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Título : Biorefinery processing of waste to supply cost-effective and sustainable inputs for two-stage microalgal cultivation
Autor: Chen, Shulin
Pelaez Samaniego, Manuel Raul
Hiscox, William
Bule, Mahesh
Wensel, Pierre C.
Helms, Gregory L.
Davis, William C.
Kirchhoff, Helmut
Garcia Perez, Manuel
Correspondencia: Wensel, Pierre C., pierrewensel@gmail.com
Palabras clave : Anaerobic digestion
Algae
Biorefinery
Enzyme hydrolysis
Food and lignocellulosic waste
Torrefaction
Computer science applications
Fluid flow and transfer processes
General engineering
General materials science
Instrumentation
Process chemistry and technology
Área de conocimiento FRASCATI amplio: 1. Ciencias Naturales y Exactas
Área de conocimiento FRASCATI detallado: 1.6.12 Botánica
Área de conocimiento FRASCATI específico: 1.6 Ciencias Biológicas
Área de conocimiento UNESCO amplio: 08 - Agricultura, Silvicultura, Pesca y Veterinaria
ÁArea de conocimiento UNESCO detallado: 0841 - Veterinaria
Área de conocimiento UNESCO específico: 084 - Veterinaria
Fecha de publicación : 2022
Volumen: Volumen 12, número 23
Fuente: Applied Sciences (Switzerland)
metadata.dc.identifier.doi: 10.3390/app12031485
Tipo: ARTÍCULO
Abstract: 
Overcoming obstacles to commercialization of algal-based processes for biofuels and co-products requires not just piecemeal incremental improvements, but rather a comprehensive and fundamental re-consideration starting with the selected algae and its associated cultivation, harvesting, biomass conversion, and refinement. A novel two-stage process designed to address challenges of mass outdoor microalgal cultivation for biofuels and co-products was previously demonstrated using an oleaginous, haloalkaline-tolerant, and multi-trophic green Chlorella vulgaris. ALP2 from a soda lake. This involved cultivating the microalgae in a fermenter heterotrophically or photobioreactor mixotrophically (first-stage) to rapidly obtain high cell densities and inoculate an open-pond phototrophic culture (second-stage) featuring high levels of NaHCO3, pH, and salinity. An improved two-stage cultivation that instead sustainably used as more cheap and sustainable inputs the organic carbon, nitrogen, and phosphorous from fractionation of waste was here demonstrated in a small-scale biorefinery process. The first cultivation stage consisted of two simultaneous batch flask cultures featuring (1) mixotrophic cell productivity of 7.25 × 107 cells mL−1 day−1 on BG-110 medium supplemented with 1.587 g L−1 urea and an enzymatic hydrolysate of pre-treated (torrefaction + grinding + ozonolysis + soaking ammonia) wheat-straw that corresponded to 10 g L−1 glucose, and (2) mixotrophic cell productivity of 2.25 × 107 cells mL−1 day−1 on BG-110 medium supplemented with 1.587 g L−1 urea and a purified and de-toxified condensate of pre-treated (torrefaction + grinding) wheat straw that corresponded to 0.350 g L−1 of potassium acetate. The second cultivation stage featured 1H NMR-determined phototrophic lipid productivity of 0.045 g triacylglycerides (TAG) L−1 day−1 on BG-110 medium supplemented with 16.8 g L−1 NaHCO3 and fed batch-added 22% (v/v) anaerobically digested food waste effluent at HCl-mediated pH 9.</jats:p>
URI : http://dspace.ucuenca.edu.ec/handle/123456789/40452
https://api.elsevier.com/content/abstract/scopus_id/85123718385
URI Fuente: https://www.mdpi.com/2076-3417/12/3
ISSN : 2076-3417
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