Article detail · 2026
Hydrothermal liquefaction of olive mill solid waste using transition metal doped montmorillonite catalyst via biorefinery approach
- Year
- 2026
- Type
- article
Data source split
- YÖKSİS YÖKSİS article record
- YÖKSİS venue INTERNATIONAL JOURNAL OF GREEN ENERGY
- Catalog match (ISSN) International Journal of Green Energy
- OpenAlex OpenAlex enrichment (abstract, citations, topics)
Abstract
English (OpenAlex)
The olive oil industry produces significant waste that contributes to escalating environmental damage. In this study, catalytic hydrothermal liquefaction (HTL) of solid olive mill waste with clays (montmorillonite, kaolin, and bentonite) was carried out at 300°C for 30 min to recover the bio-oil. The yield of the bio-oil without a catalyst was 23.92%. The highest bio-oil yield of 28.56% was obtained with montmorillonite (MMT). Subsequently, various transition metals (chromium, cobalt, zinc, manganese, and nickel) were loaded on MMT by pillaring method and characterized by XRD, XRF, BET, and SEM methods. The yield of bio-oil products increased significantly with the addition of transition metals to MMT catalysts. The Ni/MMT catalyst showed the highest bio-oil yield (38.23%). The elemental analysis shows that the oxygen content of the bio-oil was reduced by the catalysts. The maximum calorific value of the bio-oil (36.13 MJ/kg) was achieved with the MMT catalyst, which was significantly higher than that of the feedstock (19.92 MJ/kg). The energy balance results showed that Ni/MMT had the best positive effect on energy recovery and energy consumption, although the MMT catalyst had the highest HHV. Furthermore, the catalyst significantly affected the composition of hydrocarbons, acids, esters, amides, and heterocyclic compounds in the bio-oil.
Topics
- Thermochemical Biomass Conversion Processes
- Subcritical and Supercritical Water Processes
- Coal Combustion and Slurry Processing
Primary topic Thermochemical Biomass Conversion Processes