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Analysis and design of an ultrahigh temperature hydrogen-fueled MHD generatorA coupled gas dynamics/radiative heat transfer analysis of partially ionized hydrogen, in local thermodynamic equilibrium, flowing through an ultrahigh temperature (10,000-20,000 K) magnetohydrodynamic (MHD) generator is performed. Gas dynamics are modeled by a set of quasi-one-dimensional, nonlinear differential equations which account for friction, convective and radiative heat transfer, and the interaction between the ionized gas and applied magnetic field. Radiative heat transfer is modeled using nongray, absorbing-emitting 2D and 3D P-1 approximations which permit an arbitrary variation of the spectral absorption coefficient with frequency. Gas dynamics and radiative heat transfer are coupled through the energy equation and through the temperature- and density-dependent absorption coefficient. The resulting nonlinear elliptic problem is solved by iterative methods. Design of such MHD generators as onboard, open-cycle, electric power supplies for a particular advanced airbreathing propulsion concept produced an efficient and compact 128-MWe generator characterized by an extraction ratio of 35.5 percent, a power density of 10,500 MWe/cu m, and a specific (extracted) energy of 324 MJe/kg of hydrogen. The maximum wall heat flux and total wall heat load were 453 MW/sq m and 62 MW, respectively.
Document ID
19930065621
Acquisition Source
Legacy CDMS
Document Type
Reprint (Version printed in journal)
Authors
Moder, Jeffrey P.
(NASA Lewis Research Center Cleveland, OH, United States)
Myrabo, Leik N.
(NASA Lewis Research Center Cleveland, OH, United States)
Kaminski, Deborah A.
(Rensselaer Polytechnic Inst. Troy, NY, United States)
Date Acquired
August 16, 2013
Publication Date
October 1, 1993
Publication Information
Publication: Journal of Propulsion and Power
Volume: 9
Issue: 5
ISSN: 0748-4658
Subject Category
Plasma Physics
Accession Number
93A49618
Funding Number(s)
CONTRACT_GRANT: NAG3-916
Distribution Limits
Public
Copyright
Other

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