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Adaptive interface-Mesh un-Refinement (AiMuR) based sharp-interface level-set-method for two-phase flow
被引:0
|作者:
Patel, Kuntal
[1
,2
]
Shaikh, Javed
[2
]
Lakdawala, Absar
[1
]
Sharma, Atul
[2
]
机构:
[1] Nirma Univ, Dept Mech Engn, Ahmadabad, India
[2] Indian Inst Technol, Dept Mech Engn, Mumbai, India
来源:
关键词:
Level-set method;
ghost fluid method;
adaptive mesh;
dam-break;
jet break-up;
drop coalescence;
BALANCED-FORCE ALGORITHM;
SURFACE-TENSION;
DIFFUSE-INTERFACE;
FLUID METHODS;
VOF METHOD;
VOLUME;
DYNAMICS;
SIMULATION;
TRACKING;
LIQUID;
D O I:
10.1007/s12046-022-02074-z
中图分类号:
T [工业技术];
学科分类号:
08 ;
摘要:
Adaptive interface-Mesh un-Refinement (AiMuR) based Sharp-Interface Level-Set-Method (SI-LSM) is proposed for both uniform and non-uniform Cartesian-Grid. The AiMuR involves interface location based dynamic un-refinement (with merging of the four control volumes) of the Cartesian grid away from the interface. The un-refinement is proposed for the interface solver only. A detailed numerical methodology is presented for the AiMuR and ghost-fluid method based SI-LSM. Advantage of the novel as compared to the traditional SI-LSM is demonstrated with a detailed qualitative as well as quantitative performance study, involving the SI-LSMs on both coarse grid and fine grid, for three sufficiently different two-phase flow problems: dam break, breakup of a liquid jet and drop coalescence. A superior performance of AiMuR based SI-LSM is demonstrated the AiMuR on a coarser non-uniform grid (NUcAiMuR) is almost as accurate as the traditional SI-LSM on a uniform fine grid (U-f) and takes a computational time almost same as that by the traditional SI-LSM on a uniform coarse grid (U-c). The AMuR is different from the existing Adaptive Mesh Refinement (AMR) as the former involves only mesh un-refinement while the later involves both refinement and un-refinement of the mesh. Moreover, the proposed computational development is significant since the present adaptive un-refinement strategy is much simpler to implement as compared to that for the commonly used adaptive refinement strategies. The proposed numerical development can be extended to various other multi-physics, multi -disciplinary and multi-scale problems involving interfaces.
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页数:22
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