首页 | 本学科首页   官方微博 | 高级检索  
相似文献
 共查询到20条相似文献,搜索用时 984 毫秒
1.
In the present paper an attempt has been made to find out effects of uniform high suction in the presence of a transverse magnetic field, on the motion near a stationary plate when the fluid at a large distance above it rotates with a constant angular velocity. Series solutions for velocity components, displacement thickness and momentum thickness are obtained in the descending powers of the suction parameter a. The solutions obtained are valid for small values of the non-dimensional magnetic parameter m (= 4 e 2 H 0 2 /) and large values of a (a2).Nomenclature a suction parameter - E electric field - E r , E , E z radial, azimuthal and axial components of electric field - F, G, H reduced radial, azimuthal and axial velocity components - H magnetic field - H r , H , H z radial, azimuthal and axial components of magnetic field - H 0 uniform magnetic field - H* displacement thickness and momentum thickness ratio, */ - h induced magnetic field - h r , h , h z radial, azimuthal and axial components of induced magnetic field - J current density - m nondimensional magnetic parameter - p pressure - P reduced pressure - R Reynolds number - U 0 representative velocity - V velocity - V r , V , V z radial, azimuthal and axial velocity components - w 0 uniform suction through the disc. - density - electrical conductivity - kinematic viscosity - e magnetic permeability - a parameter, (/)1/2 z - a parameter, a - * displacement thickness - momentum thickness - angular velocity  相似文献   

2.
The injection moulding of thermoplastic polymers involves, during mould filling, flows of hot melts into mould networks, the walls of which are so cold that frozen layers form on them. Theoretical analyses of such flows are presented here. Br Brinkman number - c L polymer melt specific heat capacity - c S frozen polymer specific heat capacity - e exponential function - erf() error function - Gz Graetz number in thermal entrance region - Gz * modified Graetz number in thermal entrance region - Gz overall Graetz number - h channel half-height - h * half-height of polymer melt region - H mean heat transfer coefficient - k L polymer melt thermal conductivity - k S frozen polymer thermal conductivity - ln( ) natural logarithm function - L length of thermal entrance region in pipe or channel - m viscosity shear rate exponent - M(,,) Kummer function - Nu Nusselt number - p pressure - P pressure drop in thermal entrance region - P f pressure drop in melt front region - Pe Péclet number - Pr Prandtl number - Q volumetric flow rate - r radial coordinate in pipe - R pipe radius - R * radius of polymer melt region - Re Reynolds number - Sf Stefan number - t time - T temperature - T i inlet polymer melt temperature - T m melting temperature of polymer - T w pipe or channel wall temperature - U(,,) Kummer function - u r radial velocity in pipe - u x axial velocity in channel - u y cross-channel velocity - u z axial velocity in pipe - V melt front velocity - w channel width - x axial coordinate in channel - x f melt front position in channel - y cross-channel coordinate - z axial coordinate in pipe - z f melt front position in pipe - () gamma function - dimensionless thickness of frozen polymer layer - i i-th term (i = 1,2,3) in power series expansion of - dimensionless axial coordinate in pipe - f dimensionless melt front position in pipe - dimensionless cross-channel coordinate - * dimensionless half-height of polymer melt region - dimensionless temperature - i i-th term (i = 0, 1, 2, 3) in power series expansion of - i first derivative of i with respect toø - i second derivative of i with respect toø - * dimensionless wall temperature - thermal diffusivity ratio - - latent heat of fusion - µ viscosity - µ * unit shear rate viscosity - dimensionless axial coordinate in channel - f dimensionless melt front position in channel - dimensionless pressure drop in thermal entrance region - f dimensionless pressure drop in melt front region - L polymer melt density - s frozen polymer density - dimensionless radial coordinate in pipe - * dimensionless radius of polymer melt region - ø dimensionless similarity variable in thermal entrance region - dummy variable - dimensionless contracted axial coordinate in thermal entrance region - dimensionless similarity variable in melt front region - * constant  相似文献   

3.
It is found that the load capacity of a magnetohydrodynamic thrust bearing with a rotating disk can be increased by rotating the axial magnetic field at a suitable speed in a direction opposite to that of the disk rotation. This method of improving the bearing performance is considered to be efficient if the Hartmann number is not too large. Thus for a given load, the size and weight of the magnet to be used in a thrust bearing with rotating field can be reduced considerably.Nomenclature a radius of plenum recess - b outside disk radius - B 0 magnetic induction of applied axial magnetic field - hE 0 1/2/a 1/2, nondimensionalized electric field - E 0 radial electric field at r=a - E r radial electric field - h half of lubricant film thickness - M (B 0 2 h 2/)1/2, Hartmann number - P pressure - P e pressure at r=b - P 0 pressure at r=a - Q volume flow rate of lubricant - Q 0 volume flow rate of a nonrotating bearing in the absence of applied magnetic field - r radial coordinate - u, v fluid velocity components in radial and circumferential directions, respectively - W load capacity of bearing - W 0 load capacity of a nonrotating bearing in the absence of a magnetic field having a flow rate which the same bearing would have at Hartmann number M - z axial coordinate - azimuthal coordinate - coefficient of viscosity of lubricant - e magnetic permeability - fluid density - electrical conductivity - angular velocity of rotating disk - C critical disk velocity at which W=0 - M angular velocity of axial magnetic field - optimum angular velocity of magnetic field On leave of absence from Department of Aero-Space Engineering, University of Notre Dame, Notre Dame (Ind.), U.S.A.  相似文献   

