TY - JOUR
T1 - Numerical and Experimental Study of Multiphase Transient Core-Annular Flow Patterns in a Spouted Bed
AU - Zhou, Ling
AU - Han, Chen
AU - Bai, Ling
AU - Shi, Weidong
AU - Agarwal, Ramesh
N1 - Publisher Copyright:
© Copyright 2020 by ASME.
PY - 2020/9/1
Y1 - 2020/9/1
N2 - Dense solid-gas bubbling systems with combined fluid-particle motion are among one of the most extensively used fluidization forms used in the chemical industry. Therefore, it is important to have a good understanding of the hydrodynamic behavior of bubbles. In this paper, both the experiment and numerical simulations are used to investigate the flow patterns in a spouted bed. For numerical simulations, the bidirectional coupling simulations using computational fluid dynamics (CFD) with discrete element method (DEM) are conducted. The results show that the simulations can accurately predict the bubbles morphology compared with the experimental results. When the number of particles is 30,000, only a single core-annular flow pattern appears. When the number of particles is increased to 36,500, the single bubble in the spouted bed transitions into two and a double core-annular flow pattern emerges. As the number of particles is increased to 43,000, a complex multicore-annular flow pattern appears. These flow patterns are also observed in the experiments using high-speed imaging camera. This paper analyzes and explains the causes of these flow phenomena from the dynamic characteristics of particle phase and fluid phase. These results have great significance in providing guidance for optimization of dense phase bubbling spouted beds.
AB - Dense solid-gas bubbling systems with combined fluid-particle motion are among one of the most extensively used fluidization forms used in the chemical industry. Therefore, it is important to have a good understanding of the hydrodynamic behavior of bubbles. In this paper, both the experiment and numerical simulations are used to investigate the flow patterns in a spouted bed. For numerical simulations, the bidirectional coupling simulations using computational fluid dynamics (CFD) with discrete element method (DEM) are conducted. The results show that the simulations can accurately predict the bubbles morphology compared with the experimental results. When the number of particles is 30,000, only a single core-annular flow pattern appears. When the number of particles is increased to 36,500, the single bubble in the spouted bed transitions into two and a double core-annular flow pattern emerges. As the number of particles is increased to 43,000, a complex multicore-annular flow pattern appears. These flow patterns are also observed in the experiments using high-speed imaging camera. This paper analyzes and explains the causes of these flow phenomena from the dynamic characteristics of particle phase and fluid phase. These results have great significance in providing guidance for optimization of dense phase bubbling spouted beds.
KW - Spouted bed
KW - combustion of waste/fluidized bed
KW - computational fluid dynamics
KW - coreannular flow
KW - discrete element method
KW - gas solid flow
KW - high-speed imaging
KW - petroleum transport/pipelines/multiphase flow
UR - http://www.scopus.com/inward/record.url?scp=85088984740&partnerID=8YFLogxK
U2 - 10.1115/1.4047305
DO - 10.1115/1.4047305
M3 - Article
AN - SCOPUS:85088984740
SN - 0195-0738
VL - 142
JO - Journal of Energy Resources Technology, Transactions of the ASME
JF - Journal of Energy Resources Technology, Transactions of the ASME
IS - 9
M1 - 092104
ER -