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91.
Dynamical formation and growth of cavity in a sphere composed of two incompressible thermal-hyperelastic Gent-Thomas materials were discussed under the case of a non-uniform temperature field and the surface dead loading. The mathematical model was first presented based on the dynamical theory of finite deformations. An exact differential relation between the void radius and surface load was obtained by using the variable transformation method. By numerical computation, critical loads and cavitation growth curves were obtained for different temperatures. The influence of the temperature and material parameters of the composed sphere on the void formation and growth was considered and compared with those for static analysis. The results show that the cavity occurs suddenly with a finite radius and its evolvement with time displays a non-linear periodic vibration and that the critical load decreases with the increase of temperature and also the dynamical critical load is lower than the static critical load under the same conditions. 相似文献
92.
Some experiments were made for the buoyant jet from a square orifice with a square disc placed on it in static ambient and concentration along the axis in self-similar area behind disc was measured. And at the same time a three-dimensional mathematical model was established to simulate the whole flowing under different conditions. All the results predicted by the numerical calculation were substantiated by the experiments. The results were compared with experiential formula for obstructed round buoyant vertical jets in static ambient and it was found that the two concentration distributions had good accordance. Star shape of temperature isolines on cross-sections in the near areas from the disc was found and it was a very special figure for obstructed square buoyant vertical jets with a square disc. The shape will transform to concentric circles gradually alike to the round buoyant vertical jet in self-similar area with increasing of the distance from the disc. 相似文献
93.
Professor K. Osaki 《Rheologica Acta》1993,32(5):429-437
Published data of the damping function of the shear relaxation modulus, h(), are reviewed. This is the ratio of the relaxation modulus measured at a finite magnitude of shear, , to that at the limit of = 0. Majority of the data are in accord with the universal function of the Doi-Edwards tube model theory, in which the damping or the decrease of h() is attributed to the contraction along the tube of extended polymer chains. The weaker damping seems to be attributed to 1) comb-branching such as in LDPE; 2) lack of entanglement in too short chains; 3) bimodal molecular weight distribution. However, a star-branching does not cause a deviation from the tube model theory and a broadness of molecular weight distribution is not a major origin of a weaker damping. A star-branched polystyrene with 15 arms exhibits no strain dependence: h() = 1. For highly entangled systems with more than 50 entanglement points per molecule, the strain dependence is stronger than that of the Doi-Edwards theory. This could be due to a slip or an instability of deformation in the material. 相似文献
94.
Y.H. Hung Associate Professor S.W. Perng Graduate Student 《Experimental Thermal and Fluid Science》1988,1(4):305-313
A series of systematic experiments for measuring transient natural andforced convected heat fluxes in a one-sided heated vertical channel have beenconducted. The total heat input in transient natural and forced experiments iscomposed of four kinds modes: radiative heat loss, conductiveheat lossm, thermal capacity of the plate, and convective heat transfer in thetest channel. In the transient periods, the generalized correlations for estimatingtransient convective heat flux are proposed in natural and forced convectionexperiments. By using the proposed qc″ distributions, satisfactory agreementsare achieved between the transient Nux predictions and experimentaldata. 相似文献
95.
IntroductionDuetotheintrinsiccouplingcharacteristicsbetweenelectricandelasticbehaviors,thatis,appliedmechanicalloadingproduceselasticdeformation ,aswellaselectricfield ,andconverselyelectricfieldcangiverisetoelasticdeformation ,piezoelectricmaterialshave… 相似文献
96.
In this paper the horizontal layer of clear ice sticking to the substrate is melted by comparatively short wave radiation similar to solar radiation for the purpose of removing ice from the surface of the material subject to atmospheric icing. The radiating source used for melting is 300 wattages halogen lamps whose color temperature is 3200K at 100 voltages. From the present investigation, a typical phenomenon of backmelting is observed clearly and it can be found that the predicted results including the melting rate of upper and lower layers which are melted by radiant energy impinged on or penetrated the ice layer are in good agreement with the experimental results.