4.
Thermodynamics is developed for a class of thermo-hypo-elastic materials. It is shown that materials of this class obey the laws of thermodynamics, but are not elastic.

Table of Symbols

Latin Letters A ijkl tensor-valued function of t ij appearing in hypo-elastic constitutive relation - B ijkl another tensor-valued function. See equation (4.2) - B the square of - d ij rate of deformation tensor - d ij deviator of rate of deformation - f, k functions of pressure, p - g, h functions of the invariant - p pressure - q i heat flux vector - s ij stress deviator - ij co-rotational derivative of stress deviator - t time - t 1 t 2 specific values of time - t ij stress tensor - t ij 0 a specific value of stress - T Temperature - T 0 a specific value of temperature - u i velocity - V(t) a material volume as a function of time, t - V 0 a material volume at a reference configuration - W work (W = work done in a deformation—section 5) Sript Letters Specific internal energy - Specific Helmholtz free energy - G Specific Gibbs function Greek Letters an invariant of the stress deviator—see eq. (2.4) - ij kroneker delta - (W = work done in a deformation—section 5) - specific entropy - hypo-elastic potential - hypo-elastic potential - mass density - 0 mass density in a reference configuration - specific volume = 1/ - a function of p - ijkl a constant tensor—see eq. (2.5) - G/ - ij rate of rotation tensor This work is dedicated to Jerald L. Ericksen, without whose influence it would not have been possible  相似文献   

5.
Zusammenfassung Auf dem gezeigten Weg wurden die Spannungen r , , z berechnet, wobei an Stelle der Veränderlichen r und die dimensionlosen Größen x i = r i /, x=r/ und x a = r/ in die Rechnung eingeführt wurden. Die Funktion (r, ) wurde dann für den Bereich 0,45xi1,0, 1xa 2 tabuliert. Hierbei zeigte sich, daß der Rechenaufwand bei der Durchrechnung eines Einzelbeispiels nach der Charakteristikenmethode wesentlich geringer ist. Bei der Anlage von Zahlentafeln zur Berechnung von Spannungen für beliebige Durchmesserverhältnisse ergab sich, daß der aufgezeigte Wege zu geringerem Rechenaufwand führt. Für das Beispiel r i /r a=1/2 wurden die Rohraufweitungen bestimmt und diese Werte noch durch praktische Versuche nachgeprüft. Hierbei ergab sich, daß die theoretisch bestimmten Rohraufweitungen in dem Streubereich der gemessenen Rohraufweitungen lagen, wobei Messungen an drei Rohren aus demselben Material und demselben Rohrverhältnis durchgeführt wurden. Insbesondere stimmten die theoretischen Rohraufweitungen auch mit den gemessenen Rohraufweitungen überein, wenn das Rohr entlastet wurde und die Restdeformationen bestimmt wurden.Daraus kann geschlossen werden, daß durch die berücksichtigte lineare Verfestigung die tatsächlichen Verhältnisse außerordentlich gut erfaßt werden.Der sogenannte Platzdruek eines Rohres kann auf rein rechnerischem Weg nicht erfaßt werden, da für =ra die geometrische Gestalt des Rohres instabil wird. Bei den Versuchen zeigt sich, wenn der Innendruck über p i ( =r **** a ) gesteigert wird, daß das Rohr schon bei geringen Überschreitungen aufzubauchen beginnt.Meinem Lehrer Herrn Prof. Dr. Dr. R. Grammel zum 65. Geburtstag gewidmet.  相似文献   

6.
The diffuse approximation is presented and applied to natural convection problems in porous media. A comparison with the control volume-based finite-element method shows that, overall, the diffuse approximation appears to be fairly attractive.Nomenclature H height of the cavities - I functional - K permeability - p(M i ,M) line vector of monomials - p T p-transpose - M current point - Nu Nusselt number - Ri inner radius - Ro outer radius - Ra Rayleigh number - x, y cartesian coordinates - u, v velocity components - T temperature - M vector of estimated derivatives - t thermal diffusivity - coefficient of thermal expansion - practical aperture of the weighting function - scalar field - (M, M i ) weighting function - streamfunction - kinematic viscosity  相似文献   

