The significance of gas release on the mixing of larger particles in bubbling fluidized beds
Artikel i vetenskaplig tidskrift, 2026

The mixing of larger particles (e.g., fuel particles) in a bubbling fluidized bed is governed by buoyancy and drag, which correspondingly promote segregation and internal circulation. Prior studies have shown that gas released from such particles during drying or devolatilization can generate so-called endogenous bubbles, which exert an effective lift force on the particle. However, the impact of gas release under bubbling conditions and with over-bed particle feeding, remains unexplored. This study investigates how gas release influences the mixing of such particles in a bubbling fluidized bed. Experiments were conducted in a fluid-dynamically downscaled model simulating biomass pyrolysis at 700 °C in a bed of silica sand fluidized with flue gas using magnetic particle tracking and gas-releasing tracers. Different behaviors were observed depending on the fluidization velocity. At low fluidization velocities (u0/umf ≤ 2), buoyant particles sink slightly deeper by locally reducing the concentration of surrounding suspension, whereas heavy particles experience inhibited sinking resulting in preferred positions closer to the bed surface. As fluidization velocity increases beyond u0/umf ≥ 3.5, the effect of gas release on axial mixing diminishes, while the lateral mixing becomes more pronounced, with the dispersion coefficient enhanced by up to 40%. These findings inform industrial fluidized-bed design.

Stefan flow

Solids mixing

Endogenous bubbles

Magnetic Particle Tracking

Fluid-dynamic scaling

Solids segregation

Författare

Azka Siddiqui

Chalmers, Rymd-, geo- och miljövetenskap, Energiteknik

Jing Shi

Student vid Chalmers

Anna Köhler

BioShare AB

Diana Carolina Guio Perez

Chalmers, Rymd-, geo- och miljövetenskap, Energiteknik

David Pallarès

Chalmers, Rymd-, geo- och miljövetenskap, Energiteknik

Fuel Processing Technology

0378-3820 (ISSN)

Vol. 291 108542

Ämneskategorier (SSIF 2025)

Energiteknik

DOI

10.1016/j.fuproc.2026.108542

Mer information

Senast uppdaterat

2026-08-21