4.7 Article

Enhanced looping biomass/vapour gasification utilizing waste heat from molten copper slags

Journal

ENERGY
Volume 252, Issue -, Pages -

Publisher

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.energy.2022.123962

Keywords

Biomass gasification; Copper slag; Exergy analysis

Funding

  1. National Natural Science Foundation of China [52003111]
  2. Shenzhen Science and Technology Innovation Committee [KQJSCX20180322152424539]
  3. Southern University of Science and Technology and Taili Energy Co. Ltd
  4. Opening Project of Key Laboratory of Polymer Processing Engineering (South China University of Technology) , Ministry of Education [KFKT2001]

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The generation of syngas through biomass pyrolysis using molten copper slag as a heat source is an innovative technology in the chemical industry. This study investigated the factors affecting syngas yields and identified the mechanism of integrated looping gasification. The results showed that increasing the FeO/SiO2 mass ratio and minor elements contents improved the efficiency of syngas generation and reduced air pollutant emissions. Additionally, the solid ash waste could be used as soil nutrients, and the generated syngas could be utilized for electricity generation.
The syngas generation from biomass/vapour pyrolysis wih molten copper slag is an innovative technology in chemical industry. Copper slag and rice straws are representative undervalued trashes as metallurgical and agricultural by-products. But the inappropriate handling of them, including direct burying or open burning, could severely aggregate environmental pollution. This present study investigated the biomass pyrolysis integrating waste heat from molten copper slags through carbon-loops extension. The mechanism of integrated looping gasification was identified, where the effects of the mass ratio of FeO/SiO2, minor elements contents of (Al2O3 & nbsp;+ CaO), operational temperature and pressure on target syngas yields were systematically explored through thermodynamic calculation and experimental results. Thermodynamics calculations confirmed that increased mass ratio of FeO/SiO2 (higher than 1.5) and minor elements contents showed obvious catalytic effect on syngas generations, promoted, accompanied with obvious reduction of air pollutants emission. Since FeO favoured solid biomass conversion into syngas, exergy efficiency of generated syngas increased as the mass ratio of FeO/SiO2 was enhanced. Non-isothermal experiments confirmed the incorporation of FS1-5 and FS5-1 obviously undermined the polluting gas yields, which were in overall agreement with thermodynamics results. Meanwhile, the solid ash waste could serve as raw materials for soil nutrients, and the generated syngas could be utilized for electricity generation, based on which an integrated and sustainable looping system would be proposed. Therefore, the favourable results could thus provide significant insights for deepened understanding of biomass gasification as well as the efficient utilization of rice straw and copper slag. (C)& nbsp;2022 Elsevier Ltd. All rights reserved.

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