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<title>Área de Ingeniería Química</title>
<link href="https://hdl.handle.net/10259/7524" rel="alternate"/>
<subtitle/>
<id>https://hdl.handle.net/10259/7524</id>
<updated>2026-04-21T05:12:53Z</updated>
<dc:date>2026-04-21T05:12:53Z</dc:date>
<entry>
<title>Subcritical Water as Pretreatment Technique for Bioethanol Production from Brewer’s Spent Grain within a Biorefinery Concept</title>
<link href="https://hdl.handle.net/10259/7526" rel="alternate"/>
<author>
<name>Alonso Riaño, Patricia</name>
</author>
<author>
<name>Amândio, Mariana S.T.</name>
</author>
<author>
<name>Xavier, Ana María Rebelo Barreto</name>
</author>
<author>
<name>Beltrán Calvo, Sagrario</name>
</author>
<author>
<name>Sanz Díez, Mª Teresa</name>
</author>
<id>https://hdl.handle.net/10259/7526</id>
<updated>2023-04-18T10:38:27Z</updated>
<published>2022-11-01T00:00:00Z</published>
<summary type="text">Subcritical Water as Pretreatment Technique for Bioethanol Production from Brewer’s Spent Grain within a Biorefinery Concept
Alonso Riaño, Patricia; Amândio, Mariana S.T.; Xavier, Ana María Rebelo Barreto; Beltrán Calvo, Sagrario; Sanz Díez, Mª Teresa
Bioeconomy and environmental issues envisage industrial by-products such as Brewer’s&#13;
spent grain (BSG) as renewable resources for their recycling and reuse within a biorefinery concept.&#13;
This study aimed to investigate the production of bioethanol from subcritical water (subW) pretreated&#13;
BSG, following the conversion of the BSG biopolymers cellulose and hemicelluloses. The subW&#13;
pretreatment was performed in a batch reactor at 174 ◦C, during 60 min and 5% (w/v) of dry BSG&#13;
charge. The behavior of BSG biopolymers under subW pretreatment was monitored by evaluating&#13;
the chemical composition of the liquid and solid streams and the chemical and structural changes&#13;
caused in the solid residues by scanning electron microscope (SEM), CHNS elemental analysis&#13;
and water retention value (WRV). The production of bioethanol from subW-pretreated BSG was&#13;
assessed by separate hydrolysis and fermentation (SHF) and also by simultaneous saccharification&#13;
and fermentation (SSF) by using the enzymatic cocktail Celluclast 1.5 L (40 FPU/gsolids) and the yeast&#13;
Ethanol Red®. The higher bioethanol productivity (1.073 g·L&#13;
−1&#13;
·h&#13;
−1&#13;
) and concentration (32.18 g/L)&#13;
were achieved by SSF with higher solids’ loading (25%) and following a fed-batch strategy. These&#13;
results suggest that subcritical water pretreatment is a promising technology for the valorization of&#13;
BSG as a feedstock for second-generation bioethanol production.
</summary>
<dc:date>2022-11-01T00:00:00Z</dc:date>
</entry>
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