中国科学院机构知识库网格
Chinese Academy of Sciences Institutional Repositories Grid
Simulation of droplet entrainment in annular flow with a morphology adaptive multifield two-fluid model

文献类型:期刊论文

作者Wang, Li-Song3,4; Krull, Benjamin2; Lucas, Dirk2; Meller, Richard2; Schlegel, Fabian2; Tekavcic, Matej1; Xu, Jing-Yu3,4; Xu JY(许晶禹)
刊名PHYSICS OF FLUIDS
出版日期2023-10-01
卷号35期号:10页码:16
ISSN号1070-6631
DOI10.1063/5.0169288
通讯作者Schlegel, Fabian(f.schlegel@hzdr.de) ; Xu, Jing-Yu(xujingyu@imech.ac.cn)
英文摘要Modeling of annular flow with the computational fluid dynamics (CFD) is challenging as one has to consider several, rather different, phenomena simultaneously: the continuous liquid film, continuous gas core, and dispersed droplets. A morphology-adaptive multifield two-fluid model (MultiMorph) developed by Meller et al. ["Basic verification of a numerical framework applied to a morphology adaptive multifield two-fluid model considering bubble motions," Int. J. Numer. Methods Fluids 93(3), 748-773 (2021)], with three numerical phase fields, is well suited to simulate such multiple flow structures. Droplet formation plays an important role in annular flow, and a new droplet entrainment model is proposed, expressed as a phase morphology transfer term from the continuous liquid film to dispersed droplets phase field. The new model is developed based on the shear-off entrainment mechanism on the interfacial wave, implying that the droplet formation is dominated by the balance between the shear forces and the surface tension forces at the gas-liquid interface. In contrast to the existing entrainment models, the new model considers the flow parameters locally at the interface, and it is suitable for phase-resolving CFD frameworks without input of global parameters such as a pipe diameter. The proposed model is implemented in the MultiMorph framework based on the OpenFOAM Foundation release open-source CFD library. The performance of the new model is evaluated by conducting own annular flow experiments with void fraction measurements using electrical resistance tomography, as well as with comparison to published models from the literature. Qualitatively, the model can adequately resolve the formation of interfacial waves on the liquid film downstream from the inlet. The simulated droplets are primarily generated at the tip of such waves, which is consistent with the physical understanding and experimental observations of droplet entrainment. Quantitatively, the modeled entrained droplet fraction matches well the experimental observation in the developing entrainment region. The liquid film fraction obtained with the new model is analyzed and compared with the experimental data. Good agreement between measured and simulated statistics of the liquid film fraction, i.e., the mean, standard deviation, probability density function, and power spectral density, is demonstrated.
WOS关键词2-PHASE FLOW ; NUMERICAL-SIMULATION ; DEPOSITION
资助项目This work was supported by the Helmholtz European Partnering Program in the project Crossing borders and scales (Crossing), the National Natural Science Foundation of China (Grant No. 51779243), the Strategic Priority Research Program of the Chinese Academ ; Helmholtz European Partnering Program[51779243] ; National Natural Science Foundation of China[XDB22030101] ; Strategic Priority Research Program of the Chinese Academy of Science[12102436] ; National Natural Science Foundation of China Youth Fund Project[P2-0026] ; Slovenian Research Agency ; Chinese Academy of Sciences (CAS) ; Deutscher Akademischer Austauschdienst (DAAD)
WOS研究方向Mechanics ; Physics
语种英语
WOS记录号WOS:001084581200017
资助机构This work was supported by the Helmholtz European Partnering Program in the project Crossing borders and scales (Crossing), the National Natural Science Foundation of China (Grant No. 51779243), the Strategic Priority Research Program of the Chinese Academ ; Helmholtz European Partnering Program ; National Natural Science Foundation of China ; Strategic Priority Research Program of the Chinese Academy of Science ; National Natural Science Foundation of China Youth Fund Project ; Slovenian Research Agency ; Chinese Academy of Sciences (CAS) ; Deutscher Akademischer Austauschdienst (DAAD)
源URL[http://dspace.imech.ac.cn/handle/311007/93297]  
专题力学研究所_流固耦合系统力学重点实验室(2012-)
通讯作者Schlegel, Fabian; Xu, Jing-Yu
作者单位1.Jozef Stefan Inst, Reactor Engn Div, Jamova Cesta 39, Ljubljana 1000, Slovenia
2.Helmholtz Zentrum Dresden Rossendorf, Inst Fluid Dynam, Bautzner Landstr 400, D-64289 Darmstadt, Germany
3.Chinese Acad Sci, Inst Mech, 15 Beisihuanxi Rd, Beijing 100190, Peoples R China
4.Univ Chinese Acad Sci, Sch Engn Sci, 1 Yanqihu East Rd, Beijing 100049, Peoples R China
推荐引用方式
GB/T 7714
Wang, Li-Song,Krull, Benjamin,Lucas, Dirk,et al. Simulation of droplet entrainment in annular flow with a morphology adaptive multifield two-fluid model[J]. PHYSICS OF FLUIDS,2023,35(10):16.
APA Wang, Li-Song.,Krull, Benjamin.,Lucas, Dirk.,Meller, Richard.,Schlegel, Fabian.,...&许晶禹.(2023).Simulation of droplet entrainment in annular flow with a morphology adaptive multifield two-fluid model.PHYSICS OF FLUIDS,35(10),16.
MLA Wang, Li-Song,et al."Simulation of droplet entrainment in annular flow with a morphology adaptive multifield two-fluid model".PHYSICS OF FLUIDS 35.10(2023):16.

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来源:力学研究所

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