Abstract:
Oxidative torrefaction is a promising way for biomass upgrading and solid biofuel production. Alkali metals are
considered to be efficient activators for enhancing biofuel upgrading during the thermal reaction process. Herein,
the microalga Nannochloropsis Oceanica is selected as the feedstock for assessing potassium carbonate activated
effect on solid biofuel production through oxidative torrefaction. The potential of potassium carbonate on
microalgal biofuel properties upgrading is deeply explored. SEM observation and BET analysis show that torrefied
microalgae can be transformed from a spherical structure with wrinkles to smaller particles with larger
surface areas and higher total pore volumes, implying that potassium carbonate is a promising porogen.
Moreover, potassium carbonate can significantly change the DTG curve at the temperatures of 250 â—¦C and 300 â—¦C
from one peak to two peaks, inferring that the activated effect of potassium carbonate occurs on the torrefied
microalgae. 13C NMR analysis reveals that the microalgal components significantly change as the torrefaction
severity increases, with the decomposition of carbohydrate and protein components. When the potassium carbonate
ratio increases from 0:1 to 1:1, the graphitization degree increase from 3.065 to 1.262, along with the
increase in the HHV of solid biofuel from 25.024 MJ kg 1 to 31.890 MJ kg 1. In total, this study has comprehensively
revealed the activated effect of potassium carbonate on improving the properties of microalgal solid
biofuel.
Citation:
Zhang, C., Li, F., Ho, S.-H., Chen, W.-H., Gunarathne, D. S., & Show, P. L. (2022). Oxidative torrefaction of microalga Nannochloropsis Oceanica activated by potassium carbonate for solid biofuel production. Environmental Research, 212, 113389. https://doi.org/10.1016/j.envres.2022.113389