7.
An analytical study was made to examine the effect of vascular deformability on the pulsatile blood flow in arterioles through the use of a suitable mathematical model. The blood in arterioles is assumed to consist of two layers — both Newtonian but with differing coefficients of viscosity. The flow characteristics of blood as well as the resistance to flow have been determined using the numerical computations of the resulting expressions. The applicability of the model is illustrated using numerical results based on the existing experimental data. r, z coordinate system - u, axial/longitudinal velocity component of blood - p pressure exerted by blood - b density of blood - µ viscosity of blood - t time - , displacement components of the vessel wall - T t0,T 0 known initial stresses - density of the wall material - h thickness of the vessel wall - T t,T stress components of the vessel - K l,K r components of the spring coefficient - C l,C r components of the friction coefficient - M a additional mass of the mechanical model - r 1 outer radius of the vessel - thickness of the plasma layer - r 1 inner radius of the vessel - circular frequency of the forced oscillation - k wave number - E 0,E t, , t material parameters for the arterial segment - µ p viscosity of the plasma layer - Q total flux - Q p flux across the plasma zone - Q h flux across the core region - Q mean flow rate - resistance to flow - P pressure difference - l length of the segment of the vessel  相似文献   

8.
The drag coefficient for bubbles with mobile or immobile interface rising in shear-thinning elastic fluids described by an Ellis or a Carreau model is discussed. Approximate solutions based on linearization of the equations of motion are presented for the highly elastic region of flow. These solutions are in reasonably good agreement with the theoretical predictions based on variational principles and with published experimental data. C D Drag coefficient - E * Differential operator [E * 2 = 2/2 + (sin/ 2)/(1/sin /)] - El Ellis number - F D Drag force - K Consistency index in the power-law model for non-Newtonian fluid - n Flow behaviour index in the Carreau and power-law models - P Dimensionless pressure [=(p – p 0)/0 (U /R)] - p Pressure - R Bubble radius - Re 0 Reynolds number [= 2R U /0] - Re Reynolds number defined for the power-law fluid [= (2R) n U 2–n /K] - r Spherical coordinate - t Time - U Terminal velocity of a bubble - u Velocity - Wi Weissenberg number - Ellis model parameter - Rate of deformation - Apparent viscosity - 0 Zero shear rate viscosity - Infinite shear rate viscosity - Spherical coordinate - Parameter in the Carreau model - * Dimensionless time [=/(U /R)] - Dimensionless length [=r/R] - Second invariant of rate of deformation tensors - * Dimensionless second invariant of rate of deformation tensors [=/(U /R)2] - Second invariant of stress tensors - * Dimensionless second invariant of second invariant of stress tensor [= / 0 2 (U /R)2] - Fluid density - Shear stress - * Dimensionless shear stress [=/ 0 (U /R)] - 1/2 Ellis model parameter - 1 2/* Dimensionless Ellis model parameter [= 1/2/ 0(U /R)] - Stream function - * Dimensionless stream function [=/U R 2]  相似文献   

9.
The steady axisymmetrical laminar source flow of an incompressible conducting fluid between two circular parallel disks in the presence of a transverse magnetic field is analytically investigated. A solution is obtained by expanding the velocity and the pressure distribution in terms of a power series of 1/r. Velocity, induced magnetic field, pressure and shear stress distributions are determined and compared with the case of the hydrodynamic solution. Pressure is found to be a function of both r and z in the general case and the flow is not parallel. At high magnetic fields, the velocity distribution degenerates to a uniform core surrounded by a boundary layer near the disks.Nomenclature C f skin friction coefficient - H 0 impressed magnetic field - H r induced magnetic field in the radial direction, H r /H 0 - M Hartmann number, H 0 t(/)1/2 - P dimensionless static pressure, P*t 4/Q - P* static pressure - P 0 reference dimensionless pressure - Q source discharge - R outer radius of disks - Rm magnetic Reynolds number, Q/t - Re Reynolds number, Q/t - 2t channel width - u dimensionless radial component of the velocity, u*t 2/Q - u* radial component of the velocity - w dimensionless axial component of the velocity, w*t 2/Q - w* axial component of the velocity - z, r dimensionless axial and radial directions, z*/t and r*/t, respectively - z*, r* axial and radial direction, respectively - magnetic permeability - coefficient of kinematic viscosity - density - electrical conductivity - 2 LaPlacian operator in axisymmetrical cylindrical coordinates  相似文献   