Nomenclature av monochromatic absorption coefficient - A transmission (= q r + {hi}/qro) - cp specific heat - Ebv monochromatic emissive power - hD mass transfer coefficient - hi initial thickness of ice layer - hm thickness of substrate - Li latent heat of melting - Lw latent heat of evaporation or condensation - heat flux absorbed at surface of substrate - qr0 radiant heat flux impinged onto ice or free surface - q r + {y} forward radiant heat flux - q r – {y} backward radiant heat flux - S1 thickness of upper melt layer - S2 thickness of lower melt layer - S'2 distance from free surface to bottom surface of ice layer - t time - T temperature - T1 temperature of air-water or air-ice interface - T2 temperature of substrate surface - T3 temperature of back side surface of substrate - Tb temperature of radiating source - Ti temperature in ice layer - Tw1 temperature in upper melt layer - Tw2 temperature in lower melt layer - T environmental temperature - Ww saturated vapor concentration at free surface - Wt8 vapor concentration at environment - y distance from free or ice surface - y grid size of water or ice - ym grid size of substrate Greek symbols heat transfer coefficient - spectral absorptivity - t total absorptivity - i thermal diffusivity of ice - m thermal diffusivity of substrate - w thermal diffusivity of water - i thermal conductivity of ice - m thermal conductivity of substrate - w thermal conductivity of water - wavelength - av densitiy of air-vapor mixture - i density of ice - Stefan-Boltzman constant 相似文献
Aufschmelzen einer waagerechten Klareisschicht durch Strahlung
Zusammenfassung Eine waagerechte Klareisschicht, die auf einer Unterlage aufgefroren war, wurde durch kurzwellige Strahlung, Ähnlich der Sonnenstrahlung, zum Schmelzen gebracht, um die Entfernung von Eis nach atmosphÄrischer Vereisung zu untersuchen. Die Strahlungsquelle war eine 300 Watt-Halogenlampe mit einer Farbtemperatur von 3200 Kelvin bei 100 Volt. Als typische Erscheinung wurde ein Rückseiten-Schmelzen gefunden, im übrigen sind die vorausberechneten Schmelzraten an der Ober- und der Unterseite durch aufgenommene oder durchgelassene Strahlungsenergie in guter übereinstimmung mit den Messungen.
Nomenclature av monochromatic absorption coefficient - A transmission (= q r + {hi}/qro) - cp specific heat - Ebv monochromatic emissive power - hD mass transfer coefficient - hi initial thickness of ice layer - hm thickness of substrate - Li latent heat of melting - Lw latent heat of evaporation or condensation - heat flux absorbed at surface of substrate - qr0 radiant heat flux impinged onto ice or free surface - q r + {y} forward radiant heat flux - q r – {y} backward radiant heat flux - S1 thickness of upper melt layer - S2 thickness of lower melt layer - S'2 distance from free surface to bottom surface of ice layer - t time - T temperature - T1 temperature of air-water or air-ice interface - T2 temperature of substrate surface - T3 temperature of back side surface of substrate - Tb temperature of radiating source - Ti temperature in ice layer - Tw1 temperature in upper melt layer - Tw2 temperature in lower melt layer - T environmental temperature - Ww saturated vapor concentration at free surface - Wt8 vapor concentration at environment - y distance from free or ice surface - y grid size of water or ice - ym grid size of substrate Greek symbols heat transfer coefficient - spectral absorptivity - t total absorptivity - i thermal diffusivity of ice - m thermal diffusivity of substrate - w thermal diffusivity of water - i thermal conductivity of ice - m thermal conductivity of substrate - w thermal conductivity of water - wavelength - av densitiy of air-vapor mixture - i density of ice - Stefan-Boltzman constant 相似文献
97.
Übersicht Mit Hilfe des Verfahrens der komplexen Spannungsfunktion wird der Spannungs- und Verschiebungszustand in gekerbten und gelochten Scheiben mit Kraft- und Versetzungssingularitäten berechnet.
Summary By means of complex stress functions the state of stress and strain in plates with notches or holes is calculated with regard to force and dislocation singularities.相似文献
98.
Dr.-Ing D. Karamanlidis Assistant Professor V. Prakash 《Archive of Applied Mechanics (Ingenieur Archiv)》1989,60(2):124-131
Summary The paper deals with the analysis of shear-flexible anisotropic plates subjected to arbitrary boundary conditions. In order to solve the pertinent boundary value problem, a Ritz-type technique has been developed which, however, ist not based on the standard principle of minimum potential energy but a modification thereof. In this variational theorem, the boundary conditions are satisfied a posteriori as natural constraints, therefore relatively simple trial functions can be used to approximate the displacement variables in the interior of the plate. Extensive studies carried out on a series of relevant examples illustrate that the proposed method represents an inexpensive, reliable and highly efficient tool for solving a wide variety of plate bending problems.
