Published August 5, 2024 | Version v1
Journal article

Three-dimensional solidification modeling of various materials using the lattice Boltzmann method with an explicit enthalpy equation

  • 1. College of Power and Energy Engineering, Harbin Engineering University, Harbin 150000, China
  • 2. School of Energy Science and Engineering, Central South University, Changsha 410083, China

Description

Based on the mesoscopic scale, the lattice Boltzmann method (LBM) with an enthalpy-based model represented in the form of distribution functions is widely used in the liquid-solid phase transition process of energy storage materials due to its direct and relatively accurate characterization of the presence of latent heat of solidification. However, since the enthalpy distribution function itself contains the physical properties of the material, these properties are transferred along with the enthalpy distribution function during the streaming process. This leads to deviations between the enthalpy-based model when simulating the phase transition process of different materials mixed and the actual process. To address this issue, in this paper, we construct an enthalpy-based model for different types of materials. For multiple materials, various forms of enthalpy distribution functions are employed. This method still uses the form of enthalpy distribution functions for collisions and streaming processes among the same type of substance, while for heat transfer between different materials, it avoids the direct transfer of enthalpy distribution functions and instead applies a source term to the enthalpy distribution functions, characterizing the heat transfer between different materials through the energy change before and after mixing based on the temperature. To verify the accuracy of the method proposed in this paper, a detailed solidification model for two different materials is constructed using the example of water droplets solidifying in air, and the results are compared with experimental outcomes. The results of the simulation show that the model constructed in this paper is largely in line with the actual process.

Additional details

Identifiers

DOI
10.1103/PhysRevE.110.025301;
Crossref Funder ID
10.13039/501100018537; 10.13039/501100001809; 10.13039/501100012226;

Publishing Information

Journal Title
Physical Review E
Journal Volume
110
Journal Issue
2
Journal Page Range
12 pgs.
ISSN
1089-3787

Optional Information

Copyright
©2024 American Physical Society
Contract/Grant/Project number
J2019-III-0017-0061; U2241270; 3072024CFJ0303
Notes
Contact Email: Contact author: b205030024@126.com; Contact Email: Contact author: chen_xiaohu@hrbeu.edu.cn; Record automatically processed
Funding organization
National Science and Technology Major Project; National Natural Science Foundation of China; Fundamental Research Funds for the Central Universities