10.
The evaluation of a pump test or a slug test in a single well that completely penetrates a leaky aquifer does not yield a unique relation between the hydraulic properties of the aquifer, independent of the testing conditions. If the flow is transient, the drawdown is characterized by a single similarity parameter that does not distinguish between the storativity and the leakage factor. If the flow is quasi stationary, the drawdown is characterized by a single similarity parameter that does not distinguish between the transmissivity and the leakage factor. The general non steady solution, which is derived in closed form, is characterized bythree similarity parameters.Nomenclature a e 0.8905 = auxiliary parameter - b thickness of the aquifer - b c thickness of the semipervious stratum - B() auxiliary function - f(s),g(s) auxiliary functions in the complex plane - F(t),G(t) auxiliary functions of time - h undisturbed level of the phreatic surface - K conductivity of the aquifer - K c conductivity of the semipervious stratum - m 0 leakage factor - m dimensionless leakage factor - N(s) auxiliary function in the complex plane - Q w (t) discharge flux - Q steady discharge flux - Q 0 constant discharge flux during limited time - Q(t) dimensionless discharge flux - r 0 radius of the well - r radial coordinate - r dimensionless radial coordinate - s complex variable - s 0 pole - S storativity of the aquifer - S n n'th part of an integration contour - t time - t dimensionless time - T transmissivity of the aquifer - ,,,,, dimensionless parameters - Euler's number - dummy variable - 1(), 2() auxiliary functions - (r, t) drawdown - 0(t) drawdown in the well - (r, t) dimensionless drawdown - 0(t) dimensionless drawdown in the well  相似文献   

11.
The present paper is devoted to the theoretical study of the secondary flow induced around a sphere in an oscillating stream of an elastico-viscous liquid. The boundary layer equations are derived following Wang's method and solved by the method of successive approximations. The effect of elasticity of the liquid is to produce a reverse flow in the region close to the surface of the sphere and to shift the entire flow pattern towards the main flow. The resistance on the surface of the sphere and the steady secondary inflow increase with the elasticity of the liquid.Nomenclature a radius of the sphere - b ik contravariant components of a tensor - e contravariant components of the rate of strain tensor - F() see (47) - G total nondimensional resistance on the surface of the sphere - g ik covariant components of the metric tensor - f, g, h secondary flow components introduced in (34) - k 0 measure of relaxation time minus retardation time (elastico-viscous parameter) - K =k 0 2/V 0 2 , nondimensional parameter characterizing the elasticity of the liquid - n measure of the ratio of the boundary layer thickness and the oscillation amplitude - N, T defined in (44) - p arbitrary isotropic pressure - p ik covariant components of the stress tensor - p ik contravariant components of the stress tensor associated with the change of shape of the material - R =V 0 a/v, the Reynolds number - S =a/V 0, the Strouhall number - r, , spherical polar coordinates - u, v, w r, , component of velocity - t time - V(, t) potential velocity distribution around the sphere - V 0 characteristic velocity - u, v, t, y, P nondimensional quantities defined in (15) - reciprocal of s - density - defined in (32) - defined in (42) - 0 limiting viscosity for very small changes in deformation velocity - complex conjugate of - oscillation frequency - = 0/, the kinematic coefficient of viscosity - , defined in (52) - (, y) stream function defined in (45) - =(NT/2n)1/2 y - /t convective time derivative (1) ik   相似文献   

12.
Summary A method of determining the thermal stresses in a flat rectangular isotropic plate of constant thickness with arbitrary temperature distribution in the plane of the plate and with no variation in temperature through the thickness is presented. The thermal stress have been obtained in terms of Fourier series and integrals that satisfy the differential equation and the boundary conditions. Several examples have been presented to show the application of the method.Nomenclature x, y rectangular coordinates - x, y direct stresses - xy shear stress - ø Airy's stress function - E Young's modulus of elasticity - coefficient of thermal expansion - T temperature - 2 Laplace operator: - 4 biharmonic operator - 2a length of the plate - 2b width of the plate - a/b aspect ratio - a mr, bms, cnr, dns Fourier coefficients defined in equation (6) - m=m/a m=1, 2, 3, ... n=n/2a n=1, 3, 5, ... - r=r/b r=1, 2, 3, ... s=s/2b s=1, 3, 5, ... - A m, Bm, Cn, Dn, Er, Fr, Gs, Hs Fourier coefficients - K rand L s Fourier coefficients defined in equation (20) - direct stress at infinity - T 1(x, y) temperature distribution symmetrical in x and y - T 2(x, y) temperature distribution symmetrical in x and antisymmetrical in y - T 3(x, y) temperature distribution antisymmetrical in x and symmetrical in y - T 4(x, y) temperature distribution antisymmetrical in x and y  相似文献   

13.
The results of an analytical approximation method to predict the film vaporization are compared with the predictions of a finite difference method of Hermitian type. The analytically estimated rate of vaporization of different hydrocarbons, which is the most important value for practical applications, deviates only a few percents from the numerically estimated value.
Zur Berechnung der Filmverdunstung von Kohlenwasserstoffen in einem Heißluftstrom
Zusammenfassung Es wird ein Näherungsverfahren zur Berechnung der Filmverdunstung dargestellt, bei dem eine vollständige Lösung der miteinander gekoppelten Grenzschichtgleichungen entfallt. Die nach dieser analytischen Methode ermittelte Verdunstung verschiedener Kohlenwasserstoffe wird mit Werten verglichen, die nach einem Differenzenverfahren vom Hermiteschen Typ berechnet wurden. Es zeigt sich, daß die analytisch berechnete Verdunstungsrate, die für praktische Anwendungen wichtigste Größe, nur wenige Prozent von dem numerisch ermittelten Wert abweicht.

