Influence of temperature on the bio-oil production from biomass pyrolysis in a solar hybrid drop-tube/fixed-bed reactor
Year of publication
2027
Authors
Subramani, Vignesvar Krish; Rodat, Sylvain; Pienihäkkinen, Elmeri; Sirous-Rezaei, Pouya; Abanades, Stéphane
Abstract
Aviation remains a critical climate challenge in Europe, with emissions stubbornly high due to fossil fuel dependence, rising demand, and the slow adoption of low-carbon alternatives. SAFs, currently under 1% of fuel use, face barriers like high costs and limited feedstocks. The EU's Fit for 55 package mandates SAF blending targets of 2% by 2025, scaling to 70% by 2050, including e-fuels. To address these challenges, CNRS-PROMES (France) developed a solar-assisted quartz hybrid drop-tube/fixed-bed reactor (DTR), optimized for low-temperature pyrolysis (500 - 700 °C) and bio-oil production from the pyrolysis of demolition wood. The aim was to evaluate and optimize bio-oil yields, analyze products distribution (bio-oil, char, and gases) and elemental composition, and identify potential improvements to the solar reactor. The results showed that the bio-oil yield peaked at 500 °C, reaching 56 wt% when accounting for the “mass lost” required to close the mass balance, assuming that the missing mass consisted exclusively of liquid products. When considering only the measured mass, the bio-oil yield peaked at 600 °C, at 50 wt%. It declined at higher temperatures due to secondary cracking, while gas yield increased (12.5 - 20.4 wt%) and char yield remained stable (∼32 wt%) before slightly dropping at 700 °C. Compared to a Bubbling Fluidized Bed (BFB) reactor, the DTR produced less bio-oil (43 wt% for DTR vs. 62 wt% for BFB) and less gas (12 wt% for DTR vs. 17 wt% for BFB), but more char (32 wt% for DTR vs. 15 wt% for BFB), highlighting trade-offs tied to heat transfer and residence time. The study concludes that moderate temperatures (500 - 600 °C) favor bio-oil and char, while higher temperatures promote gasification, demonstrating the potential of solar-driven pyrolysis for scalable, carbon-neutral SAF production and circular biomass valorization.
Show moreOrganizations and authors
Publication type
Publication format
Article
Parent publication type
Journal
Article type
Original article
Audience
ScientificPeer-reviewed
Peer-ReviewedMINEDU's publication type classification code
A1 Journal article (refereed), original researchPublication channel information
Journal/Series
Volume
217
Issue
Part C
Article number
109982
ISSN
Publication forum
Open access
Open access in the publisher’s service
Yes
Open access of publication channel
Partially open publication channel
License of the publisher’s version
CC BY
Self-archived
No
Other information
Fields of science
Chemical engineering
Keywords
[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
Identified topic
[object Object]
Language
English
International co-publication
Yes
Co-publication with a company
No
DOI
10.1016/j.biombioe.2026.109982
The publication is included in the Ministry of Education and Culture’s Publication data collection
Yes