Optical and experimental evaluation of a directly irradiated solar reactor for the catalytic dry reforming of methane

被引:11
|
作者
Abdellateif, Tayseir M. [1 ]
Sarwar, Jawad [2 ]
Vagia, Ekaterini Ch. [1 ]
Kakosimos, Konstantinos E. [1 ,3 ]
机构
[1] Texas A&M Univ Qatar, Chem Engn Dept, Doha, Qatar
[2] Univ Engn Technol, Mech Engn, Lahore, Pakistan
[3] Ctr Res & Technol Hellas APTL CPERI CERTH, Chem Proc & Energy Resources Inst, Aerosol & Particle Technol Lab, Halandri, Greece
关键词
Solar energy; Ray-tracing; Dry reforming methane; Experimental design; Concentrated light; HIERARCHICAL POROUS STRUCTURE; HYDROGEN-PRODUCTION; THERMODYNAMIC ANALYSIS; SYNGAS PRODUCTION; DRIVEN; CO2; TECHNOLOGIES; STORAGE; FOAM;
D O I
10.1016/j.cej.2022.139190
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Dry reforming of methane is a process to produce syngas which is a major precursor for many chemicals and ultra-clean fuels. It is a CO2-assisted process that leads to the conversion of CO2 to higher-value products but is also a highly endothermic process that requires significant amounts of energy in the form of CO2 emitting fuels. For these reasons, this study focused on the direct utilization of concentrated solar energy by irradiating the catalyst directly rather than via a heat transfer fluid or conductive heat transfer. In addition, it uniquely adopts a tubular reactor with transparent (quartz) walls configuration, which allows extending the length of the irradiated (hot) zone to control the residence time. The new reactor was designed using Monte-Carlo ray-tracing modeling and evaluated experimentally using a commercial Ni-based catalyst. In brief, the reacting gas mixture (CH4:CO2 -5 %: 5 %) was fed into the reactor at weight gas hourly space velocities of around 17-58 l h-1 g-1 and three different temperature levels (550 degrees C, 650 degrees C, and 800 degrees C). Although the non-conventional mode of heating, the achieved methane conversions (-93 % at 800 degrees C to -53 % at 550 degrees C) and H2 / CO ratios (-0.9 at 800 degrees C to -0.4 at 550 degrees C) were similar to literature studies with the same catalyst. At the same time, the quartz walls showed no degradation after more than 80 h of intermittent testing. On the other hand, the overall energy efficiency was estimated to be less than 1 %, considering the radiation intercepted by the reactor system. However, it rose to 5 % -25 % when correcting for the actual amount of irradiance on the catalytic bed.
引用
收藏
页数:13
相关论文
共 50 条
  • [31] An innovative solar reactor with Gaussian-pattern geometry for syngas production from dry reforming of methane
    Saedi, Yashar
    Mahmoudimehr, Javad
    PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART C-JOURNAL OF MECHANICAL ENGINEERING SCIENCE, 2025, 239 (02) : 492 - 507
  • [32] Experimental and modeling study of catalytic steam reforming of methane mixture with propylene in a packed bed reactor
    Sadooghi, Parham
    Rauch, Reinhard
    INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2014, 78 : 515 - 521
  • [33] Experimental Insights into the Coupling of Methane Combustion and Steam Reforming in a Catalytic Plate Reactor in Transient Mode
    Ashraf, M. Arsalan
    Tacchino, Stefano
    Peela, Nageswara Rao
    Ercolino, Giuliana
    Gill, Kirandeep K.
    Vlachos, Dionisios G.
    Specchia, Stefania
    Industrial and Engineering Chemistry Research, 2021, 60 (01): : 196 - 209
  • [34] Experimental Insights into the Coupling of Methane Combustion and Steam Reforming in a Catalytic Plate Reactor in Transient Mode
    Ashraf, M. Arsalan
    Tacchino, Stefano
    Peela, Nageswara Rao
    Ercolino, Giuliana
    Gill, Kirandeep K.
    Vlachos, Dionisios G.
    Specchia, Stefania
    INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2021, 60 (01) : 196 - 209
  • [35] Microstructured Catalytic Hollow Fiber Reactor for Methane Steam Reforming
    Gil, Ana Gouveia
    Wu, Zhentao
    Chadwick, David
    Li, K.
    INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2015, 54 (21) : 5563 - 5571
  • [36] High-performance catalytic materials for dry reforming of methane
    Dedov, A. G.
    Loktev, A. S.
    Mazo, G. N.
    Komissarenko, D. A.
    Shlyakhtin, O. A.
    Mukhin, I. E.
    Spesivtsev, N. A.
    Moiseev, I. I.
    DOKLADY PHYSICAL CHEMISTRY, 2015, 462 : 99 - 102
  • [37] Catalytic Dry Reforming of Methane: Insights from Model Systems
    Wittich, Knut
    Kraemer, Michael
    Bottke, Nils
    Schunk, Stephan Andreas
    CHEMCATCHEM, 2020, 12 (08) : 2130 - 2147
  • [38] High-performance catalytic materials for dry reforming of methane
    A. G. Dedov
    A. S. Loktev
    G. N. Mazo
    D. A. Komissarenko
    O. A. Shlyakhtin
    I. E. Mukhin
    N. A. Spesivtsev
    I. I. Moiseev
    Doklady Physical Chemistry, 2015, 462 : 99 - 102
  • [39] Catalytic Performance of Ni/MgO Catalyst in Methane Dry Reforming
    Al-Swai, Basem M.
    Osman, N. B.
    Abdullah, Bawadi
    2ND INTERNATIONAL CONFERENCE ON APPLIED SCIENCE AND TECHNOLOGY 2017 (ICAST'17), 2017, 1891
  • [40] SOLAR REFORMING OF METHANE IN A DIRECT ABSORPTION CATALYTIC REACTOR ON A PARABOLIC DISH .2. MODELING AND ANALYSIS
    SKOCYPEC, RD
    HOGAN, RE
    MUIR, JF
    SOLAR ENERGY, 1994, 52 (06) : 479 - 490