Volume 6 Issue 5
Oct.  2021
Turn off MathJax
Article Contents
Hanke Li, Shijie Wu, Chengxiong Dang, Guangxing Yang, Yonghai Cao, Hongjuan Wang, Feng Peng, Hao Yu. Production of high-purity hydrogen from paper recycling black liquor via sorption enhanced steam reforming. Green Energy&Environment, 2021, 6(5): 771-779. doi: 10.1016/j.gee.2020.07.002
Citation: Hanke Li, Shijie Wu, Chengxiong Dang, Guangxing Yang, Yonghai Cao, Hongjuan Wang, Feng Peng, Hao Yu. Production of high-purity hydrogen from paper recycling black liquor via sorption enhanced steam reforming. Green Energy&Environment, 2021, 6(5): 771-779. doi: 10.1016/j.gee.2020.07.002

Production of high-purity hydrogen from paper recycling black liquor via sorption enhanced steam reforming

doi: 10.1016/j.gee.2020.07.002
  • Environmentally friendly and energy saving treatment of black liquor (BL), a massively produced waste in Kraft papermaking process, still remains a big challenge. Here, by adopting a NiCaOCa12Al14O33 bifunctional catalyst derived from hydrotalcite-like materials, we demonstrate the feasibility of producing high-purity H2 (∼96%) with 0.9 mol H2 mol-1 C yield via the sorption enhanced steam reforming (SESR) of BL. The SESRBL performance in terms of H2 production maintained stable for 5 cycles, but declined from the 6th cycle. XRD, Raman spectroscopy, elemental analysis and energy dispersive techniques were employed to rationalize the deactivation of the catalyst. It was revealed that gradual sintering and agglomeration of Ni and CaO and associated coking played important roles in catalyst deactivation and performance degradation of SESRBL, while deposition of Na and K from the BL might also be responsible for the declined performance. On the other hand, it was demonstrated that the SESRBL process could effectively reduce the emission of sulfur species by storing it as CaSO3. Our results highlight a promising alternative for BL treatment and H2 production, thereby being beneficial for pollution control and environment governance in the context of mitigation of climate change.

     

