An electrothermal propulsion concept utilizing a microwave plasma system as the mechanism to convert electromagnetic energy into kinetic energy of a flowing gas is investigated. A calorimetry system enclosing a microwave plasma system has been developed to accurately measure the energy inputs and outputs of the microwave plasma system. The rate of energy transferred to the gas can be determined to within + or - 1.8 W from an energy balance around the microwave plasma system. The percentage of the power absorbed by the microwave plasma system transferred to the hydrogen gas as it flows through the system is found to increase with the increasing flow rate, to decrease with the increasing pressure, and to be independent of the absorbed power. An upper bound for the hydrogen gas temperature is estimated from the energy content, heat capacity, and flow rate of the gas stream. A lower bound for an overall heat-transfer coefficient is then calculated, characterizing the energy loss from the hydrogen gas stream to the air cooling of the plasma discharge tube wall. The heat-transfer coefficient is found to increase with the increasing flow rate and pressure and to be independent of the absorbed power. This result indicates that a convective-type mechanism is responsible for the energy transfer.


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    Title :

    Measurement of energy distribution in flowing hydrogen microwave plasmas


    Contributors:
    Chapman, R. (author) / Morin, T. (author) / Finzel, M. (author) / Hawley, M. C. (author)


    Publication date :

    1985-12-01



    Type of media :

    Miscellaneous


    Type of material :

    No indication


    Language :

    English




    Measurement of energy distribution in flowing hydrogen microwave plasmas

    CHAPMAN, R. / MORIN, T. / FINZEL, M. et al. | AIAA | 1985





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    Stone, N.H. / Samir, U. | Elsevier | 1981