Hydrothermal liquefaction of microalgae for biocrude production: Improving the biocrude properties with vacuum distillation.

Blessing Elo-Oghene Eboibi, David Milton Lewis, Peter John Ashman, Senthil Chinnasamy
Author Information
  1. Blessing Elo-Oghene Eboibi: Microalgal Engineering Research Group, School of Chemical Engineering, The University of Adelaide, Adelaide, South Australia 5005, Australia. Electronic address: blessing.eboibi@adelaide.edu.au.
  2. David Milton Lewis: Microalgal Engineering Research Group, School of Chemical Engineering, The University of Adelaide, Adelaide, South Australia 5005, Australia; Muradel Pty Ltd, Maylands, South Australia 5069, Australia.
  3. Peter John Ashman: Microalgal Engineering Research Group, School of Chemical Engineering, The University of Adelaide, Adelaide, South Australia 5005, Australia.
  4. Senthil Chinnasamy: Biotechnology Division, Aban Infrastructure Pvt. Ltd, Chennai 600 008, Tamil Nadu, India.

Abstract

This paper proposes a two-part process for producing biocrude with reduced impurities. The biocrude was produced from hydrothermal liquefaction (HTL) of Spirulina sp. and Tetraselmis sp. in a batch reactor at both 300 and 350°C, 5min, and 16%w/w solid feed composition. The resultant biocrudes were vacuum distilled at a maximum temperature of 360°C. It was shown that biocrude quality could be enhanced without using catalyst by vacuum distillation (VD). The biocrude yield for Spirulina sp. was 36wt% at 300°C, 42wt% at 350°C, and for Tetraselmis sp. was 34wt% at 300°C, and 58wt% at 350°C. VD of Spirulina sp. biocrude obtained at 300 and 350°C led to 62 and 67wt% distilled biocrudes yield, respectively. VD of Tetraselmis sp. biocrude obtained at 300°C was 70wt%, and 73wt% at 350°C. The higher heating values (HHV) increased from 32MJ/kg to 40MJ/kg. There were substantial reductions in oxygen, metallic content, and boiling point ranges in distilled biocrudes.

Keywords

MeSH Term

Biotechnology
Carbon
Chemical Fractionation
Chlorophyta
Color
Complex Mixtures
Distillation
Energy Metabolism
Hydrogen
Hydrogen-Ion Concentration
Metals
Microalgae
Nitrogen
Temperature
Vacuum
Water

Chemicals

Complex Mixtures
Metals
Water
Carbon
Hydrogen
Nitrogen

Word Cloud

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