  • Equal contribution.
  • loading
  • [1]
    R.L. Hills, Papermaking in Britain, 1488-1988:A Short History, first ed., Athlone Press, London, 1988.
    [2]
    G. Gea, M.B. Murillo, J.L. S anchez, J. Arauzo, Ind. Eng. Chem. Res. 42(2003) 5782-5790.
    [3]
    J.P. Magnin, N. Papaiconomou, I. Billard, Separ. Purif. Technol. 196(2018) 140-148.
    [4]
    C. Cao, L. Guo, Y. Chen, S. Guo, Y. Lu, Int. J. Hydrogen Energy 36(2011) 13528-13535.
    [5]
    G. Gea, M.B. Murillo, J. Arauzo, W.J. Frederick, Energy Fuels 17(2003) 46-53.
    [6]
    C. de Blasio, S. de Gisi, A. Molino, M. Simonetti, M. Santarelli, M. Björklund-Sänkiaho, Renew. Energy 130(2019) 891-901.
    [7]
    M. Naqvi, J. Yan, E. Dahlquist, Bioresour. Technol. 101(2010) 8001-8015.
    [8]
    V. Sricharoenchaikul, W.J. Frederick, P. Agrawal, Ind. Eng. Chem. Res. 41(2002) 5640-5649.
    [9]
    A. Demirbas, Energy Convers. Manag. 43(2002) 877-884.
    [10]
    C. Cao, L. Guo, J. Yin, H. Jin, W. Cao, Y. Jia, X. Yao, Energy Fuels 29(2014) 384-391.
    [11]
    V. Sricharoenchaikul, Bioresour. Technol. 100(2009) 638-643.
    [12]
    C. Cao, L. Xu, Y. He, L. Guo, H. Jin, Z. Huo, Energy Fuels 31(2017) 3970-3978.
    [13]
    C. Cao, Y. Zhang, L. Li, W. Wei, G. Wang, C. Bian, Int. J. Hydrogen Energy 44(2019) 15737-15745.
    [14]
    E. Purkarová, K. Ciahotný, M. Šváb, S. Skoblia, Z. Be no, J. Supercrit. Fluids 135(2018) 130-136.
    [15]
    N.H. Florin, A.T. Harris, Chem. Eng. Sci. 63(2008) 287-316.
    [16]
    M.Z. Memon, X. Zhao, V.S. Sikarwar, A.K. Vuppaladadiyam, S.J. Milne, A.P. Brown, J. Li, M. Zhao, Environ. Sci. Technol. 51(2017) 12-27.
    [17]
    L. He, J.M.S. Parra, E.A. Blekkan, D. Chen, Energy Environ. Sci. 3(2010) 1046-1056.
    [18]
    L. He, D. Chen, ChemSusChem 5(2012) 587-595.
    [19]
    M.V. Gil, J. Fermoso, C. Pevida, D. Chen, F. Rubiera, Appl. Catal. B Environ. 184(2016) 64-76.
    [20]
    L. He, H. Berntsen, D. Chen, J. Phys. Chem. 114(2010) 3834-3844.
    [21]
    C. Dang, L. Liu, G. Yang, W. Cai, J. Long, H. Yu, Chem. Eng. J. 383(2019) 123204.
    [22]
    F. Melo, N. Morlan es, Catal. Today 133-135(2008) 374-382.
    [23]
    M. Shokrollahi Yancheshmeh, H.R. Radfarnia, M.C. Iliuta, Chem. Eng. J. 283(2016) 420-444.
    [24]
    C. Dang, S. Wu, Y. Cao, H. Wang, F. Peng, H. Yu, Chem. Eng. J. 360(2019) 47-53.
    [25]
    J. Fermoso, M.V. Gil, F. Rubiera, D. Chen, ChemSusChem 7(2014) 3063-3077.
    [26]
    Y. Gao, J. Jiang, Y. Meng, F. Yan, A. Aihemaiti, Energy Convers. Manag. 171(2018) 133-155.
    [27]
    J.L. Contreras, J. Salmones, J.A. Colín-Luna, L. Nuño, B. Quintana, I. C ordova, B. Zeifert, C. Tapia, G.A. Fuentes, Int. J. Hydrogen Energy 39(2014) 18835-18853.
    [28]
    C. Dang, S. Wu, G. Yang, Y. Cao, H. Wang, F. Peng, H. Yu, J. Energy Chem. 43(2020) 90-97.
    [29]
    C. Dang, S. Wu, G. Yang, Y. Cao, H. Wang, F. Peng, S. Wang, H. Yu, ACS Sustain. Chem. Eng. 8(2020) 7111-7120.
    [30]
    B. Biswas, N. Pandey, Y. Bisht, R. Singh, J. Kumar, T. Bhaskar, Bioresour. Technol. 237(2017) 57-63.
    [31]
    A.L. da Silva, I.L. Müller, Int. J. Hydrogen Energy 36(2011) 2057-2075.
    [32]
    H. Xie, Q. Yu, H. Lu, Y. Zhang, J. Zhang, Q. Qin, Int. J. Hydrogen Energy 42(2017) 28718-28731.
    [33]
    C. Cao, Y. He, G. Wang, H. Jin, Z. Huo, Energy Fuels 31(2017) 13585-13592.
    [34]
    M.S. Yancheshmeh, H.R. Radfarnia, M.C. Iliuta, ACS Sustain. Chem. Eng. 5(2017) 9774-9786.
    [35]
    M.R. Ces ario, B.S. Barros, C. Courson, D.M.A. Melo, A. Kiennemann, Fuel Process. Technol. 131(2015) 247-253.
    [36]
    J. Zhou, B. Ding, C. Tang, J. Xie, B. Wang, H. Zhang, H. Ni, Chem. Eng. J. 327(2017) 914-923.
    [37]
    R. Matsuzaki, H. Masumizu, N. Murakami, Y. Saeki, Bull. Chem. Soc. Jpn. 51(1978) 121-122.
    [38]
    N. Asikin-Mijan, H.V. Lee, Y.H. Taufiq-Yap, Chem. Eng. Res. Des. 102(2015) 368-377.
    [39]
    X. Chen, L. Yang, Z. Zhou, Z. Cheng, Chem. Eng. Sci. 163(2017) 114-122.
    [40]
    I. Zamboni, C. Courson, A. Kiennemann, Appl. Catal. B Environ. 203(2017) 154-165.
    [41]
    S.M. Kim, P.M. Abdala, D. Hosseini, A. Armutlulu, T. Margossian, C. Cop eret, C. Müller, Catal. Sci. Technol. 9(2019) 5745-5756.
    [42]
    B. Dou, Y. Song, C. Wang, H. Chen, Y. Xu, Renew. Sustain. Energy Rev. 30(2014) 950-960.
    [43]
    C. Montero, A. Remiro, B. Valle, L. Oar-Arteta, J. Bilbao, A.G. Gayubo, Ind. Eng. Chem. Res. 58(2019) 14736-14751.
    [44]
    Z. Li, Z. Wang, S. Kawi, ChemCatChem 11(2018) 202-224.
    [45]
    E.A. Sanchez, R.A. Comelli, Int. J. Hydrogen Energy 37(2012) 14740-14746.
    [46]
    D. Li, M. Koike, J. Chen, Y. Nakagawa, K. Tomishige, Int. J. Hydrogen Energy 39(2014) 10959-10970.
    [47]
    C. Dang, H. Yu, H. Wang, F. Peng, Y. Yang, Chem. Eng. J. 286(2016) 329-338.
  • 加载中

Catalog

    通讯作者: 陈斌, bchen63@163.com
    • 1. 

      沈阳化工大学材料科学与工程学院 沈阳 110142

    1. 本站搜索
    2. 百度学术搜索
    3. 万方数据库搜索
    4. CNKI搜索

    Article Metrics

    Article views (159) PDF downloads(16) Cited by()
    Proportional views

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return