TY - JOUR
T1 - An improved pressure-equilibrium diffuse interface model for solid-fluid interaction
AU - Li, Li
AU - Chen, Qian
AU - He, Zhiwei
AU - Zhang, Yousheng
AU - Tian, Baolin
N1 - Publisher Copyright:
© 2020 Global-Science Press.
PY - 2020
Y1 - 2020
N2 - For solid-fluid interaction, one of the phasic density equations in diffuse interface models is degenerated to a "0 =0" equation when the volume fraction of a certain phase takes the value of zero or unity, because the conservative variables in phasic density equations include volume fractions. The degeneracy can be avoided by adding an artificial quantity of another material into the pure phase. However, non-physical waves are introduced by the artificial treatment. In this paper, an improved pressure-equilibrium diffuse interface model, which is able to treat zero/unity volume fractions, is presented for solid-fluid interaction. In the proposed model, the phasic density equations are replaced by the algebraic relation between phasic densities and inverse deformation gradient tensors. In consequence, the volume fractions and the phasic densities do not appear explicitly in the conservative equations any more. The degeneracy introduced by zero/unity volume fractions are prevented. A flux-splitting based finite difference algorithm suitable for this formulation is then presented. A series of one-dimensional and two-dimensional numerical tests demonstrate that the proposed model can present more accurate results near material interfaces.
AB - For solid-fluid interaction, one of the phasic density equations in diffuse interface models is degenerated to a "0 =0" equation when the volume fraction of a certain phase takes the value of zero or unity, because the conservative variables in phasic density equations include volume fractions. The degeneracy can be avoided by adding an artificial quantity of another material into the pure phase. However, non-physical waves are introduced by the artificial treatment. In this paper, an improved pressure-equilibrium diffuse interface model, which is able to treat zero/unity volume fractions, is presented for solid-fluid interaction. In the proposed model, the phasic density equations are replaced by the algebraic relation between phasic densities and inverse deformation gradient tensors. In consequence, the volume fractions and the phasic densities do not appear explicitly in the conservative equations any more. The degeneracy introduced by zero/unity volume fractions are prevented. A flux-splitting based finite difference algorithm suitable for this formulation is then presented. A series of one-dimensional and two-dimensional numerical tests demonstrate that the proposed model can present more accurate results near material interfaces.
KW - Diffuse interface model
KW - Eulerian methods
KW - Mie-Grüneisen equation of state
KW - Phasic density equation
KW - Solid-fluid interaction
UR - https://www.scopus.com/pages/publications/85081362893
U2 - 10.4208/cicp.OA-2018-0261
DO - 10.4208/cicp.OA-2018-0261
M3 - 文章
AN - SCOPUS:85081362893
SN - 1815-2406
VL - 27
SP - 546
EP - 568
JO - Communications in Computational Physics
JF - Communications in Computational Physics
IS - 2
ER -