TY - JOUR
T1 - Numerical simulation of residence time distribution in multi-chamber fluidized bed with continuous feeding
AU - Guo, Xiaodie
AU - Zhou, Wenjing
AU - Wei, Jinjia
N1 - Publisher Copyright:
© 2026, Materials China. All rights reserved.
PY - 2026/4/25
Y1 - 2026/4/25
N2 - To reveal the hydrodynamic characteristics and particle residence time distribution (RTD) patterns of a multi-chamber fluidized bed reactor, and to optimize its structure and operational parameters, a numerical model of a continuously fed bubbling fluidized bed was developed using the Eulerian-Eulerian two-fluid model with species transport equations. Comparative simulations were carried out for baffle-free fluidized beds and multi-chamber beds under varying baffle opening heights, outlet tube heights, immersed tube bundle configurations, and solid feed rates. The gas-solid flow patterns, RTD, and back-mixing behavior were systematically evaluated. The results show that the multi-chamber baffled bed effectively suppresses bubble growth and promotes uniform hydrodynamics across chambers. The baffle structure makes the RTD approach plug flow, increases the average particle residence time by 14.5%, and reduces the variance from 0.79 to 0.58, with an orifice height of 20 mm being optimal. Reducing bed height shortened residence time by 45.2% but had limited mixing benefits, while adding immersed tubes further reduced variance by 15.1%. Decreasing the solid feed rate from 80 g/s to 60 g/s increased average residence time but intensified back-mixing. This study offers theoretical and practical insights for the design and scale-up of high-performance calcium looping reactors for thermochemical energy storage.
AB - To reveal the hydrodynamic characteristics and particle residence time distribution (RTD) patterns of a multi-chamber fluidized bed reactor, and to optimize its structure and operational parameters, a numerical model of a continuously fed bubbling fluidized bed was developed using the Eulerian-Eulerian two-fluid model with species transport equations. Comparative simulations were carried out for baffle-free fluidized beds and multi-chamber beds under varying baffle opening heights, outlet tube heights, immersed tube bundle configurations, and solid feed rates. The gas-solid flow patterns, RTD, and back-mixing behavior were systematically evaluated. The results show that the multi-chamber baffled bed effectively suppresses bubble growth and promotes uniform hydrodynamics across chambers. The baffle structure makes the RTD approach plug flow, increases the average particle residence time by 14.5%, and reduces the variance from 0.79 to 0.58, with an orifice height of 20 mm being optimal. Reducing bed height shortened residence time by 45.2% but had limited mixing benefits, while adding immersed tubes further reduced variance by 15.1%. Decreasing the solid feed rate from 80 g/s to 60 g/s increased average residence time but intensified back-mixing. This study offers theoretical and practical insights for the design and scale-up of high-performance calcium looping reactors for thermochemical energy storage.
UR - https://www.scopus.com/pages/publications/105044552646
U2 - 10.11949/0438-1157.20251066
DO - 10.11949/0438-1157.20251066
M3 - 文章
AN - SCOPUS:105044552646
SN - 0438-1157
VL - 77
SP - 1755
EP - 1767
JO - Huagong Xuebao/Journal of Chemical Industry and Engineering (China)
JF - Huagong Xuebao/Journal of Chemical Industry and Engineering (China)
IS - 4
ER -