LBM modelling of supercooled water freezing with inclusion of the recalescence stage

被引:18
作者
Gai, Shaolei [1 ]
Peng, Zhengbiao [1 ]
Moghtaderi, Behdad [1 ]
Yu, Jianglong [1 ]
Doroodchi, Elham [1 ]
机构
[1] Univ Newcastle, Discipline Chem Engn, Callaghan, NSW 2308, Australia
关键词
Supercooled water; Recalescence stage; Ice nucleation; Initial ice fraction; Freezing rate; LATTICE BOLTZMANN SIMULATION; ICE NUCLEATION; NUMERICAL-SIMULATION; SOLIDIFICATION; DROPLETS; TRANSITION; SUBSTRATE; STORAGE; IMPACT; FLOWS;
D O I
10.1016/j.ijheatmasstransfer.2019.118839
中图分类号
O414.1 [热力学];
学科分类号
摘要
Once nucleated, the solidification process of supercooled water undergoes stages of recalescence, freezing, and solid cooling. In existing LBM models for predicting the water solidification process, the recalescence stage was often treated by simply setting the system temperature to 0 degrees C on account of the latent heat release. However, apart from the temperature rise, another important feature of the recalescence stage is the rapid growth of dendritic ice over the entire supercooled space, which was often overlooked. In this study the recalescence stage is included in the conventional LBM, aiming to quantify the effect of initial ice fraction distribution on the freezing kinetics of supercooled water. Good agreements are achieved between the predicted results and the experimental data on the kinetics of water freezing in terms of the local temperature variation, freezing rate and evolution of the ice-water interface. However, the conventional LBM without considering the recalescence stage provides a poor description of ice-water interface evolution. The discrepancy between the predicted results using models with and without considering the recalescence stage increases as the supercooling increases and rises to 31% for a supercooling of 20 degrees C. Moreover, the method based on the Stefan number proves valid in calculating the initial ice fraction over the entire spectrum of supercooling degrees, whereas for high supercooling degrees (>28.2 degrees C) the application of the enthalpy-based method leads to erroneous results. For water systems of small volume that often bear a supercooling more than 30 degrees C, the recalescence stage should be considered in the modelling. (C) 2019 Elsevier Ltd. All rights reserved.
引用
收藏
页数:10
相关论文
共 56 条
[31]   Ice Layer Spreading along a Solid Substrate during Solidification of Supercooled Water: Experiments and Modeling [J].
Schremb, Markus ;
Campbell, James M. ;
Christenson, Hugo K. ;
Tropea, Cameron .
LANGMUIR, 2017, 33 (19) :4870-4877
[32]   LIFETIME OF THE BOND NETWORK AND GEL-LIKE ANOMALIES IN SUPERCOOLED WATER [J].
SCIORTINO, F ;
POOLE, PH ;
STANLEY, HE ;
HAVLIN, S .
PHYSICAL REVIEW LETTERS, 1990, 64 (14) :1686-1689
[33]   Investigation of flows in solidification by using the lattice Boltzmann method [J].
Semma, E. ;
El Ganaoui, M. ;
Bennacer, R. ;
Mohamad, A. A. .
INTERNATIONAL JOURNAL OF THERMAL SCIENCES, 2008, 47 (03) :201-208
[34]   LATTICE BOLTZMANN MODEL FOR SIMULATING FLOWS WITH MULTIPLE PHASES AND COMPONENTS [J].
SHAN, XW ;
CHEN, HD .
PHYSICAL REVIEW E, 1993, 47 (03) :1815-1819
[35]   Numerical simulation of water solidification phenomenon for ice-on-coil thermal energy storage application [J].
Soltan, BK ;
Ardehali, MM .
ENERGY CONVERSION AND MANAGEMENT, 2003, 44 (01) :85-92
[36]   THERMODYNAMIC PROPERTIES OF SUPERCOOLED WATER AT 1-ATM [J].
SPEEDY, RJ .
JOURNAL OF PHYSICAL CHEMISTRY, 1987, 91 (12) :3354-3358
[37]   A microfluidic apparatus for the study of ice nucleation in supercooled water drops [J].
Stan, Claudiu A. ;
Schneider, Gregory F. ;
Shevkoplyas, Sergey S. ;
Hashimoto, Michinao ;
Ibanescu, Mihai ;
Wiley, Benjamin J. ;
Whitesides, George M. .
LAB ON A CHIP, 2009, 9 (16) :2293-2305
[38]   A lattice Boltzmann model for solidification of water droplet on cold flat plate [J].
Sun, Jinjuan ;
Gong, Jianying ;
Li, Guojun .
INTERNATIONAL JOURNAL OF REFRIGERATION-REVUE INTERNATIONALE DU FROID, 2015, 59 :53-64
[39]   LATTICE BOLTZMANN SIMULATION OF NONIDEAL FLUIDS [J].
SWIFT, MR ;
OSBORN, WR ;
YEOMANS, JM .
PHYSICAL REVIEW LETTERS, 1995, 75 (05) :830-833
[40]   An improved approach for measuring immersion freezing in large droplets over a wide temperature range [J].
Tobo, Yutaka .
SCIENTIFIC REPORTS, 2016, 6