TY - JOUR
T1 - Enhanced waste heat recovery from liquid silicon via dry centrifugal granulation
T2 - Improving heat transfer efficiency and operational safety
AU - Zhang, Xinyi
AU - Wang, Shuzhong
AU - Wu, Zhiqiang
N1 - Publisher Copyright:
© 2025 Elsevier Ltd
PY - 2025/12
Y1 - 2025/12
N2 - This study aims to recover waste heat from liquid industrial silicon using dry centrifugal granulation technology. A 2D model was developed to thoroughly investigate the heat transfer dynamics within silicon particle clusters, considering the physical parameter changes of industrial silicon with a focus on its phase change latent heat. The heat exchange process in the granulation chamber was extensively analysed, examining the temperature changes of silicon particles and the heat absorption distribution of water cooling and argon gas. It was found that flight trajectory, residence time, and edge wall argon velocity significantly affect the flow field distribution and heat exchange efficiency within the chamber. Additionally, the collision pressure of particles against the wall, which is much lower than the critical load of the spherical shell, was explored, analysing issues of particle agglomeration and adhesion on the chamber wall in actual production. Furthermore, the effectiveness of edge wall argon assistance measures was investigated, highlighting their importance for safe operation. Optimal conditions balancing effective heat transfer and energy consumption were identified.
AB - This study aims to recover waste heat from liquid industrial silicon using dry centrifugal granulation technology. A 2D model was developed to thoroughly investigate the heat transfer dynamics within silicon particle clusters, considering the physical parameter changes of industrial silicon with a focus on its phase change latent heat. The heat exchange process in the granulation chamber was extensively analysed, examining the temperature changes of silicon particles and the heat absorption distribution of water cooling and argon gas. It was found that flight trajectory, residence time, and edge wall argon velocity significantly affect the flow field distribution and heat exchange efficiency within the chamber. Additionally, the collision pressure of particles against the wall, which is much lower than the critical load of the spherical shell, was explored, analysing issues of particle agglomeration and adhesion on the chamber wall in actual production. Furthermore, the effectiveness of edge wall argon assistance measures was investigated, highlighting their importance for safe operation. Optimal conditions balancing effective heat transfer and energy consumption were identified.
KW - Auxiliary cooling measures
KW - Dry centrifugal granulation
KW - Heat exchange efficiency
KW - Industrial silicon
KW - Phase change latent heat
KW - Waste heat recovery
UR - https://www.scopus.com/pages/publications/105014633646
U2 - 10.1016/j.icheatmasstransfer.2025.109589
DO - 10.1016/j.icheatmasstransfer.2025.109589
M3 - 文章
AN - SCOPUS:105014633646
SN - 0735-1933
VL - 169
JO - International Communications in Heat and Mass Transfer
JF - International Communications in Heat and Mass Transfer
M1 - 109589
ER -