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Conversion of water hyacinth to value-added fuel via hydrothermal carbonization

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  • Zhang, Chaoyue
  • Ma, Xiaoqian
  • Chen, Xinfei
  • Tian, Yunlong
  • Zhou, Yi
  • Lu, Xiaoluan
  • Huang, Tao

Abstract

Hydrothermal carbonization (HTC) of water hyacinth (WH) was investigated to elucidate the effects of reaction temperature, residence time and pH (acid and alkali catalysts) on the chemical properties, combustion behavior and emission properties of hydrochar. Results found that high reaction temperature, long residence time and catalysts were beneficial to ameliorate the fuel properties of hydrochar in terms of calorific value and energy densification, albeit the yield and energetic recovery efficiency got deteriorated. The lower H/C, O/C and N/C ratios of hydrochar reflected more severe dehydration, decarboxylation and denitrogenation reactions within HTC process. SEM images represented that HTC could lead to the fragmentized structure of hydrochar. As HTC progressed, the vibration of hydroxyl and carboxyl groups in hydrochar weakened, which was conductive to improving the hydrophobicity of hydrochar. The combustion characteristics of hydrochar got remarkable upgraded after HTC, whose combustibility index S and combustion stability index Rw were both superior to that of WH. The hydrochar obtained from the addition of alkali catalyst (NaOH) possessed lower emission concentration of SO2 and NOX during combustion, thus demonstrating better emission properties. Overall, HTC was a feasible way to bridge the gap from WH to alternative renewable fuel.

Suggested Citation

  • Zhang, Chaoyue & Ma, Xiaoqian & Chen, Xinfei & Tian, Yunlong & Zhou, Yi & Lu, Xiaoluan & Huang, Tao, 2020. "Conversion of water hyacinth to value-added fuel via hydrothermal carbonization," Energy, Elsevier, vol. 197(C).
  • Handle: RePEc:eee:energy:v:197:y:2020:i:c:s0360544220303005
    DOI: 10.1016/j.energy.2020.117193
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    References listed on IDEAS

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    1. Zhao, Peitao & Shen, Yafei & Ge, Shifu & Chen, Zhenqian & Yoshikawa, Kunio, 2014. "Clean solid biofuel production from high moisture content waste biomass employing hydrothermal treatment," Applied Energy, Elsevier, vol. 131(C), pages 345-367.
    2. Akbar Saba & Kyle McGaughy & M. Toufiq Reza, 2019. "Techno-Economic Assessment of Co-Hydrothermal Carbonization of a Coal-Miscanthus Blend," Energies, MDPI, vol. 12(4), pages 1-17, February.
    3. Toor, Saqib Sohail & Rosendahl, Lasse & Rudolf, Andreas, 2011. "Hydrothermal liquefaction of biomass: A review of subcritical water technologies," Energy, Elsevier, vol. 36(5), pages 2328-2342.
    4. Ahmed, I.I. & Gupta, A.K., 2011. "Kinetics of woodchips char gasification with steam and carbon dioxide," Applied Energy, Elsevier, vol. 88(5), pages 1613-1619, May.
    5. Gao, Ying & Wang, Xianhua & Wang, Jun & Li, Xiangpeng & Cheng, Jianjun & Yang, Haiping & Chen, Hanping, 2013. "Effect of residence time on chemical and structural properties of hydrochar obtained by hydrothermal carbonization of water hyacinth," Energy, Elsevier, vol. 58(C), pages 376-383.
    6. Kambo, Harpreet Singh & Dutta, Animesh, 2015. "A comparative review of biochar and hydrochar in terms of production, physico-chemical properties and applications," Renewable and Sustainable Energy Reviews, Elsevier, vol. 45(C), pages 359-378.
    7. He, Chao & Giannis, Apostolos & Wang, Jing-Yuan, 2013. "Conversion of sewage sludge to clean solid fuel using hydrothermal carbonization: Hydrochar fuel characteristics and combustion behavior," Applied Energy, Elsevier, vol. 111(C), pages 257-266.
    8. Gao, Pin & Zhou, Yiyuan & Meng, Fang & Zhang, Yihui & Liu, Zhenhong & Zhang, Wenqi & Xue, Gang, 2016. "Preparation and characterization of hydrochar from waste eucalyptus bark by hydrothermal carbonization," Energy, Elsevier, vol. 97(C), pages 238-245.
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    Cited by:

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