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Friday, April 17, 2020 | History

3 edition of Numerical analysis of flow and heat transfer in the VAFB LOX storage Dewar tank found in the catalog.

Numerical analysis of flow and heat transfer in the VAFB LOX storage Dewar tank

Numerical analysis of flow and heat transfer in the VAFB LOX storage Dewar tank

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Published by Cham of North America, Incorporated in Huntsville, Ala .
Written in English

    Subjects:
  • Liquid oxygen

  • Edition Notes

    Statementby L.T. Tam and A.K. Singhal ; prepared for National Aeronautics and Space Administration, George C. Marshall Space Flight Center
    SeriesNASA-CR -- 174028, NASA contractor report -- 174028
    ContributionsSinghal, A. K, George C. Marshall Space Flight Center, CHAM of North America, Incorporated
    The Physical Object
    FormatMicroform
    Pagination1 v.
    ID Numbers
    Open LibraryOL14929056M


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Numerical analysis of flow and heat transfer in the VAFB LOX storage Dewar tank Download PDF EPUB FB2

Numerical analysis of flow and heat transfer in the VAFB LOX storage Dewar tank: Authors: Tam, L. T The present report describes numerical simulation of three-dimensional transient distributions of velocity and temperature of liquid oxygen (LOX) in the LOX Dewar tank of Vendenberg Air Force Base (VAFB).

period only. Four test cases have Get this from a library. Numerical analysis of flow and heat transfer in the VAFB LOX storage Dewar tank. [L T Tam; A K Singhal; George C. Marshall Space Flight Center.; CHAM of North America, Incorporated.] The present report describes numerical simulation of three-dimensional transient distributions of velocity and temperature of liquid oxygen (LOX) in the LOX Dewar tank of Vendenberg Air Force Base (VAFB).

The present analyses cover the replenish time period only. Four test cases have been :// The single objective of this book is to provide engineers with the capability, tools, and confidence to solve real-world heat transfer problems. It includes many advanced topics, such as Bessel functions, Laplace transforms, separation of variables, Duhamel's theorem, and complex combination, as well as high order explicit and implicit   The temperature of Numerical analysis of flow and heat transfer in the VAFB LOX storage Dewar tank book leaving the Dewar tank is a strong function of LOX facility heat loads, drain flow rates, recirculation flow rates and dewar heating.

The present study is concerned with the LOX flow and heat transfer^during the replenish period. The objective is to elucidate the flow and heat transfer details in the LOX :// Ashok Singhal works at CFD Research Corporation, and is currently focused on commercialization of most promising innovative technologies, and potential spin off from CFDRC.

Ashok did research in The use of cryogenic substances has introduced several unique problems in heat transfer. The handling and transporting of these fluids at very low temperatures in the presence of an atmospheric ambient has necessitated the development of specialized insulating methods and design :// Graduate heat transfer class Day Sections in Book Topic 1 Conduction heat transfer 2 1-D steady conduction and resistance concepts 3 Resistance approximations 4 1-D steady conduction with generation 5Numerical solutions with EES and MATLAB 6   To calculate heat capacity, use the formula: heat capacity = E / T, where E is the amount of heat energy supplied and T is the change in temperature.

For example, if it takes 2, Joules of energy to heat up a block 5 degrees Celsius, the formula would look like: heat capacity = 2, Joules / 5 ://    Dewar - use of silvering and vacuum in double walled glass vessel Linde and Hampson build air liquefiers with recuperative heat exchangers Dewar - liquefies hydrogen Claude - use of piston expander Kamerlingh Onnes - liquefies helium Becquerel - freezes seeds and single cells use of LOx in the production of steel   passive sodium heat pipes, and flight-ready convertors.

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This wildly (and inexplicably) erroneous value (the actual den­ The above model considers buoyancy flow in free convection boundary layer caused by heat flux from tank wall and energy transfer from warm pressurant gas etc.

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In addition, heat transfer from the tank is simulated by filling the tank with preheated water to create a temperature gradient between the tank and the ambient environment.

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