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Article

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Title

Deepening the understanding and extending the potential of waste biomass temperature treatment using sunflower husk as an example

Authors

[ 1 ] Instytut Technologii Materiałów, Wydział Inżynierii Mechanicznej, Politechnika Poznańska | [ 2 ] Instytut Inżynierii Materiałowej, Wydział Inżynierii Materiałowej i Fizyki Technicznej, Politechnika Poznańska | [ P ] employee

Scientific discipline (Law 2.0)

[2.8] Materials engineering
[2.9] Mechanical engineering

Year of publication

2026

Published in

Biomass and Bioenergy

Journal year: 2026 | Journal volume: vol. 207

Article type

scientific article

Publication language

english

Keywords
EN
Abstract

EN The efficient management of waste biomass, such as sunflower husk (SH), is vital for the currently desired shift towards Circular Economy and maximizing resource efficiency in various industrial sectors. Among the most popular approaches applied to biomass are thermal treatments aimed at energy production and the manufacturing of solid and liquid fuels. Therefore, torrefaction and pyrolysis of biomass, especially wood, have been comprehensively investigated in this context. Herein, the presented study focuses on slightly overlooked aspects critical for other potential applications, such as fertilizers, active fillers in composite systems, or food additives. Torrefaction temperatures lower than conventionally applied in the energy sector have been investigated, and the impact of temperature-induced non-enzymatic browning reactions, including Maillard reactions, as well as partial thermal decomposition and structural rearrangements on the appearance, chemical composition, morphology, grinding susceptibility, and thermal stability of SH has been analyzed. Proper selection of torrefaction parameters enabled adjustment of SH browning extent and covered the entire palette of brown colors. Appearance changes aligned with the moisture removal, hemicellulose degradation, and rearrangements in cellulose crystalline structures, increasing SH crystallinity and reducing atomic H/C and O/C ratios. Moreover, these structural changes gradually enhanced the grinding susceptibility of SH, which will facilitate its particle size reduction, crucial in multiple applications. Partial and controllable temperature-induced degradation also shifted the thermal decomposition onset by ∼50 °C, which significantly extends the potential processing window and opens up new directions for torrefied SH. Finally, tracking torrefaction energy consumption revealed satisfactory energy efficiency of the proposed process.

Date of online publication

30.11.2025

Pages (from - to)

108718-1 - 108718-17

DOI

10.1016/j.biombioe.2025.108718

URL

https://www.sciencedirect.com/science/article/pii/S0961953425011298?via%3Dihub

Comments

Article Number: 108718

Ministry points / journal

100

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