Multiscale simulation of biomass gasification in fluidized bed reactors
Reviewartikel, 2026

Biomass fluidized bed gasifier (BFBG) is core equipment for producing sustainable syngas, which is one of the alternatives to replace fossil fuels in producing green fuels or chemicals. Multiscale simulations provide powerful tools to reveal the biomass gasification behaviors in fluidized bed reactors, thereby supporting the design, optimization, and scaling-up of BFBG. This paper systematically reviews sub-models (molecular-scale, particle-scale, and meso-scale models) and reactor-scale models for the multiscale simulation of the BFBG. First, the advantages and disadvantages of various drying models, pyrolysis kinetics, and char gasification models at the molecular scale are discussed. The particle-scale models (i.e., zero-dimensional, corrected zero-dimensional, interface-based, and two-/three-dimensional models) are analyzed in terms of their accuracy and computational demands. The development of meso-scale models is also addressed. Additionally, machine learning methods used to assist in developing sub-models across different scales are summarized. Then, from the perspective of multiscale coupling between models at various scales, the strengths and limitations of reactor-scale models for multiscale simulation of the BFBG are analyzed. Finally, the conclusions of this review and perspectives for future research, which aim to develop fast, reliable, and efficient models for the multiscale simulation of the BFBG, are presented.

Fluidized bed gasifier

Multiscale simulations

Sub-models

Reactor-scale models

Biomass gasification

Författare

Hao Luo

Wuhan University of Science and Technology

Henrik Ström

Chalmers, Mekanik och maritima vetenskaper, Strömningslära

Qingang Xiong

Wuhan Institute of Technology

Ruiyan Sun

Nanjing Tech University

Green Energy and Environment

20962797 (ISSN) 24680257 (eISSN)

Vol. In Press

Styrkeområden

Energi

Ämneskategorier (SSIF 2025)

Energiteknik

DOI

10.1016/j.gee.2026.07.003

Mer information

Senast uppdaterat

2026-08-11