TY - JOUR
T1 - Recalescence characteristics of supercooled sessile water droplets under shear airflow
AU - Guo, Yiqing
AU - Zhang, Xuan
AU - Liu, Xin
AU - Wu, Xiaomin
AU - Min, Jingchun
N1 - Publisher Copyright:
© 2026 Elsevier Ltd.
PY - 2026/12/1
Y1 - 2026/12/1
N2 - Icing phenomenon of supercooled sessile water droplets under shear airflow is common, with the recalescence stage playing a significant role in the overall icing process. However, existing studies have mainly focused on the recalescence characteristics of supercooled sessile droplets under natural convection, while the recalescence stage under airflow conditions has received limited attention. In this study, experiments are conducted to investigate the recalescence behavior of supercooled sessile water droplets under shear airflow. The effects of airflow parameters and droplet characteristics on the recalescence stage are systematically analyzed. Experimental results show that, after the onset of recalescence, the primary dendrite grows preferentially and stops when reaching the droplet edge, while the secondary dendrites continue extending. Using the moment when the primary dendrite reaches the droplet edge as a boundary, the recalescence process can be divided into two stages. Stage I is mainly influenced by the degree of supercooling; the greater the supercooling, the faster the dendritic growth and the shorter the duration. Stage II is primarily influenced by dendritic growth spacing, which increases with higher airflow velocity, elevated airflow and surface temperatures, and larger droplet volume, thereby prolonging the duration of stage II. Based on these findings, a theoretical prediction model for dendritic growth velocity and a correlation for recalescence duration are developed using crystallization kinetics, exhibiting prediction deviations of below 20% for dendritic growth velocity and below 25% for recalescence duration. Additionally, the influences of various factors on dendritic growth spacing are qualitatively revealed.
AB - Icing phenomenon of supercooled sessile water droplets under shear airflow is common, with the recalescence stage playing a significant role in the overall icing process. However, existing studies have mainly focused on the recalescence characteristics of supercooled sessile droplets under natural convection, while the recalescence stage under airflow conditions has received limited attention. In this study, experiments are conducted to investigate the recalescence behavior of supercooled sessile water droplets under shear airflow. The effects of airflow parameters and droplet characteristics on the recalescence stage are systematically analyzed. Experimental results show that, after the onset of recalescence, the primary dendrite grows preferentially and stops when reaching the droplet edge, while the secondary dendrites continue extending. Using the moment when the primary dendrite reaches the droplet edge as a boundary, the recalescence process can be divided into two stages. Stage I is mainly influenced by the degree of supercooling; the greater the supercooling, the faster the dendritic growth and the shorter the duration. Stage II is primarily influenced by dendritic growth spacing, which increases with higher airflow velocity, elevated airflow and surface temperatures, and larger droplet volume, thereby prolonging the duration of stage II. Based on these findings, a theoretical prediction model for dendritic growth velocity and a correlation for recalescence duration are developed using crystallization kinetics, exhibiting prediction deviations of below 20% for dendritic growth velocity and below 25% for recalescence duration. Additionally, the influences of various factors on dendritic growth spacing are qualitatively revealed.
KW - Dendritic growth
KW - Recalescence characteristics
KW - Sessile droplet
KW - Shear airflow
KW - Supercooled water
UR - https://www.scopus.com/pages/publications/105042705806
U2 - 10.1016/j.ijheatmasstransfer.2026.129215
DO - 10.1016/j.ijheatmasstransfer.2026.129215
M3 - Article
AN - SCOPUS:105042705806
SN - 0017-9310
VL - 270
JO - International Journal of Heat and Mass Transfer
JF - International Journal of Heat and Mass Transfer
M1 - 129215
ER -