TY - JOUR
T1 - Prediction improvements of ignition characteristics of isolated coal particles with a one-dimensional transient model
AU - Yang, Wantao
AU - Liu, Bing
AU - Zhang, Hai
AU - Zhang, Yang
AU - Wu, Yuxin
AU - Lyu, Junfu
N1 - Publisher Copyright:
© 2021 Elsevier Ltd. All rights reserved.
PY - 2021
Y1 - 2021
N2 - A modified 1-D transient model considering intra-particle thermal conduction is adopted to improve the predictions of the ignition characteristics of isolated coal particles. The study aims at resolving the incorrect prediction on the variation trend of ignition temperature Tiwith the change of oxygen concentration XO2, interpreting the contradictory dependencies on coal particle size and furnace temperature and clarifying the conditions when the intra-particle thermal conduction should be considered. The predictions are compared with microgravity data in which the buoyancy effect is minimized. The results reveal that the previous ignition model with transient adiabatic criterion fails to predict the Tivariation with XO2, since it cannot accurately predict Tiand delay time in the low XO2region. Instead, the ignition model with flammability limit ignition criterion can well predict Tiin a wide range of XO2. Intra-particle thermal conduction causes remarkable temperature differences for large coal particles, and moreover, the variation trends of surface and center temperatures with particle size are very different. The center temperature at ignition drops remarkably with increasing particle size, while the surface temperature barely changes or slightly increases with particle size. At the same particle size, the variation trends of surface and center temperatures with furnace temperature are also opposite. The ignition mode and variation trend of ignition surface temperature with particle size depends on the heating rate and particle size itself. The contradictory experimental results reported by different researchers are attributed to the particle size and temperature measurement location. The conditions necessary to consider the intra-particle thermal conduction are discussed. Lastly, the effect of the intraparticle thermal conduction is shown on an ignition mode diagram.
AB - A modified 1-D transient model considering intra-particle thermal conduction is adopted to improve the predictions of the ignition characteristics of isolated coal particles. The study aims at resolving the incorrect prediction on the variation trend of ignition temperature Tiwith the change of oxygen concentration XO2, interpreting the contradictory dependencies on coal particle size and furnace temperature and clarifying the conditions when the intra-particle thermal conduction should be considered. The predictions are compared with microgravity data in which the buoyancy effect is minimized. The results reveal that the previous ignition model with transient adiabatic criterion fails to predict the Tivariation with XO2, since it cannot accurately predict Tiand delay time in the low XO2region. Instead, the ignition model with flammability limit ignition criterion can well predict Tiin a wide range of XO2. Intra-particle thermal conduction causes remarkable temperature differences for large coal particles, and moreover, the variation trends of surface and center temperatures with particle size are very different. The center temperature at ignition drops remarkably with increasing particle size, while the surface temperature barely changes or slightly increases with particle size. At the same particle size, the variation trends of surface and center temperatures with furnace temperature are also opposite. The ignition mode and variation trend of ignition surface temperature with particle size depends on the heating rate and particle size itself. The contradictory experimental results reported by different researchers are attributed to the particle size and temperature measurement location. The conditions necessary to consider the intra-particle thermal conduction are discussed. Lastly, the effect of the intraparticle thermal conduction is shown on an ignition mode diagram.
KW - Ignition
KW - Ignition criterion
KW - Intra-particle thermal conduction
KW - Isolated coal particle
KW - Transient model
UR - http://www.scopus.com/inward/record.url?scp=85090461970&partnerID=8YFLogxK
U2 - 10.1016/j.proci.2020.06.235
DO - 10.1016/j.proci.2020.06.235
M3 - 会议文章
AN - SCOPUS:85090461970
SN - 1540-7489
VL - 38
SP - 4083
EP - 4089
JO - Proceedings of the Combustion Institute
JF - Proceedings of the Combustion Institute
IS - 3
T2 - 38th International Symposium on Combustion, 2021
Y2 - 24 January 2021 through 29 January 2021
ER -