Formelzeichen c ew Konzentrationsdifferenz c1e -c 1w - c i Massenkonzentration der Komponentei - cp, cpi spezifische Wärmekapazität bei konstantem Druck des Gemisches — der Komponentei - D 12 binärer Diffusionskoeffizient - f dimensionslose Stromfunktion - f dimensionslose Geschwindigkeit - g () allgemeine Funktion - m 1 Massenstromdichte der Komponente 1 - m * dimensionslose Massenstromdichte, G1. (4.8) - M, Mi Molgewicht, — der Komponentei - P, P i Druck, Partialdruck der Komponentei - Pr Prandtlzahl,C p/ - q Wärmestromdichte - r 1 Verdampfungswärme - R allgemeine Gaskonstante - Sc Schmidtzahl/D 12 - T absolute Temperatur - u Geschwindigkeitskomponente inx-Richtung - v Geschwindigkeitskomponente iny-Richtung - x Längskoordinate - y Querkoordinate - z dimensionslose Konzentration - dimensionslose Funktion/ e e - transformierte Koordinatey - dimensionslose Temperatur (T-T w)/(Te-Tw) - Wärmeleitfähigkeit des Gemisches - Zähigkeit des Gemisches - transformierte Koordinate - Dichte des Gemisches - Stromfunktion Indizes e am Außenrand der Grenzschicht - i Stoffi - w an der Filmoberfläche - 1, 2 Komponente 1, 2 - () Ableitung ()/ n   相似文献   

14.
The spatio-temporal characteristics of the wall-pressure fluctuations in separated and reattaching flows over a backward-facing step were investigated through pressure-velocity joint measurements carried out using multiple-arrayed microphones and split-film probes. A spoke-wheel-type wake generator was installed upstream of the backward-facing step. The flow structure at the effective forcing frequency (St f=0.2) was found to be well organized in terms of wall pressure spectrum, cross-correlation, wavenumber-frequency spectrum, and wavelet auto-correlation. Introduction of the unsteady wake (St f=0.2) reduced the reattachment length by 10%. In addition, the unsteady wake enhanced the turbulence intensity near the separation edge and, as a consequence, enhanced the quadrupole sound sources; however, the turbulence intensity near the reattachment region was weakened and the overall flow noise was attenuated. The greater organization of the flow structure induced by the unsteady wake led to a weakening of the dipole sound sources, which are the dominant sound sources in this system. The dipole sound sources generated by wall pressure fluctuations were calculated using Curles integral formula.Abbreviations AR Aspect ratio - SBF Spatial box filtering Roman symbols C p Wall pressure fluctuation coefficient, p/0.5U 2 - H Step height of backward-facing step (mm) - H s Shape factor (H s = */) - R s Distance from acoustic source point to observation point (m) - Re H Reynolds number, U H/ - St The reduced frequency, fH/U - St f Normalized forcing frequency by unsteady wake, f p H/U - T Vortex shedding period (s) - U Free-stream velocity (m/s) - a Speed of sound (m/s) - f Frequency (Hz) - f p Wake passing frequency (Hz) - k Turbulent kinetic energy (m2/s2) - k x Streamwise wave number (1/m) - k z Spanwise wave number (1/m) - l j Cosine of angle - p Instantaneous wall pressure (Pa) - p rms Root-mean-square of wall pressure (Pa) - p SBF Spatial box filtered wall pressure (Pa) - p d Dipole sound source (Pa) - p w Conditionally-averaged wall pressure (Pa) - q Dynamic pressure, 0.5U 2 (Pa) - r Distance from origin to observation point (mm) - u c Convection velocity (m/s) - umax Root-mean-square of streamwise velocity (m/s) - x R Time-mean reattachment length (mm) Greek symbols p Forward-flow time fraction - Auto-correlation of pressure at x 0 - Two-dimensional cross-correlation of pressure with streamwise separation interval , spanwise separation interval , and time delay , at (x 0, z 0) - Boundary layer thickness (mm, 99%) - * Displacement thickness (mm, ) - ij Kroneckers delta function - Phase angle (°) - Wavelength (mm) - Momentum thickness (mm, ) - Angle between vertical axis and observation point (°) - Density (kg/m3) - Time delay (s) - Streamwise separation interval (m) - Spanwise separation interval (m) - p (f; x 0) Autospectrum of pressure measured at x 0 (Pa2 s) - pp (, ; x 0) Streamwise cross spectrum of pressure at x 0 (Pa2 s) - pp (, , ; x 0, z 0) Streamwise and spanwise cross spectrum of pressure at (x 0, z 0) (Pa2 s) - pp (kx, ; x 0) Streamwise wavenumber-frequency spectrum of pressure at x 0 (Pa2 s) - pp (kx, kz, ; x 0, z 0) Two-dimensional wavenumber-frequency spectrum of pressure at (x 0, z 0) (Pa2 s)  相似文献   

