Thermomechanical and Alkaline Peroxide Mechanical Pulping of Lignocellulose Residue Obtained from the 2-Furaldehyde Production Process.

alkaline peroxide mechanical pulping process birch wood lignocellulose thermomechanical pulping process

Journal

Materials (Basel, Switzerland)
ISSN: 1996-1944
Titre abrégé: Materials (Basel)
Pays: Switzerland
ID NLM: 101555929

Informations de publication

Date de publication:
25 Aug 2022
Historique:
received: 18 07 2022
revised: 18 08 2022
accepted: 22 08 2022
entrez: 9 9 2022
pubmed: 10 9 2022
medline: 10 9 2022
Statut: epublish

Résumé

The necessity for the reduction in greenhouse gas emissions, the growing demand for the improvement of biorefinery technologies, and the development of new biorefining concepts oblige us as a society, and particularly us, as scientists, to develop novel biorefinery approaches. The purpose of this study is to thoroughly evaluate the leftover lignocellulosic (LC) biomass obtained after the manufacture of 2-furaldehyde, with the intention of further valorizing this resource. This study demonstrates that by using thermomechanical and alkaline peroxide mechanical pulping techniques, birch wood chips can be used in the new biorefinery processing chain for the production of 2-furaraldehyde, acetic acid, and cellulose pulp. In addition, the obtained lignocellulosic residue is also characterized. To produce a lignocellulosic material without pentoses and with the greatest amount of cellulose fiber preserved for future use, a novel bench-scale reactor technology is used. Studies were conducted utilizing orthophosphoric acid as a catalyst to deacetylate and dehydrate pentose monosaccharides found in birch wood, converting them to 2-furaldehyde and acetic acid. The results showed that, with the least amount of admixtures, the yields of the initial feedstock's oven-dried mass (o.d.m.) of 2-furaldehyde, acetic acid, and lignocellulose residue ranged from 0.04 to 10.84%, 0.51 to 6.50%, and 68.13 to 98.07%, respectively, depending on the pretreatment conditions utilized. The ideal 2-furaldehyde production conditions with reference to the purity and usability of cellulose in residual lignocellulosic material were also discovered through experimental testing. The experiment that produced the best results in terms of 2-furaldehyde yield and purity of residual lignocellulose used a catalyst concentration of 70%, a catalyst quantity of 4%, a reaction temperature of 175 °C, and a treatment period of 60 min. It was possible to create pulp with a tensile index similar to standard printing paper by mechanically pulping the necessary LC residue with alkaline peroxide, proving that stepwise 2-furaldehyde production may be carried out with subsequent pulping to provide a variety of value-added goods.

Identifiants

pubmed: 36079261
pii: ma15175872
doi: 10.3390/ma15175872
pmc: PMC9457282
pii:
doi:

Types de publication

Journal Article

Langues

eng

Subventions

Organisme : European Regional Development Fund
ID : 1.1.1.2/VIAA/2/19/392

Références

Bioresour Technol. 2011 Mar;102(6):4304-12
pubmed: 21277771
ChemSusChem. 2022 Mar 8;15(5):e202102391
pubmed: 34919322
Polymers (Basel). 2021 Dec 13;13(24):
pubmed: 34960916
Polymers (Basel). 2021 May 31;13(11):
pubmed: 34072843
Methods Mol Biol. 2009;581:61-77
pubmed: 19768616

Auteurs

Maris Puke (M)

Latvian State Institute of Wood Chemistry, Dzerbenes 27, LV-1006 Riga, Latvia.

Daniela Godina (D)

Latvian State Institute of Wood Chemistry, Dzerbenes 27, LV-1006 Riga, Latvia.
Department of Chemistry, Latvia University of Latvia, Jelgavas 1, LV-1004 Riga, Latvia.

Prans Brazdausks (P)

Latvian State Institute of Wood Chemistry, Dzerbenes 27, LV-1006 Riga, Latvia.

Janis Rizikovs (J)

Latvian State Institute of Wood Chemistry, Dzerbenes 27, LV-1006 Riga, Latvia.

Velta Fridrihsone (V)

Latvian State Institute of Wood Chemistry, Dzerbenes 27, LV-1006 Riga, Latvia.

Classifications MeSH