CPFD simulation of a dual fluidized bed cold flow model

被引:0
作者
A. Lunzer
S. Kraft
S. Müller
H. Hofbauer
机构
[1] Verto Engineering GmbH,Institute of Chemical, Environmental and Bioscience Engineering
[2] TU Wien,undefined
[3] Bioenergy 2020+ GmbH,undefined
来源
Biomass Conversion and Biorefinery | 2021年 / 11卷
关键词
CFD; CPFD simulation; Cold flow model; Fluidized bed; Dual fluidized bed;
D O I
暂无
中图分类号
学科分类号
摘要
The present work was carried out to simulate a cold flow model of a biomass gasification plant. For the simulation, a Eulerian-Lagrangian approach, more specifically the multi-phase particle in cell (MP-PIC) method, was used to simulate particles with a defined particle size distribution. Therefore, Barracuda VR, a software tool with an implemented MP-PIC method specifically designed for computational particle fluid dynamics simulations, was the software of choice. The simulation results were verified with data from previous experiments conducted on a physical cold flow model. The cold flow model was operated with air and bronze particles. The simulations were conducted with different drag laws: an energy-minimization multi-scale (EMMS) approach, a blended Wen-Yu and Ergun drag law, and a drag law of Ganser. The fluid dynamic behavior depends heavily on the particles’ properties like the particle size distribution. Furthermore, a focus was placed on the normal particle stress (PS value variation), which is significant in close-packed regions, and the loop seals’ fluidization rate was varied to influence the particle circulation rate. The settings of the simulation were optimized, flooding behavior did not occur in advanced simulations, and the simulations reached a stable steady state behavior. The Ganser drag law combined with an adjusted PS value with (PS = 30 Pa) or without (PS = 50 Pa) increased loop seal fluidization rates provided the best simulation results.
引用
收藏
页码:189 / 203
页数:14
相关论文
共 50 条
[31]   Simulation of co-gasification of coal and wood in a dual fluidized bed system [J].
Xie, Jun ;
Zhong, Wenqi ;
Shao, Yingjuan ;
Zhou, Guanwen .
ADVANCED POWDER TECHNOLOGY, 2021, 32 (01) :52-71
[32]   Predictions of undesirable air-sand flow behaviors in a dual fluidized bed cold flow system via a CFD full-loop model [J].
Cong-Binh Dinh ;
Hsiau, Shu-San ;
Su, Chien-Yuan ;
Tsai, Meng-Yuan ;
Chen, Yi-Shun ;
Huy-Bich Nguyen ;
Wan, Hou-Peng .
JOURNAL OF THE TAIWAN INSTITUTE OF CHEMICAL ENGINEERS, 2020, 106 (106) :159-168
[33]   CHARACTERISTICS OF PARTICLE FLOW BEHAVIOR IN A COLD MODEL OF NOVEL BURNER WITH CIRCULATING FLUIDIZED-BED [J].
MIZUTANI, T ;
NAKAMURA, Y ;
UCHIDA, A ;
MATSUDA, H ;
HASATANI, M .
KAGAKU KOGAKU RONBUNSHU, 1993, 19 (02) :141-147
[34]   Effect of fluidizing velocity on gas bypass and solid fraction in a dual fluidized bed gasifier and a cold model [J].
Lim, Mook Tzeng ;
Saw, Woei-Lean ;
Pang, Shusheng .
PARTICUOLOGY, 2015, 18 :58-65
[35]   A cold model experimental study on the flow characteristics of bed material in a fluidized bed bottom ash cooler in a CFB boiler [J].
Lu X. ;
Li Y. .
Journal of Thermal Science, 2000, 9 (4) :381-384
[36]   A Cold Model Experimental Study on the Flow Characteristics of Bed Material in a Fluidized Bed Bottom Ash Cooler in a CFB Boiler [J].
Lu XiaofengLi Yourong Institute of Thermal Energy Engineering Chongqing University Chongqing China .
Journal of Thermal Science, 2000, (04) :381-384+355
[37]   Effect of fluidizing velocity on gas bypass and solid fraction in a dual fluidized bed gasifier and a cold model [J].
Mook Tzeng Lim ;
WoeiLean Saw ;
Shusheng Pang .
Particuology, 2015, 18 (01) :58-65
[38]   Studies on a recirculating fluidized-bed incinerator cold model [J].
Alappat, BJ ;
Rane, VC .
INTERNATIONAL JOURNAL OF ENERGY RESEARCH, 1996, 20 (04) :313-326
[39]   Modelling of particle flow in a dual circulation fluidized bed by a Eulerian-Lagrangian approach [J].
Gu, Jinrao ;
Shao, Yingjuan ;
Liu, Xuejiao ;
Zhong, Wenqi ;
Yu, Aibing .
CHEMICAL ENGINEERING SCIENCE, 2018, 192 :619-633
[40]   CFD modeling of the fast pyrolysis of coal in cold flow fluidized bed [J].
Zhou, Anning ;
Zhang, Tieshuan ;
Ren, Xiubin ;
Zheng, Lizhen .
ADVANCES IN CHEMICAL ENGINEERING, PTS 1-3, 2012, 396-398 :209-212