15.
For many solid materials the stress relaxation process obeys the universal relationF = – (d/d lnt)max = (0.1 ± 0.01) ( 0 i ), regardless of the structure of the material. Here denotes the stress,t the time, 0 the initial stress of the experiment and i the internal stress. A cooperative model accounting for the similarity in relaxation behaviour between different materials was developed earlier. Since this model has a spectral character, the concepts of linear viscoelasticity are used here to evaluate the corresponding prediction of the dynamic mechanical properties, i.e. the frequency dependence of the storageE () and lossE () moduli. Useful numerical approximations ofE () andE () are also evaluated. It is noted that the universal relation in stress relaxation had a counterpart in the frequency dependence ofE (). The theoretical prediction of the loss factor for high-density polyethylene is compared with experimental results. The agreement is good.  相似文献   

16.
Zusammenfassung Der Übergang eines Stoffes zwischen zwei fluiden Phasen wird betrachtet, von denen sich einer als Strahl in der anderen bewegt. Die Geschwindigkeit der laminar strömenden Phase wird durch eine Gleichung ausgedrückt, die Geschwindigkeitsprofile zwischen der Kolben- und der Rohrströmung kontinuierlich beschreibt. Der Transport des Stoffes im Strahl durch Diffusion in radialer und durch Konvektion in axialer Richtung wird für den isothermen, stationären Fall untersucht. Die das Problem beschreibende Differentialgleichung wird anscheinend erstmals geschlossen gelöst. Die Lösungen beinhalten konfluente hypergeometrische Funktionen. Berechnet werden Eigenwerte, Koeffizienten, örtliche und mittlere Konzentrationsfelder sowie Stoffübergangszahlen.
Mass transfer between two fluids, one of the two fluids is moving as jet within the other
The mass transfer between two fluids is calculated, one of the two fluids is moving as a jet within the other. The velocity of the laminar flowing phase is expressed by an equation, which describes continously the velocity profiles from plug flow to tubular flow. For the isothermal, stationary state the transport of substance i by radial diffusion and by axial convection is investigated. It appears to be that the differential equations describing the problem are solved rigorously for the first time. The solutions contain confluent hypergeometrical functions. Results include eigenvalues, coefficients, local and mean concentration fields, mass transfer numbers.

Verwendete Zeichen und ihre Bedeutung a - A, An Koeffizienten - B, Bn Koeffizienten - c Konzentration, Konstante im Anhang - Cr=0 Mittenkonzentration - c0 Konzentration in Phase I bis z=0 - cII Konzentration in Phase II - ¯c mittlere Konzentration, definiert in Gl. (35) - C Koeffizient, definiert in Gl. (A 21) - D Diffusionskoeffizient - Da Damköhlerzahl - E Funktion, gegeben durch Gl. (A 12) - f, f(R) Funktion f von R - fn, fn (R) Funktionswerte - g, g(Z) Funktion g von Z - gn, gn (Z) Funktionswerte - h(Z) Funktion h von z - Hq Koeffizienten, gegeben durch Gl. (A 10) - j Massenstromdichte - J k , Jq Besselfunktion der Ordnungk, q - k definiert durch Gl. (A 9) - n laufende Zahl - m laufende Zahl - p laufende Zahl - Pe=Re·Sc Pecletzahl - q laufende Zahl - Qn Koeffizienten, definiert in Gl. (31) - r radiale Koordinate - r0 Radius - R r/r0 - Re=u0r0/ Reynoldszahl - S=2r0z Zylinderfläche - Sc=/D Schmidtzahl - Sh=2r0 /D Sherwoodzahl - Sherwoodzahl, definiert in Gl. (52) - Shu Sherwoodzahl, definiert in Gl. (54) - Shz Sherwoodzahl, definiert in Gl. (40) - Sherwoodzahl, definiert in Gl. (45) - t R2 - u Geschwindigkeit - u0 maximale Geschwindigkeit - v - Volumenstrom - w Variable - x Variable - y abhängige Variable - z axiale Koordinate, Lauflänge - Z z/r0 - ZPe dimensionslose Lauflänge, definiert durch Gl. (34) - an Koeffizienten, definiert durch Gl. (A 19) - Stoffübergangskoeffizient - Stoffübergangskoeffizient, definiert in Gl. (48) - u Stoffübergangskoeffizient, definiert in Gl. (49) - z Stoffübergangskoeffizient, definiert in Gl. (38) - Stoffübergangskoeffizient, definiert in Gl. (44) - definiert in Gl. (A 21) - Gammafunktion - c Konzentrationsdifferenz - m Stoffmenge - Zahl zwischen Null und Eins - laufende Zahl - kinematische Zähigkeit - (v) (t) - konfluente hypergeometrische Funktion - (t) - konfluente hypergeometrische Funktion - , n Eigenwerte Hochzeichen - * kennzeichnet asymptotische Lösungen  相似文献   

