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  • 1
    Publication Date: 2019-06-28
    Description: The objective is to predict the pressure response of a saturated liquid-vapor system when undergoing a venting or depressurization process in zero gravity at low vent rates. An experimental investigation of the venting of cylindrical containers partially filled with initially saturated liquids was previously conducted under zero-gravity conditions and compared with an analytical model which incorporated the effect of interfacial mass transfer on the ullage pressure response during venting. A new model is presented to improve the estimation of the interfacial mass transfer. Duhammel's superposition integral is incorporated to approximate the transient temperature response of the interface, treating the liquid as a semi-infinite solid with conduction heat transfer. Account is also taken of the condensation taking place within the bulk of a saturated vapor as isentropic expansion takes place. Computational results are presented for the venting of R-11 from a given vessel and initial state for five different venting rates over a period of three seconds, and compared to prior NASA experiments. An improvement in the prediction of the final pressure takes place, but is still considerably below the measurements.
    Keywords: FLUID MECHANICS AND HEAT TRANSFER
    Type: NASA-CR-179662 , NAS 1.26:179662
    Format: application/pdf
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  • 2
    Publication Date: 2019-05-22
    Keywords: unknown
    Type: NASA-CR-56409 , REPT.-04268-2P
    Format: text
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  • 3
    Publication Date: 2019-05-10
    Description: Cryogenic fluid is not affected by zero gravity in the range of nucleate boiling but buoyant-force controlled processes of maximum heat flux, transition and film boiling are gravity sensitive
    Keywords: GEOPHYSICS
    Format: text
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  • 4
    Publication Date: 2019-05-30
    Description: Pressurization of liquid oxygen containers - cryogenic fluid boiling under high and low gravity, liquid hydrogen boiling, injection cooling, and two-dimensional heat transfer
    Keywords: THERMODYNAMICS AND COMBUSTION
    Type: NASA-CR-63431
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  • 5
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    Unknown
    In:  CASI
    Publication Date: 2019-06-28
    Description: The venting of cylindrical containers partially filled with initially saturated liquids was conducted under zero gravity conditions and compared with an analytical model which determined the effect of interfacial mass transfer on the ullage pressure response during venting. A model is proposed to improve the estimation of the interfacial mass transfer. Duhammel's superposition integral is incorporated in this analysis to approximate the transient temperature response of the interface, treating the liquid as a semiinfinite solid with conduction heat transfer. This approach to estimating interfacial mass transfer gives improved response when compared to previous models. The model still predicts a pressure decrease greater than those in the experiments reported.
    Keywords: FLUID MECHANICS AND HEAT TRANSFER
    Type: NASA-CR-173503 , NAS 1.26:173503 , REPT-020547-IR-1
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  • 6
    Publication Date: 2019-06-27
    Description: Transient and steady state nucleate boiling in saturated LN2 and F113 at standard and near zero gravity conditions were investigated for the horizontal up, vertical and horizontal down orientations of the heating surface. Two distinct regimes of heat transfer mechanisms were observed during the interval from the step increase of power input to the onset of nucleate boiling: the conduction and convection dominated regimes. The time duration in each regime was considerably shorter with LN2 than with F113, and decreased as heat flux increased, as gravity was reduced, and as the orientation was changed from horizontal up to horizontal down. In transient boiling, boiling initiates at a single point following the step increase in power, and then spreads over the surface. The delay time for the inception of boiling at the first site, and the velocity of spread of boiling varies depending upon the heat flux, orientation, body force, surface roughness and liquid properties, and are a consequence of changes in boundary layer temperature levels associated with changes in natural convection. Following the step increase in power input, surface temperature overshoot and undershoot occur before the steady state boiling temperature level is established.
    Keywords: THERMODYNAMICS AND COMBUSTION
    Type: NASA-CR-120202 , REPT-074610-52-F
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  • 7
    Publication Date: 2019-06-27
    Description: The quantitative determination of the influence of heater surface orientation and gravity on nucleate pool boiling of liquid nitrogen and liquid hydrogen is described. A transient calorimeter technique, well suited for obtaining pool boiling data under reduced gravity and used earlier by Clark and Merte (1963), was employed after being adapted to flat a surface whose orientation could be varied. The obtained determination results are reviewed.
    Keywords: THERMODYNAMICS AND COMBUSTION
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  • 8
    Publication Date: 2019-06-27
    Description: Measuring incipient and steady boiling of liquid hydrogen and nitrogen under reduced gravity
    Keywords: PHYSICS, GENERAL
    Type: NASA-CR-103047 , TR-7
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  • 9
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    In:  Other Sources
    Publication Date: 2019-07-13
    Description: Film boiling of a saturated liquid on a vertical surface is analyzed to determine the local heat-transfer rates as a function of height and heater-surface superheat. Experiments show that the laminar-flow model is inadequate. A turbulent-vapor-flow model is used, and the influence of the interfacial oscillations is incorporated on a semiempirical basis. Measurements of local film boiling were obtained with a transient technique using saturated liquid nitrogen.
    Keywords: THERMODYNAMICS AND COMBUSTION
    Type: ASME PAPER 72-HT-38 , American Institute of Chemical Engineers and American Society of Mechanical Engineers, Heat Transfer Conference; Aug 06, 1972 - Aug 09, 1972; Denver, CO
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  • 10
    Publication Date: 2019-07-13
    Keywords: INSTRUMENTATION AND PHOTOGRAPHY
    Type: ASME PAPER 76-HT-64 , Heat Transfer Conference; Aug 09, 1976 - Aug 11, 1976; St. Louis, MO
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