zhang, Leiyu [2 ]
Xia, Xue [1 ,3 ]
Zhu, Yanyan [1 ]
Zhang, Chundong [2 ]
Zhao, Binran [1 ]
Ma, Xiaoxun [1 ]
Wang, Xiaodong [3 ]
机构
[1] Northwest Univ, Int Sci & Technol Cooperat Base Most Clean Utiliz, Chem Engn Res Ctr Minist Educ Adv Use Technol Sha, Shaanxi Res Ctr Engn Technol Clean Coal Convers,S, Xian 710069, Peoples R China
[2] Nanjing Tech Univ, Coll Chem Engn, State Key Lab Mat Oriented Chem Engn, Nanjing 211816, Peoples R China
[3] Chinese Acad Sci, Dalian Inst Chem Phys, CAS Key Lab Sci & Technol Appl Catalysis, Dalian 116023, Peoples R China
基金
美国国家科学基金会;
关键词
Chemical looping; Thermodynamic analysis; CO2; utilization; Syngas; Hydrogen; Process coupling;
D O I
10.1016/j.enconman.2021.113845
中图分类号
O414.1 [热力学];
学科分类号
摘要
This study proposed a novel chemical looping coupling system for coproducing syngas and hydrogen with in situ CO2 utilization. It integrates chemical looping combustion, chemical looping reforming, CO2-H2O co-splitting, hydrogen production and air oxidation using CH4 as fuel and iron oxide as oxygen carrier. In this process, syngas and H-2 purification, in addition to CO2 capture and storage are no longer necessary. It not only produces high-purity hydrogen and syngas without pollutants and greenhouse gas emissions, but realizes the sufficient utilization of feed and oxygen carriers. A detailed thermodynamic analysis of the proposed chemical looping coupling process was conducted by Aspen Plus. The effects of key parameters, such as feed ratio, temperature, and pressure in each reactor on the process performance were investigated in terms of the utilization of CH4, the yield and purity of syngas and hydrogen, and the oxygen carrier coupling. In addition, the energy balance was analyzed for the coupling system with heat exchanger network. Based on the established process model, we concluded that the preferable feed ratios in combustion, reforming, co-splitting, steam and air reactors were 4, 1, 0.4, 1.1 and 1.5, respectively. The preferable temperatures in the five reactors mentioned above were 900, 900, 850, 500 and 500 degrees C in sequence, and the preferable pressure was 1 atm in each reactor. Under these conditions, high-purity hydrogen (100%) and syngas (99% and 93% purity) with ideal H-2/CO ratio (similar to 2) could be obtained. The energy efficiency and exergy efficiency of this coupling system reached up to 90.54% and 72.04%, respectively.
引用
收藏
页数:14
相关论文
共 57 条
  • [1] Progress in Chemical-Looping Combustion and Reforming technologies
    Adanez, Juan
    Abad, Alberto
    Garcia-Labiano, Francisco
    Gayan, Pilar
    de Diego, Luis F.
    [J]. PROGRESS IN ENERGY AND COMBUSTION SCIENCE, 2012, 38 (02) : 215 - 282
  • [2] Chemical looping beyond combustion: production of synthesis gas via chemical looping partial oxidation of methane
    Bhavsar, Saurabh
    Veser, Goetz
    [J]. RSC ADVANCES, 2014, 4 (88): : 47254 - 47267
  • [3] Production of Very Pure Hydrogen with Simultaneous Capture of Carbon Dioxide using the Redox Reactions of Iron Oxides in Packed Beds
    Bohn, Christopher D.
    Mueller, Christoph R.
    Cleeton, Jason P.
    Hayhurst, Allan N.
    Davidson, John F.
    Scott, Stuart A.
    Dennis, John S.
    [J]. INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2008, 47 (20) : 7623 - 7630
  • [4] Chemical Looping Co-splitting of H2O-CO2 for Efficient Generation of Syngas
    Chen, Yanpeng
    Zhu, Xing
    Li, Kongzhai
    Wei, Yonggang
    Zheng, Yane
    Wang, Hua
    [J]. ACS SUSTAINABLE CHEMISTRY & ENGINEERING, 2019, 7 (18): : 15452 - 15462
  • [5] Three-reactors chemical looping process for hydrogen production
    Chiesa, Paolo
    Lozza, Giovanni
    Malandrino, Alberto
    Romano, Matteo
    Piccolo, Vincenzo
    [J]. INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2008, 33 (09) : 2233 - 2245
  • [6] Characterization of surface processes at the Ni-based catalyst during the methanation of biomass-derived synthesis gas: X-ray photoelectron spectroscopy (XPS)
    Czekaj, Izabela
    Loviat, Francois
    Raimondi, Fabio
    Wambach, Joerg
    Biollaz, Serge
    Wokaun, Alexander
    [J]. APPLIED CATALYSIS A-GENERAL, 2007, 329 : 68 - 78
  • [7] Unsteady-state direct partial oxidation of methane to synthesis gas in a fixed-bed reactor using AFeO3 (A = La, Nd, Eu) perovskite-type oxides as oxygen storage
    Dai, Xiao Ping
    Li, Ran Jia
    Yu, Chang Chun
    Hao, Zheng Ping
    [J]. JOURNAL OF PHYSICAL CHEMISTRY B, 2006, 110 (45) : 22525 - 22531
  • [8] A comparison of electricity and hydrogen production systems with CO2 capture and storage.: Part A:: Review and selection of promising conversion and capture technologies
    Damen, K
    van Troost, M
    Faaij, A
    Turkenburg, W
    [J]. PROGRESS IN ENERGY AND COMBUSTION SCIENCE, 2006, 32 (02) : 215 - 246
  • [9] Thermodynamic analysis on the parametric optimization of a novel chemical looping methane reforming in the separated productions of H2 and CO
    Di, Zichen
    Cao, Yan
    Yang, Fengling
    Zhang, Kai
    Cheng, Fangqin
    [J]. ENERGY CONVERSION AND MANAGEMENT, 2019, 192 : 171 - 179
  • [10] Comparative exergy analysis of chemical looping combustion thermally coupled and conventional steam methane reforming for hydrogen production
    Fan, Junming
    Zhu, Lin
    Jiang, Peng
    Li, Luling
    Liu, Huimin
    [J]. JOURNAL OF CLEANER PRODUCTION, 2016, 131 : 247 - 258