17.
Planar Mie scattering visualizations in compressible mixing layers are used to compute the probability density function of a passive scalar. Mixing layer flows with relative Mach numbers of 0.63 and 1.49 are studied. Ethanol condensation is used to generate both scalar transport seeding and product formation seeding. All PDFs exhibit a marching behavior. The condensation process in the product formation seeding is modeled to provide an estimate of the error embedded in the scalar transport PDFs. The mixing efficiency is found to be 0.56 in the product formation experiments, and the overprediction of mixing efficiency by the scalar PDFs is estimated to be 11% based on results from the ethanol condensation model.List of Symbols 291-01 Damköhler number based on - J droplet nucleation rate - k Boltzmann constant - m c molecular mass of ethanol - M r relative Mach number, M r = 2U/(a1 + a2) - N * number of nucleated droplets - p(,) probability density function - P d internal droplet pressure - P m total mixed fluid probability - P sat ethanol saturation partial pressure - P v ethanol vapor partial pressure - r freestream velocity ratio, r=U 2/U1; droplet radius - r * critical nucleation radius - R gas constant for air - 291-2 Reynolds number based on - s freestream density ratio, s = 2/1 - T local static temperature - U 1 high speed freestream velocity - U 2 low speed freestream velocity - U c large structure convection velocity, - U freestream velocity difference, U=U 1–U2 - x streamwise coordinate - y transverse coordinate - mixing layer thickness - i incompressible mixing layer thickness - mixture fraction - similarity variable, = (y–y 0)/ - c condensed phase ethanol density - droplet surface tension  相似文献   

18.
The steady periodic temperature distribution in an infinitely long solid cylinder crossed by an alternating current is evaluated. First, the time dependent and non-uniform power generated per unit volume by Joule effect within the cylinder is determined. Then, the dimensionless temperature distribution is obtained by analytical methods in steady periodic regime. Dimensionless tables which yield the amplitude and the phase of temperature oscillations both on the axis and on the surface of copper or nichrome cylindrical electric resistors are presented.
Wärmeleitung in einem stromdurchflossenen Zylinder unter Berücksichtigung des Skin-Effektes
Zusammenfassung Es wird die periodische Temperaturverteilung für den eingeschwungenen Zustand in einem unendlich langen, von Wechselstrom durchflossenen Vollzylinder ermittelt. Zuerst erfolgt die Bestimmung der zeitabhängigen, nichgleichförmigen Energiefreisetzung pro Volumeneinheit des Zylinders infolge Joulescher Wärmeentwicklung und anschließend die Ermittlung der quasistationären Temperaturverteilung auf analytischem Wege. Amplitude und Phasenverzögerung der Temperaturschwingungen werden für die Achse und die Oberfläche eines Kupfer- oder Nickelchromzylinders tabellarisch in dimensionsloser Form mitgeteilt.

Nomenclature A integration constant introduced in Eq. (2) - ber, bei Thomson functions of order zero - Bi Biot numberhr 0/ - c speed of light in empty space - c 1,c 2 integration constants introduced in Eq. (46) - c p specific heat at constant pressure - E electric field - E z component ofE alongz - E time independent part ofE, defined in Eq. (1) - f function ofs and defined in Eq. (11) - g function ofs and defined in Eq. (37) - h convection heat transfer coefficient - H magnetic field - i imaginary uniti=(–1)1/2 - I electric current - I eff effective electric currentI eff=I/21/2 - Im imaginary part of a complex number - J n Bessel function of first kind and ordern - J electric current density - q g power generated per unit volume - time average of the power generated per unit volume - time averaged power per unit length - r radial coordinate - R electric resistance per unit length - r 0 radius of the cylinder - Re real part of a complex number - s dimensionless radial coordinates=r/r 0 - s, s integration variables - t time - T temperature - time averaged temperature - T f fluid temperature outside the boundary layer - time average of the surface temperature of the cylinder - u, functions ofs, and defined in Eqs. (47) and (48) - W Wronskian - x position vector - x real variable - Y n Bessel function of second kind and ordern - z unit vector parallel to the axis of the cylinder - z axial coordinate - · modulus of a complex number - equal by definition Greek symbols amplitude of the dimensionless temperature oscillations - electric permittivity - dimensionless temperature defined in Eq. (16) - 0, 1, 2 functions ofs defined in Eq. (22) - thermal conductivity - dimensionless parameter=(2)1/2 - magnetic permeability - 0 magnetic permeability of free space - function of defined in Eq. (59) - dimensionless parameter=c p/() - mass density - electric conductivity - dimensionless time=t - phase of the dimensionless temperature oscillations - function ofs:= 1+i 2 - angular frequency - dimensionless parameter=()1/2 r 0  相似文献   