Ein sehr genaues numerisches verfahren zur näherungsweisen berechnung des tragund deformationsverhaltens schubsteifer anisotroper platten
Übersicht Die vorliegende Arbeit beschäftigt sich mit der Berechnung des Trag- und. Deformationsverhaltens beliebig gelagerter Platten unter Berücksichtigung von Materialanisotropie sowie Schubkrafteinfluß. Beim entwickelten Berechnungsverfahren handelt es sich um eine Ritz-Methode, welche allerdings nicht auf dem Prinzip des Minimums der potentiellen Energie, sondern einer Modifikation davon basiert. Das Besondere an dieser modifizierten Variationsgleichung liegt darin, daß die geometrischen Rand- und Übergangsbedingungen nicht als wesentliche, sondern als natürliche Nebenbedingungen erfüllt werden. Die Genauigkeit und praktische Relevanz der entwickelten Methode wird anhand einiger Representativbeispiele demonstriert.相似文献
99.
According to the differential equation for transverse displacement function of anisotropic rectangular thin plates in free vibration, a general analytical solution is established. This general solution, composed of the composite solutions of trigonometric function and hyperbolic function, can satisfy the problem of arbitrary boundary conditions along four edges. The algebraic polynomial with double sine series solutions can also satisfy the problem of boundary conditions at four corners. Consequently, this general solution can be used to solve the vibration problem of anisotropic rectangular plates with arbitrary boundaries accurately. The integral constants can be determined by boundary conditions of four edges and four corners. Each natural frequency and vibration mode can be solved by the determinate of coefficient matrix from the homogeneous linear algebraic equations equal to zero. For example, a composite symmetric angle ply laminated plate with four edges clamped has been calculated and discussed. 相似文献
100.
Associate Prof. Masanori Monde Mr. Shin-ichi Mihara Mr. Yoshiyuki Ono 《Heat and Mass Transfer》1988,22(1-2):91-95
An experimental study has been made of saturated boiling heat transfer for water and R113 in a narrow vertical rectangular channel (2 mm space, 20 mm wide, and 200 mm long) at atmospheric pressure, in which the vertical heated surface (10 mm long and 20 mm wide) is located on one side at a position of 150 mm from its entrance and bubbles are forcibly passed through it at a designated period from 0.33 to 1.0 sec. The experiment shows that the heat transfer coefficients are increased by the bubble passing through the heated surface for the value of thermal diffusivity,a, times period, T0, of the passing bubbles above about 6×10–9 m2 (a T
0>6×10–9 m2) while fora T
0< 6×10–9 m2, the heat transfer coefficients become independent of the period and the effectiveness of the enhancement of the heat transfer owing to the passing bubble disappears.
Nomenclature a thermal diffusivity of liquid - ¯h time-averaged heat transfer coefficient - q w heat flux at wall - T 0 period of passing bubble - T w(t) temperature of heated surface - T w amplitude of heated surface temperature Greek symbols thermal conductivity - thickness of liquid film 相似文献
Die obere Grenze der Verbesserung des Wärmeübergangs beim Sieden in einem vertikalen, rechteckigen Kanal infolge von aufsteigenden Blasen
Zusammenfassung Es wurden Experimente über den Wärmeübergang beim Sättigungssieden mit Wasser und R113 in einem engen, vertikalen, rechteckigen Kanal (2 mm Abstand, 20 mm Breite und 200 mm Länge) bei Umgebungsdruck durchgeführt, wobei die vertikale, beheizte Oberfläche (10 mm lang und 20 mm breit) auf der einen Seite in einem Abstand von 150 mm vom Eintritt angeordnet ist und die Blasen zwangsweise durch den Kanal sich mit einem Periodenabstand von 0,033 bis 1,0 s bewegen. Das Experiment zeigt, daß die Wärmeübergangskoeffizienten durch das Vorbeistreichen der Blasen an der beheizten Oberfläche verbessert werden, wenn das Produkt aus Temperaturleitfähigkeit,a, mal der Periode, T0, der vorbeistreichenden Blasen größer als 6×10–9 m2 liegt, während unterhalb dieses Wertes der Wärmeübergangskoeffizient unabhängig von der Blasenperiode ist und die Effektivität der Wärmeübergangsverbesserung infolge der Blasenströmung verschwindet.
Nomenclature a thermal diffusivity of liquid - ¯h time-averaged heat transfer coefficient - q w heat flux at wall - T 0 period of passing bubble - T w(t) temperature of heated surface - T w amplitude of heated surface temperature Greek symbols thermal conductivity - thickness of liquid film 相似文献