Lignin and spent bleaching clay into mono-aromatic hydrocarbons by a cascade dual catalytic pyrolysis system: Critical role of spent bleaching clay

Int J Biol Macromol. 2023 May 1:236:123879. doi: 10.1016/j.ijbiomac.2023.123879. Epub 2023 Mar 3.

Abstract

In the present study, a cascade dual catalytic system was used for the co-pyrolysis of lignin with spent bleaching clay (SBC) to efficiently produce mono-aromatic hydrocarbon (MAHs). The cascade dual catalytic system is composed of calcined SBC (CSBC) and HZSM-5. In this system, SBC not only acts as a hydrogen donor and catalyst in the co-pyrolysis process, but is also used as a primary catalyst in the cascade dual catalytic system after recycling the pyrolysis residues. The effects of different influencing factors (i.e., temperature, CSBC-to-HZSM-5 ratio, and raw materials-to-catalyst ratio) on the system were explored. It was observed that, when the temperature was 550 °C, the CSBC-to-HZSM-5 ratio was 1:1, and when the raw materials-to-catalyst ratio was 1:2, the highest bio-oil yield was 21.35 wt%. The relative MAHs content in bio-oil was 73.34 %, whereas the relative polycyclic aromatic hydrocarbons (PAHs) content was 23.01 %. Meanwhile, the introduction of CSBC inhibited the generation of graphite-like coke as indicated by HZSM-5. This study realizes the full resource utilization of spent bleaching clay and reveals the environmental hazards caused by spent bleaching clay and lignin waste.

Keywords: Cascade dual catalytic system; Catalytic co-pyrolysis; Lignin; Mono-aromatic hydrocarbons; Spent bleaching clay.

MeSH terms

  • Biofuels
  • Catalysis
  • Clay
  • Hot Temperature
  • Hydrocarbons, Aromatic* / chemistry
  • Hypochlorous Acid
  • Lignin* / chemistry
  • Polyphenols / chemistry
  • Pyrolysis

Substances

  • Lignin
  • Clay
  • Bio-Oil
  • Polyphenols
  • Hypochlorous Acid
  • Hydrocarbons, Aromatic
  • Biofuels