共查询到20条相似文献,搜索用时 15 毫秒
1.
V. E. Nakoryakov I. R. Shreiber 《Journal of Applied Mechanics and Technical Physics》1973,14(2):237-241
Under the assumption that the boundary layer approximation for the original equations is valid, we show the possibility of the existence of progressive waves on the surface of a vertically flowing film when surface tension is neglected. From the system of equations obtained for a thin layer of viscous liquid flowing down an inclined plane, one equation for perturbations of a thin film follows. Steady solutions of this equation allow periodic discontinuous solutions of the roll-wave type.Translated from Zhurnal Prikladnoi Mekhaniki i Teknicheskoi Fiziki, No. 2, pp. 109–113-March–April, 1973. 相似文献
2.
V. Ya. Shkadov 《Fluid Dynamics》1968,3(2):12-15
On the basis of a simplified system of equations we study the process of development and stability of wave flows in a thin layer of a viscous liquid. Any unstable disturbance of the laminar flow grows and leads to the establishment of the wave regime. The time to establish the flow changes little for large flow rates, but increases sharply with reduction of the flow rate. Given the same amplitudes of the initial disturbances, the optimum regimes which provide the greatest flow rate in a layer of given average thickness develop more rapidly than the other regimes. All the wave regimes are unstable to disturbances in the form of traveling waves. With moderate flow rates, the optimum regimes will be most stable to near-by disturbances.Strictly periodic wave flows in a thin layer of a viscous liquid under the influence of the gravity force were calculated in [1], Various flow wave regimes which differ in wavelength can theoretically be established for a given liquid flow rate. In particular, there is a wavelength for which the flowing layer exhibits minimum average thickness (and maximum flow rate for a given average thickness). These optimum regimes correspond closely to the experimental data [2]; however, with regard to calculation technique these regimes are no different from the others. In the following we make a comparison of the wave regimes on the basis of the nature of their development and stability. 相似文献
3.
V. N. Kolodezhnov 《Journal of Applied Mechanics and Technical Physics》1989,30(1):113-120
Translated from Zhurnal Prikladnoi Mekhaniki i Tekhnicheskoi Fiziki, No. 1, pp. 117–125, January–February, 1989. 相似文献
4.
The laminar flow of a thin layer of heavy viscous magnetic liquid down an inclined wall is examined. The stability and control of the flow of an ordinary liquid are affected only by alteration of the angle of inclination of the solid wall and the velocity of the adjacent gas flow. When magnetic liquids are used [1, 2], an effective method of flow control may be control of the magnetic field. By using magnetic fields of various configurations it is possible to control the flow of a thin film of viscous liquid, modify the stability of laminar film flow, and change the shape of the free surface of the laminarly flowing thin film, a factor which plays a role in mass transfer, whose rate depends on the phase contact surface area. The magnetic field significantly affects the shape of the free surface of a magnetic liquid [3, 4]. In this paper the velocity profile of a layer of viscous magnetic liquid adjoining a gas flow and flowing down an inclined solid wall in a uniform magnetic field is found. It is shown that the flow can be controlled by the magnetic field. The problem of stability of the flow is solved in a linear formulation in which perturbations of the magnetic field are taken into account. The stability condition is found. The flow stability is affected by the nonuniform nature of the field and also by its direction.Translated from Izvestiya Akademii Nauk SSSR, Mekhanika Zhidkosti i Gaza, No. 5, pp. 59–65, September–October, 1977. 相似文献
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Fluid Dynamics - A study is made of the flow regimes of a plane film of viscous liquid whose leading edge moves down a dry vertical wall with constant velocity, The study is based on a nonlinear... 相似文献
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V. G. Sokolov 《Fluid Dynamics》1970,5(4):651-655
The article describes a method for calculating the flow of heat through a wavy boundary separating a layer of liquid from a layer of gas, under the assumption that the viscosity and heat-transfer coefficients are constant, and that a constant temperature of the fixed wall and a constant temperature of the gas flow are given. A study is made of the equations of motion and thermal conductivity (without taking the dissipation energy into account) in the approximations of the theory of the boundary layer; the left-hand sides of these equations are replaced by their averaged values over the layer. These equations, after linearization, are used to determine the velocity and temperature distributions. The qualitative aspect of heat transfer in a thin layer of viscous liquid, under regular-wavy flow conditions, is examined. Particular attention is paid to the effect of the surface tension coefficient on the flow of heat through the interface.Notation x, y
coordinates of a liquid particle
- t
time
- v and u
coordinates of the velocity vector of the liquid
- p
pressure in the liquid
- cv, , T,, andv
heat capacity, thermal conductivity coefficient, temperature, density, and viscosity of the liquid, respectively
- g
acceleration due to gravity
-
surface-tension coefficient
- c
phase velocity of the waves at the interface
- Tw
wall temperature
- h0
thickness of the liquid layer
- u0
velocity of the liquid over the layer
Translated from Izvestiya Akademii Nauk SSSR, Mekhanika Zhidkosti i Gaza, No. 4, pp. 147–151, July–August, 1970. 相似文献
14.
V. E. Zakhvataev 《Journal of Applied Mechanics and Technical Physics》1998,39(1):78-84
The influence of a constant transverse electric field on the dynamics of longwave, weakly nonlinear flow of a viscous dielectric
liquid film down a vertical wall is studied. An amplitude integrodifferential equation in partial derivatives of the Kuramoto-Sivashinskii
equation type, which describes the behavior of the free surface of the layer, is derived using the method of multiscale stretching.
