Zobrazeno 1 - 9
of 9
pro vyhledávání: '"O. A. Solnyshkina"'
Autor:
O. A. Solnyshkina, N. B. Fatkullina, A. Z. Bulatova, V. N. Kireev, A. R. Bilyalov, I. S. Akhatov, V. N. Pavlov
Publikováno v:
Journal of Applied and Industrial Mathematics. 17:176-184
Publikováno v:
Fluid Dynamics. 56:451-459
Approaches for the experimental and numerical study of the distinctive features of fluid flow through media with double porosity that are based on micromodels of porous media and microfluidic technologies are proposed. The optic microscopy and tracer
Publikováno v:
Technical Physics. 66:543-547
Publikováno v:
Computational Mathematics and Mathematical Physics. 61:625-637
An efficient numerical approach to the study of the dynamics of a cluster containing bubbles and solid particles under the action of an acoustic field in the 3D case is presented. The numerical method is a combination of the boundary element method (
Publikováno v:
Journal of Physics: Conference Series. 2057:012042
The study of bubbly liquid dynamics in microchannels of unconventional shapes is of great importance for different fields of science and industry. This work investigates the dynamics of the incompressible single bubbles in the slow periodic flow of v
Autor:
N. B. Fatkullina, O. A. Solnyshkina
Publikováno v:
Вестник Башкирского университета. :16
Publikováno v:
Journal of Physics: Conference Series. 1675:012024
The relevance of a study of bubbly liquid dynamics in porous media is due to a wide range of their use in technological and industrial processes. This work is dedicated to the numerical study of the dynamics of single incompressible bubbles in a visc
Autor:
O A Solnyshkina, N B Fatkullina
Publikováno v:
Journal of Physics: Conference Series. 1675:012078
Simulation of creeping flows in complex three-dimensional domains is crucial for microfluidics applications, creating multipurpose microfluidic devices, which are used, for example, to study multistage chemical reactions and as analytical devices in
Publikováno v:
Journal of Physics: Conference Series. 1675:012099
Three-dimensional Boundary Element Method accelerated using a heterogeneous Fast Multipole Method is employed to study two-phase flow in a microchannel of different cross-sections. The flow of a mixture of two Newtonian liquids with equal viscosities