TY - JOUR
T1 - SPH-ASR study of drop impact on a heated surface with consideration of inclined angle and evaporation
AU - Li, Linhao
AU - Yang, Xiufeng
AU - Sohag, Md M.A.
AU - Wang, Xiaoliang
AU - Liu, Qingquan
N1 - Publisher Copyright:
© 2022 Elsevier Ltd
PY - 2022/8
Y1 - 2022/8
N2 - This paper studies the problem of drop impact on a heated surface by using a numerical method based on smoothed particle hydrodynamics with adaptive spatial resolution (SPH-ASR). The physical model considers the interaction and heat transfer between the liquid drop, solid wall and ambient gas, and the phase change between liquid and gas phases. The phase change process will change the particle mass and resolution. The SPH-ASR method is able to adaptively adjust the spatial resolution according to the distance to the interface between different phases. A series of numerical simulations were performed to investigate the effects of different factors on drop-wall interaction, including the drop diameter, impact velocity, liquid evaporation, wall temperature, and the inclined angle of wall. The comparison of impact regimes shows good agreement between the numerical and experimental results. The characteristics of drop impact on a heated surface were studied, particularly the drop spreading factor and mass evaporation ratio. The numerical results indicate that the maximum spreading factor and the mass evaporation ratio can be predicted as a function of dimensionless numbers.
AB - This paper studies the problem of drop impact on a heated surface by using a numerical method based on smoothed particle hydrodynamics with adaptive spatial resolution (SPH-ASR). The physical model considers the interaction and heat transfer between the liquid drop, solid wall and ambient gas, and the phase change between liquid and gas phases. The phase change process will change the particle mass and resolution. The SPH-ASR method is able to adaptively adjust the spatial resolution according to the distance to the interface between different phases. A series of numerical simulations were performed to investigate the effects of different factors on drop-wall interaction, including the drop diameter, impact velocity, liquid evaporation, wall temperature, and the inclined angle of wall. The comparison of impact regimes shows good agreement between the numerical and experimental results. The characteristics of drop impact on a heated surface were studied, particularly the drop spreading factor and mass evaporation ratio. The numerical results indicate that the maximum spreading factor and the mass evaporation ratio can be predicted as a function of dimensionless numbers.
KW - Adaptive spatial resolution
KW - Drop-wall interaction
KW - Multiphase flow
KW - Phase change
KW - Smoothed particle hydrodynamics
UR - http://www.scopus.com/inward/record.url?scp=85131446690&partnerID=8YFLogxK
U2 - 10.1016/j.enganabound.2022.05.016
DO - 10.1016/j.enganabound.2022.05.016
M3 - Article
AN - SCOPUS:85131446690
SN - 0955-7997
VL - 141
SP - 235
EP - 249
JO - Engineering Analysis with Boundary Elements
JF - Engineering Analysis with Boundary Elements
ER -