In the case considered, the potential energy of the electric field is a source of longwave perturbations, but, on the whole,
secondary regimes are apparently nonlinearly steady. Probably, the electric polarization effects studied can be used as a
factor that governs the dynamics of film flow.
Computer Center, Siberian Division, Russian Academy of Sciences, Krasnoyarsk 660036. Translated from Prikladnaya Mekhanika
i Tekhnicheskaya Fizika, Vol. 39, No. 1, pp. 90–97, January–February, 1998. 相似文献
15.
V. Ya. Shkadov 《Fluid Dynamics》1977,12(1):52-55
Solitary waves in a thin layer of viscous liquid which is running down a vertical surface under the action of gravity are investigated. The existence of such waves was demonstrated in the experiments of [1, 2]. The difficulties that must be faced in a theoretical computation were also noted in these studies. Below a solution of the problem of stationary waves is obtained by the method of expansion in the small parameter in two regions with subsequent matching and also by a numerical integration method. It is shown that in each case a solution of solitary wave type exists along with the single-parameter family of periodic solutions (parameter—the wave number ). On decreasing the wave number, the periodic waves go over into a succession of solitary waves.Translated from Izvestiya Akademii Nauk SSSR, Mekhanika Zhidkosti i Gaza, No. 1, pp. 63–66, January–February, 1977.The authors thank L. N. Maurin for helpful discussions and A. M. Tereshchenko for assisting in the computations. 相似文献
16.
Moscow University. Translated from Prikladnaya Mekhanika, Vol. 24, No. 10, pp. 88–94, October, 1988. 相似文献
17.
The near-wall flow structures of a turbulent boundary layer over a riblet surface with semi-circular grooves were investigated
experimentally for the cases of drag decreasing (s
+=25.2) and drag increasing (s
+=40.6). One thousand instantaneous velocity fields over riblets were measured using the velocity field measurement technique
and compared with those above a smooth flat plate. The field of view was 6.75 × 6.75 mm2 in physical dimension, containing two grooves. Those instantaneous velocity fields were ensemble averaged to get turbulent
statistics including turbulent intensities and turbulent kinetic energy. To see the global flow structure qualitatively, flow
visualization was also carried out using the synchronized smoke-wire technique under the same experimental conditions. For
the case of drag decreasing (s
+=25.2), most of the streamwise vortices stay above the riblets, interacting with the riblet tips frequently. The riblet tips
impede the spanwise movement of the streamwise vortices and induce secondary vortices. The normalized rms velocity fluctuations
and turbulent kinetic energy are small near the riblet surface, compared with those over a smooth flat plate. Inside the riblet
valleys, these are sufficiently small that the increased wetted surface area of the riblets can be compensated. In addition,
in the outer region (y
+ > 30), these values are almost equal to or slightly smaller than those for the smooth plate. For the case of drag increasing
(s
+=40.6), however, most of the streamwise vortices stay inside the riblet valleys and contact directly with the riblet surface.
The high-speed down-wash flow penetrating into the riblet valley interacts actively with the wetted riblet surface and increases
the skin friction. The rms velocity fluctuations and turbulent kinetic energy have larger values compared with those over
a smooth flat plate.
Received: 24 March 1999/Accepted: 10 March 2000 相似文献
18.
V. G. Sokolov 《Fluid Dynamics》1969,4(4):25-27
The flow of a liquid in thin layers is one of the hydrodynamic problems of chemistry and heat engineering. The large surface area of films and their small thickness make it possible to accelerate thermal, diffusive, and chemical processes at the gas-liquid boundary.Theoretical studies of liquid flow in a vertical descending thin layer are presented in [1–4]. In this paper we study ascending wave flows of a liquid in a thin vertical layer in contact with a gas, i.e., flows in the direction opposite the action of the force due to gravity, with account for the action of the gas on the liquid surface. Such motions are encountered when oil is extracted from strata that are saturated with gas. At some distance from the stratum the oil and gas separate: the gas travels at high velocity inside the pipe, occupying a considerable portion of the pipe, and the liquid is displaced toward the pipe walls, forming a thin film. In certain cases a wave-like interface develops between the oil and gas that travels with a velocity greater than that of the liquid but less than the average gas velocity. Similar phenomena are observed in high velocity mass exchangers.We examine the effect of the gas for both laminar and turbulent flow.Studies that neglect the effect of the gas flow on the liquid show that for waves on the film surface whose lengths are considerably longer than the average thickness of the layer, the liquid motion in the film is described by boundary layer equations in which account is taken of the mass force, i.e., the force due to gravity. With some approximation, we can assume that in accounting for the effect of the gas on the liquid the liquid flow is described by these same equations. 相似文献
19.
In this study the momentum and heat transfer characteristics in an incompressible electrically conducting viscoelastic boundary
layer fluid flow over a linear stretching sheet are considered. Highly non-linear momentum and thermal boundary layer equations
are reduced to set of nonlinear ordinary differential equations by appropriate transformation. 相似文献
20.
The flow stability of a liquid layer on an inclined plane with account for molecular spin [1, 2] has been considered in [3] in the absence of moment stresses within the liquid. It was shown in [3] that molecular spin has a destabilizing effect on the flow. In the following we study the combined effect of molecular spin and internal moment stresses on the behavior of three-dimensional disturbances. The validity of Squire's theorem is established. The flow stability of a layer of relatively long-wave disturbances is studied by the method of sequential approximations [4, 5] under the assumption that the rotational viscosity coefficient r is significantly smaller than the Newtonian viscosity coefficient . 相似文献