<p>With growing food waste challenges globally, acidogenic fermentation using an anaerobic membrane bioreactor (AnMBR) was developed for the co-production of hydrogen, volatile fatty acids (VFAs), and microbial oil from food waste. Batch experiments identified optimal conditions of pH 6.0 and substrate/inoculum ratio of 3:1, which were applied in a semi-continuous AnMBR with in situ VFA recovery. At an organic loading rate of 3.3&#xa0;g-VS L<sup>-1</sup>·d<sup>-1</sup>, the system achieved hydrogen production of 223.9 ± 3.4&#xa0;mL L<sup>-1</sup>·d<sup>-1</sup> and VFA productivity of 1.68 ± 0.15&#xa0;g-COD<sub>VFA</sub> L<sup>-1</sup>·d<sup>-1</sup>. A critical total suspended solids threshold of 15.7&#xa0;g L<sup>-1</sup> was identified for stable membrane performance. The VFA-rich permeate was dominated by acetic and butyric acids. Cultivation of <i>Candida tropicalis</i> on the VFA-rich permeate resulted in biomass and lipid yields of 0.47 and 0.15&#xa0;g g-VFA<sub>consumed</sub><sup>-1</sup>, respectively, with 94.2% VFA consumption. These findings indicate that the integrated AnMBR-yeast system offers promising potential as a biorefinery platform for converting food waste into multiple value-added bioproducts.</p>

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Integrated anaerobic membrane bioreactor-yeast biorefinery for co-production of hydrogen, volatile fatty acids, and microbial oil from food waste

  • Prawat Sukphun,
  • Panitan Jutaporn,
  • Alissara Reungsang

摘要

With growing food waste challenges globally, acidogenic fermentation using an anaerobic membrane bioreactor (AnMBR) was developed for the co-production of hydrogen, volatile fatty acids (VFAs), and microbial oil from food waste. Batch experiments identified optimal conditions of pH 6.0 and substrate/inoculum ratio of 3:1, which were applied in a semi-continuous AnMBR with in situ VFA recovery. At an organic loading rate of 3.3 g-VS L-1·d-1, the system achieved hydrogen production of 223.9 ± 3.4 mL L-1·d-1 and VFA productivity of 1.68 ± 0.15 g-CODVFA L-1·d-1. A critical total suspended solids threshold of 15.7 g L-1 was identified for stable membrane performance. The VFA-rich permeate was dominated by acetic and butyric acids. Cultivation of Candida tropicalis on the VFA-rich permeate resulted in biomass and lipid yields of 0.47 and 0.15 g g-VFAconsumed-1, respectively, with 94.2% VFA consumption. These findings indicate that the integrated AnMBR-yeast system offers promising potential as a biorefinery platform for converting food waste into multiple value-added bioproducts.