<p>Due to the increased interest in durable, sustainable and recyclable fabrics, natural fibres are currently experiencing a renaissance. This study investigated controlled anaerobic water retting of flax as a potential process step in a future biorefinery, allowing the simultaneous production of high-quality fibres, stalks, organic acids or biomethane. Anaerobic water retting of flax resulted in the formation of a retting effluent containing 1.745 ± 605&#xa0;mg&#xa0;L<sup>−1</sup> acetic acid, 1.051 ± 354&#xa0;mg&#xa0;L<sup>−1</sup> butyric acid, 145 ± 38&#xa0;mg&#xa0;L<sup>−1</sup> propionic acid and 190 ± 96&#xa0;mg&#xa0;L<sup>−1</sup> caproic acid. Furthermore, 38.0 ± 7.2&#xa0;mL&#xa0;g&#xa0;oDM<sup>−1</sup> hydrolysis gas with 41.6–54.2% CO<sub>2</sub> and 45.3–58.1% H<sub>2</sub> was produced. Anaerobic digestion tests resulted in a specific biomethane potential range of 221 ± 14 to 261 ± 13&#xa0;mL CH<sub>4</sub> g COD<sup>−1</sup> for the retting effluent. The average yield of fibres and stalks from flax was 22% and 51%, respectively. The flax fibres obtained were mainly composed of cellulose (75.1% of dry matter). Hemicellulose and lignin accounted for 7.1 ± 0.3% and 1.9 ± 0.3%, respectively. The tensile strength and Young’s modulus of the fibres were 354 ± 130&#xa0;MPa and 35 ± 8 GPa, respectively. The annual product yields for a cultivation area of 1&#xa0;ha of flax were estimated at 0.67 t of fibres, 1.55 t of stalks and 117 m<sup>3</sup> biomethane.</p>

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Controlled anaerobic water retting of flax as part of an innovative biorefinery process

  • Judit Harsányi,
  • Marzena Poraj-Kobielska,
  • Harald Wedwitschka,
  • Matthias Tirsch,
  • Jörg Kretzschmar

摘要

Due to the increased interest in durable, sustainable and recyclable fabrics, natural fibres are currently experiencing a renaissance. This study investigated controlled anaerobic water retting of flax as a potential process step in a future biorefinery, allowing the simultaneous production of high-quality fibres, stalks, organic acids or biomethane. Anaerobic water retting of flax resulted in the formation of a retting effluent containing 1.745 ± 605 mg L−1 acetic acid, 1.051 ± 354 mg L−1 butyric acid, 145 ± 38 mg L−1 propionic acid and 190 ± 96 mg L−1 caproic acid. Furthermore, 38.0 ± 7.2 mL g oDM−1 hydrolysis gas with 41.6–54.2% CO2 and 45.3–58.1% H2 was produced. Anaerobic digestion tests resulted in a specific biomethane potential range of 221 ± 14 to 261 ± 13 mL CH4 g COD−1 for the retting effluent. The average yield of fibres and stalks from flax was 22% and 51%, respectively. The flax fibres obtained were mainly composed of cellulose (75.1% of dry matter). Hemicellulose and lignin accounted for 7.1 ± 0.3% and 1.9 ± 0.3%, respectively. The tensile strength and Young’s modulus of the fibres were 354 ± 130 MPa and 35 ± 8 GPa, respectively. The annual product yields for a cultivation area of 1 ha of flax were estimated at 0.67 t of fibres, 1.55 t of stalks and 117 m3 biomethane.