19.
Zusammenfassung Die Strömung und der Stofftransport in der Umgebung von Platten mit chemischer Oberflächenreaktion lassen sich durch Differentialgleichungen zuverlässig beschreiben. Deren vollständige Lösung konnte ohne vereinfachende Annahmen mit Hilfe theoretisch-numerischer Methoden erzielt werden. Dadurch erhält man Einblick in die tatsächlichen Transportvorgänge. Einige wichtige Ergebnisse werden erörtert. Insbesondere wird ein umfassendes Gesetz für den Stoffübergang mitgeteilt, das theoretisch und experimentell einwandfrei gesichert ist. Die Wiedergabe der bekannten sowie der neuen Daten ist gut. Sein Gültigkeitsbereich ist angegeben. Das neue Gesetz enthält neben anderen Grenzgesetzen auch das auf der Grundlage der GrenzschichtHypothese aufgestellte Gesetz.
Mass transfer with chemical surface reaction on flat plates in flow
The flow field and mass transfer from flat plates with chemical surface reaction can be described by means of differential equations. Their solutions have been obtained numerically without any simplifications. This report presents some of the more important results obtained, which give insight into the true transport phenomena.A comprehensive mass transfer law has been developed, that has a wide range of validity. It is in good agreement with all available experimental and theoretical data. The new mass transfer equation includes the special case of boundary layer law besides other special laws that describe mass transfer in limited regions of relevant parameters.

Formelzeichen cA örtliche Moldichte der reagierenden Komponente A - cAw Wert von cA an der Plattenoberfläche - c Funktion nach Gl. (28) - D Diffusionskoeffizient - fp Funktion nach Gl.(2) - k Funktion nach Gl.(27) - kw Reaktionsgeschwindigkeitskonstante - L Länge der Platte - n Reaktionsordnung - nA Molstromdichte der diffundierenden Komponente A - p Funktion nach Gl.(29) - rA Reaktionsstromdichte der reagierenden Komponente A - Shx,Sh örtliche und mittlere Sherwood-Zahl - w Anströmgeschwindigkeit des Fluidgemisches - wx, w x * absolute und bezogene örtliche Längsgeschwindigkeit - wy, w y * absolute und bezogene örtliche Quergeschwindigkeit - x, x* absolute und bezogene Längskoordinate - y, y* absolute und bezogene Querkoordinate - x, örtlicher und mittlerer Stoffübergangskoeffizien - dynamische Viskosität des Fluidgemisches - Massendichte des Fluidgemisches - Da kwLc n–1 /2D Damköhler-Zahl - Re wL//gr Reynolds-Zahl - Rekr=5 · 105 kritischer Wert der Reynolds-Rekr=5 · 105 Zahl - Sc //D Schmidt-Zahl - cA/cA bezogene örtliche Konzentration - w Wert von an der Plattenoberfläche Indizes A diffundierende und reagierende Komponente - w an der Plattenoberfläche - x in Längsrichtung - y in Querrichtung - in sehr großer Entfernung von der Platte  相似文献   

20.
The exact solution of the equation of motion of a circular disk accelerated along its axis of symmetry due to an arbitrarily applied force in an otherwise still, incompressible, viscous fluid of infinite extent is obtained. The fluid resistance considered in this paper is the Stokes-flow drag which consists of the added mass effect, steady state drag, and the effect of the history of the motion. The solutions for the velocity and displacement of the circular disk are presented in explicit forms for the cases of constant and impulsive forcing functions. The importance of the effect of the history of the motion is discussed.Nomenclature a radius of the circular disk - b one half of the thickness of the circular disk - C dimensionless form of C 1 - C 1 magnitude of the constant force - D fluid drag force - f(t) externally applied force - F() dimensionaless form of applied force - F 0 initial value of F - g gravitational acceleration - H() Heaviside step function - k magnitude of impulsive force - K dimensionless form of k - M a dimensionless parameter equals to (1+37#x03C0;s/4f) - S displacement of disk - t time - t 1 time of application of impulsive force - u velocity of the disk - V dimensionless velocity - V 0 initial velocity of V - V t terminal velocity - parameter in (13) - parameter in (13) - (t) Dirac delta function - ratio of b/a - () function given in (5) - dynamical viscosity of the fluid - kinematic viscosity of the fluid - f fluid density - s mass density of the circular disk - dimensionless time - i dimensionless form of t i - dummy variable - dummy variable  相似文献   

设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号