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Assessing the effect of size and shape factors on the devolatilization of biomass particles by coupling a rapid-solving thermal-thick model
被引:0
|作者:
Zhang, Jiaye
[1
]
Wang, Zhao
[2
]
Dai, Gaofeng
[3
]
Heberlein, Stephan
[1
]
Chan, Wei Ping
[1
]
Wang, Xuebin
[3
]
Tan, Houzhang
[3
]
Lisak, Grzegorz
[1
,4
]
机构:
[1] Nanyang Technol Univ, Nanyang Environm & Water Res Inst, Residues & Resource Reclamat Ctr, 1 Cleantech Loop, CleanTech One, Singapore 637141, Singapore
[2] Xian Thermal Power Res Inst Co Ltd, Xian 710054, Peoples R China
[3] Xi An Jiao Tong Univ, MOE Key Lab Thermo Fluid Sci & Engn, Xian 710049, Shaanxi, Peoples R China
[4] Nanyang Technol Univ, Sch Civil & Environm Engn, Singapore 639798, Singapore
基金:
新加坡国家研究基金会;
中国国家自然科学基金;
关键词:
Thermal-thick model;
Large biomass particle;
Devolatilization rate;
Heat flux;
NUMERICAL-ANALYSIS;
PULVERIZED COAL;
HEAT-TRANSFER;
PYROLYSIS;
GASIFICATION;
COMBUSTION;
PREDICTION;
EVOLUTION;
KINETICS;
MOISTURE;
D O I:
10.1016/j.jaap.2024.106835
中图分类号:
O65 [分析化学];
学科分类号:
070302 ;
081704 ;
摘要:
In CFD modeling, while the isothermal assumption has conventionally been coupled for updating particle temperature, its applicability diminishes when dealing with thermally thick particles. A thermal-thick discrete phase model (DPM) is developed to simulate pyrolysis of biomass particle group at high heating rates and temperatures, with particles tracked in a Lagrangian scheme. The effects of particle size and shape on the volatile release and heating history are investigated. For spherical particles with a diameter of 9.6 mm, the temperature difference between the surface and center (Delta T) does not disappear even up to 50 s. In the particle size range spanning from 200 mu m to 9.6 mm, the duration required for a complete volatile release extends from 1.5 to 40 s. For cylindrical particles, in contrast to the particles with an aspect ratio (AR, ratio of particle length to diameter) of 1, the devolatilization time of particles with an AR of 15 can be shortened by more than 50 %. In addition, both the particle shape and size can significantly influence the volatile distribution within the reactor. This work contributes to understanding both the particle size and shape impact on heat and mass transfer during biomass pyrolysis at high heating rates.
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