4.7 Article

Capillary driven flow in oval tubes under microgravity

期刊

PHYSICS OF FLUIDS
卷 33, 期 3, 页码 -

出版社

AMER INST PHYSICS
DOI: 10.1063/5.0040993

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资金

  1. China Manned Space Engineering Program (Fluid Physics Experimental Rack and the Priority Research Program of Space Station)
  2. Strategic Priority Research Program of Chinese Academy of Sciences [XDB23030300]
  3. Natural Science Foundation [12032020, 12072354]

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This study investigates the capillary driven flow of a liquid in a tube of elliptical cross section under microgravity. Different flow behaviors are observed based on the Ohnesorge number, with the flow being divided into three time domains in the case of low Oh numbers and two regions in the case of high Oh numbers. The findings are validated through drop tower experiments and numerical simulations.
The capillary driven flow of a liquid in a tube of elliptical cross section under microgravity is studied in this paper. All the factors including the dynamic contact angle between the liquid and the tube wall, the pressure loss caused by convection, the viscous resistance in the tube and the reservoir, and the curved liquid surface in the reservoir are considered. The equation of capillary driven flow in the tube of elliptical cross section is derived. The flow equation can be transformed into an equation that combines external forces on the control body in the tube. In the case of low Ohnesorge ( O h) numbers, the flow behavior is divided into three time domains by using the capillary force as the driving force that balances with the inertial force in the reservoir, the convective pressure loss in the reservoir, and the viscous resistance in the tube in the three domains, respectively. The liquid climbing height in these three sections is proportional to t 2, t, and t, respectively. However, in the case of high O h numbers, the flow is divided into two regions, something which has not been proposed in previous work about capillary driven flow in cylinder tubes. This study is verified by drop tower experiments and numerical simulation with the volume of fluid method.

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