H2 production from a plasma-assisted chemical looping system from the partial oxidation of CH4 at mild temperatures

被引:31
|
作者
Zheng, Yaoyao [1 ]
Marek, Ewa J. [1 ]
Scott, Stuart A. [1 ]
机构
[1] Univ Cambridge, Dept Engn, Trumpington St, Cambridge CB2 1PZ, England
关键词
Non-thermal plasma; Chemical looping; Catalyst; H-2; production; NiO/Fe2O3; NiO/SrFeO3-delta; OXYGEN-CARRIER MATERIALS; NI-BASED CATALYSTS; HYDROGEN-PRODUCTION; NICKEL-CATALYSTS; METHANE; DISCHARGE; TECHNOLOGIES; PEROVSKITES; SURFACE; OXIDES;
D O I
10.1016/j.cej.2019.122197
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
A plasma-assisted chemical looping system for the production of H-2 (PCLH) was investigated in this study. This system allows the partial oxidation of CH4 at mild temperatures (573-773 K). Four active oxygen carriers: Fe2O3, NiO-impregnated Fe2O3 (NiO/Fe2O3), SrFeO3-delta and NiO-impregnated SrFeO3-delta (NiO/SrFeO3-delta) were compared, each working both as a packed material for the plasma reactor and an oxygen source for the partial oxidation of CH4. Similar conversions of CH4, and low yields of H-2 were obtained in Fe2O3 and SrFeO3-delta. It was concluded that in these cases, H-2 was mainly produced from direct cracking of CH4 by plasma. In contrast, when using NiO/Fe2O3 and NiO/SrFeO3-delta, substantial production of H-2 was achieved. It is proposed that there is a synergistic effect between the catalyst and the oxygen carrier; the presence of the metallic Ni phase was responsible for catalysing the production of H-2, and the oxygen from the support helped prevent the build-up of coke. As a result, the activity of Ni was continuously maintained for H-2 production. The chemical loop is closed with the oxygen carriers being regenerated in air with plasma and then used in the next looping cycle. The high H-2 production capability in NiO/Fe2O3 was repeatable; whilst, NiO/SrFeO3-delta deactivated in the second and third cycles. Amongst the temperatures studied, NiO/Fe2O3 at 673 K resulted in the best performance for H-2-rich gas production. A further increase in the operating temperature led to a total combustion of CH4.
引用
收藏
页数:10
相关论文
共 50 条
  • [41] CO2, H2, AND CH4 PRODUCTION IN RICE RHIZOSPHERE
    KIMURA, M
    MURAKAMI, H
    WADA, H
    SOIL SCIENCE AND PLANT NUTRITION, 1991, 37 (01) : 55 - 60
  • [42] Study and optimization of room temperature inductively coupled plasma etching of InP using Cl2/CH4/H2 and CH4/H2
    Lee, CW
    Nie, D
    Mei, T
    Chin, MK
    JOURNAL OF CRYSTAL GROWTH, 2006, 288 (01) : 213 - 216
  • [43] Synthesis of carbon coated β-SiC nanofibers by microwave plasma assisted chemical vapour deposition in CH4/H2 gas mixture
    Rizk, S.
    Assouar, M. B.
    Gatel, C.
    Belmahi, M.
    Lambert, J.
    Bougdira, J.
    DIAMOND AND RELATED MATERIALS, 2008, 17 (7-10) : 1660 - 1665
  • [44] RELATIONSHIP BETWEEN H2 AND CH4 PRODUCTION, USING A NEW FECAL INCUBATION SYSTEM
    VANDERBURG, GJ
    DOUWES, AC
    SCHOUTENVANMEETEREN, N
    KNEEPKENS, CMF
    NETHERLANDS JOURNAL OF MEDICINE, 1986, 29 (08): : 255 - 255
  • [45] A study of the dynamics of Pd oxidation and PdO reduction by H2 and CH4
    Su, SC
    Carstens, JN
    Bell, AT
    JOURNAL OF CATALYSIS, 1998, 176 (01) : 125 - 135
  • [46] KINETIC ISOTOPE EFFECTS ACCOMPANYING OXIDATION OF CO H2 AND CH4
    ZIELINSKI, M
    NUCLEAR APPLICATIONS, 1966, 2 (01): : 51 - +
  • [47] ASSESSMENT OF CHEMICAL MECHANISM AND CHEMICAL REACTION SENSITIVITY ANALYSIS FOR CH4/H2 FLAME UNDER MILD COMBUSTION ENVIRONMENT
    Yang, Zhao
    Li, Xiangsheng
    Wang, Zhenlin
    Wang, Zhuangqi
    THERMAL SCIENCE, 2020, 24 (03): : 2101 - 2111
  • [48] Chemical Looping Reforming (CLR) System for H2 Production-A Review
    Pujara, Mit
    Sheth, Mit
    Rachchh, Nikunj
    Bhoraniya, Rameshkumar
    Harichandan, Atal Bihari
    RENEWABLE ENERGY AND CLIMATE CHANGE, 2020, 161 : 267 - 276
  • [49] Efficient production of H2 and carbon nanotube from CH4 over single wall carbon nanohorn
    Aoki, Yusuke
    Urita, Koki
    Noguchi, Daisuke
    Itoh, Tsutomu
    Kanoh, Hirofumi
    Ohba, Tomonori
    Yudasaka, Masako
    Iijima, Sumio
    Kaneko, Katsumi
    CHEMICAL PHYSICS LETTERS, 2009, 482 (4-6) : 269 - 273
  • [50] Essential prerequisites for successful bioprocess development of biological CH4 production from CO2 and H2
    Rittmann, Simon
    Seifert, Arne
    Herwig, Christoph
    CRITICAL REVIEWS IN BIOTECHNOLOGY, 2015, 35 (02) : 141 - 151